Abstract
Wearing face masks, use of respirators, social distancing, and practicing personal hygiene are all measures to prevent the spread of the coronavirus disease (COVID-19). This pandemic has revealed the deficiency of face masks and respirators across the world. Therefore, significant efforts are needed to develop air filtration and purification technologies, as well as innovative, alternative antibacterial and antiviral treatment methods. It has become urgent—in order for humankind to have a sustainable future—to provide a feasible solution to air pollution, particularly to capture fine inhalable particulate matter in the air. In this review, we present, concisely, the air pollutants and adverse health effects correlated with long- and short-term exposure to humans; we provide information about certified face masks and respirators, their compositions, filtration mechanisms, and the variations between surgical masks and N95 respirators, in order to alleviate confusion and misinformation. Then, we summarize the electrospun nanofiber-based filters and their unique properties to improve the filtration efficiency of face masks and respirators.
Keywords: air pollutants, COVID-19, face masks, respirators, nanofibers filter media
1. Introduction
World population growth, industrialization, and urbanization have initiated the production of enormous quantities of contaminants being emitted into the air, with no notion of how they could affect human health. Recently, air contaminant concentrations have risen above Air Quality Guidelines (AQG) issued by the World Health Organization (WHO) in many developed countries, leading to environmental protection policies for all individuals across the world. Air pollution severely destroys life quality and poses an immediate danger to public health [1]. Symptoms, such as weeping, coughing, angina, and difficulty breathing, are related to air pollution immediately after exposure, and may also cause more subtle, long-term harm to human health. People are typically ignorant about the impacts of long-term exposure to their health (as well as the fact that long-term exposure may worsen their medical conditions). Air pollution accesses the human body via the respiratory tract, and it also has systemic influences that can harm several organs [2,3].
In metropolises, because of these severe environmental problems, people wear masks or respirators for filtering polluted outdoor air, and air filtration equipment is becoming more common indoors as well. Indeed, using reception-based solutions via improving masks and respirators as effective means to capture hazardous particulates [4]. Air filtration is a promising, efficient, and practical technique used against air pollutants. Even now, extensive efforts are employed to enhance highly efficient air filter media, with a focus on improving filter efficiency [5,6,7,8]. Although conventional air filtration media, such as high-efficiency particulate air (HEPA) filters, have a high efficiency of filtration (of approximately 99.97%) for airborne particles (0.1–0.5 μm), their performance is still low for particulate matter (PM) in the sub-micrometer. Another drawback of using thicker filtering media is the high-pressure drop or energy costs to offset the resulting flow resistance. Such disadvantages of traditional high-performance filters can be mitigated using an electrospinning technique to prepare nanofiber-based filters. Carbon-based air filters are designed to trap air pollutants and fabricated as protective masks. Because of their high surface area, abundance, stable chemical structure, low resistance, and high functionalization ability with other materials, carbon materials are promising candidates for air purification. Particularly, since the diameter of carbon nanofibers is comparable to the free path of the air molecules (66 nm under normal conditions), they overcome the inherent problem between filtration efficiency and pressure drop [9,10]. They can be used to remove volatile organic compounds, nanoparticles, and bacterial contaminants in the air [10].
Electrospinning permits fiber production, with nanoscale diameters varying between 40 and 2000 nanometers as excellent candidates for biomedical applications [11,12]. In addition, electrospun nanofiber filters possess a high ratio of surface area/volume that significantly increases the possibility of pollutant deposition on the surface of the fiber, and consequently develops the performance of the filter with a relatively low-pressure drop [13]. This review is intended to condense previous research into a concise, easy-to-read document, focusing on the efficacy of face masks and respirators containing nanomaterials in their structures.
2. Air Pollutants and Adverse Health Effects
Air pollution is one of the most earnest threats to the environment, and it also has an adverse impact on human health. The World Health Organization (WHO) announced that diseases resulting from household air pollution (indoor) cause the death of approximately 4 million people each year; moreover, 7.6% of all deaths were caused by ambient air pollution (outdoor) universally in 2016 [14]. Household (indoor) air pollutants, such as environmental tobacco smoke (ETS), along with what is generated by the combustion of biomass fuel (dung, wood, etc.), are also disturbing in various regions [15]. Air pollutants of ambient (outdoor) areas are a combination of thousands of components. From a health viewpoint, PM and pollutants such as ozone (O3), volatile organic compounds (VOCs), nitrogen dioxide (NO2), carbon monoxide (CO), sulfadiazine, and sulfur dioxide (SO2) are the most important among them [16,17,18].
Primary pollutants are released immediately into the air by fossil fuel combustion (similar to nitrogen and sulfur oxides, and soot particles). Industrial sources, motorized road traffic, residential heating, and power generation are the primary PM sources. Once primary pollutants interact in the atmosphere, secondary pollutants are produced, including O3, PM, and aerosol [19]. PM is the sum of particles suspended in the air, such as liquid droplets and solid particles. PM is classified according to the particle size as large (PM10), fine (PM2.5), and ultrafine (PM0.1), where the subscript represents the upper limit of particulate diameter in micrometers (Figure 1). Ultra-fine particles are invisible in contrast to particles being large, visible as haze, or dust with sufficient lighting.
Upper airways and mucous membranes might be affected by large PM10 particles, resulting in coughing and tears. PM2.5 and PM0.1 cause the worst health influences because they can get to the pulmonary alveoli and pass into the circulatory system, causing severe health problems and increase morbidity and mortality in long-term exposure [20]. Several reports have correlated ultrafine particle exposures to various symptoms, particularly respiratory and cardiovascular diseases [21,22,23,24]. Additionally, some natural pollutants, including bacteria, pollen, and certain microorganisms and aerosols carrying viruses, cause respiratory infectious diseases, for instance, chronic obstructive pulmonary disease (COPD), cancer of the lung, or asthma [25].
The world is currently—during the ongoing pandemic of coronavirus disease—facing dangerous viral aerosols, brought about by severe acute respiratory syndrome coronavirus 2 (SARS-Co-2) [27,28]. The microsize aerosols (0.25–1.0 μm in diameter) that carry the virus are released into the air once the infected person sneezes, coughs, and breaths [29,30]. The released droplets significantly vary in number and size; during a sneeze, up to 40,000 droplets are released at a speed of 100 m/s [31], and approximately 3000 droplet nuclei are generated during a cough [32]. The size of the COVID-19 virus (Figure 2) is about 80–150 nm; the small size of SARS-CoV-2 led to concern because it could allow the virus to pass through respirator filters tested for larger particles of 0.3 μm [33]. Because this virus has a long incubation period (3–20 days), and there are asymptomatic carriers, wearing a face mask or respirator, social distancing, and paying attention to personal hygiene are encouraged to prevent spreading the virus [34].
3. Face Masks and Respirators
Filtering facepieces (FFP), face masks, and respirators are cost-effective, beneficial, and practical due to their good performance at reducing exposure to airborne particulate matter [34]. Face masks are disposable, loose-fitting devices that provide physical barriers to separate the wearer’s mouth and nose from potential pollutants in the surrounding environment. A regular face mask comprises one or two layers of plastered or flat fabric, typically made of paper or cotton. It is typically only efficient in catching large particles of pollutants and is not used for preventing infectious diseases.
The most commonly used surgical mask comprises of polypropylene (PP) of 3-ply layers (at least), with different thicknesses and capabilities for protecting the wearer from infectious particles. It should have 80% bacteria filtration efficiency, at minimum; however, we should note that it does not provide reliable protection against small airborne particles and viruses [36,37]. Surgical masks should not be shared with others and are labeled as masks for surgery, dental, isolation, or medical procedures. They can come with or without a face shield. If worn correctly, surgical masks are designed for protection against air pollution in a sterilized field, or in a working environment—for protection against large particles, such as spit and mucous generated from the wearer. Another usage is to minimize the risk of splashed or sprayed body fluids, blood, and secretions from reaching the wearer’s nose and mouth [38]. Since face masks do not have sufficient filtering to protect the wearer from respiratory droplets and do not prevent leakage around the mouth after inhalation due to loose-fitting, they are used for one time only [39].
On the other hand, respirators are particular types of personal protective equipment (PPE) designed to protect the wearer from inhaling harmful airborne particles (including infectious agents, such as coronavirus, SARS, H1N1, etc.), gases, or vapors [40,41]. They are usually pre-molded, fit tightly, adhere with an elastic band to the head, and utilize filters to reduce inhaled harmful air contaminants. Respirators are categorized into air-purifying and supplied respirators with filtering devices and breathing apparatuses, respectively. In particular, respirators help reduce the wearer’s airway exposure to inhalable pollutants with a size of fewer than 100 μm. A valved respirator enables it to exhale air easier, is more convenient for wearing, and contains less moisture build-up within the respirator. The problem of ventilators with valves is that they filter the air in (inhale) but not the air out (exhale). Regarding COVID-19, the one-way protection of valved respirators places individuals around the wearer at risk; for such a reason, hospitals do not use respirators with valves [42].
4. Standards for Face Masks and Respirators
Face masks and respirators are subject to specific standards and regulations, based on the nation or geographical region (Table 1). The Food and Drug Administration (FDA) cleared the surgical masks in the United States, and they should be complying with the standards of the American Society for Testing and Materials (ASTM). The ASTM F2100-11 standards are certified with five performance metrics for materials used to make medical face masks: resistance to fluid, breathability, bacterial filtration efficiency (BFE), particulate filtration efficiency (PFE), and flammability. Depending on their test marks, ASTM attributes the substance’s barrier efficiency to a numerical rating: level 1 barrier—fluid exposure at low risk; level 2 barrier—fluid exposure at moderate risk; level 3 barrier—fluid exposure at high risk. Surgical masks in Europe should be standard by European Norm (EN). According to the EN 14683 standard for surgical masks, the three types of surgical mask effectiveness are: type I or BFE1—more than 95% bacterial filtration efficiency, type II or BFE2—more than 98% bacterial filtration efficiency, type IIR—bacteria filtering effectiveness of more than 98% and splash-resistant. The European standard added a resistance test for types IR and IIR; IIR has the most resistance.
Table 1.
FFP Type | Standards | Filtration Efficiencies | ||
---|---|---|---|---|
Surgical Mask | USA: ASTM F2100-11 | Level 1 | Level 2 | Level 3 |
standard | 95% | 98% | 98% | |
EN: | Type I | Type II | Type IIR | |
EN 14683 standard | 95% | 98% | 98% | |
Respirator | USA: NOISH 42 CFR Part | N95/R95/P95 | N99/R99/P99 | N100/R100/P100 |
84 | 95% | 99% | 99.97% | |
EN: | FFP1 | FFP2 | FFP3 | |
EN 149:2001 | 80% | 94% | 99% |
ASTM = American Society for Testing Materials. FFP = Filtering Facepieces. NIOSH = Respirators are tested and cleared via the National Institute for Occupational Safety and Health. CFR = Code of Federal Regulations.
Respirators are tested and cleared via the National Institute for Occupational Safety and Health (NIOSH) in the U.S., which belongs to the Centers for Disease Control and Prevention (CDC). The respirator series, air-purifying types, N (not oil resistant), R (resistant to oil), and P (oil proof) are approved by NIOSH under 42 Code of Federal Regulations (CFR) Part 84, each at 95, 99, and 99.97% filtration efficiency levels, as shown in (Table 1) [43]. Among them, the N95 respirator is the most extensively used [44]. By EN 149:2001, the Legislation of European Standards for respirators is covered. There are three types of disposable respirators according to that standard: 80% as low efficiency, or FFP1; 94% as medium efficiency, or FFP2; and 99% as high efficiency, or FFP3, as shown in Table 1 [45]. The higher the FFP number, the more protection the respirator can offer if adequately used. EN 149:2001 includes breathing resistance, filter penetration, flammability, extended exposure (loading), dolomite dust clogging (optional), and total inward leakage (TIL). Since the standard N95 and FFP3 or FFP2 respirators are approximately equivalent, they are recommended to be used for prevention of airborne infectious diseases [46].
5. The Variations between a Surgical Mask and N95 Respirator
With the rapid emergence of infectious diseases, such as COVID-19, there has been significant interest in using surgical masks and N95 respirators as part of infection prevention procedures. The surgical masks consist of very fine middle layers with extra fine glass fibers, which are covered on both sides by acrylic bonded parallel-laid or wet-laid nonwoven material (Figure 3). N95 respirators are engineered for specific functions—different from surgical masks (even though they often appear to be identical) (Figure 4) [47]. The N95 consists of an outer layer constructed of hydrophobic nonwoven PP (to prevent moisture), a filter layer of melt-blown nonwoven PP (to capture oil and non-oil-based particles), a support layer, and an inner layer, as shown in Figure 4.
6. Filtration Mechanisms of Particles
Face masks and respirators have commonly been used as protective devices for filtering airborne contaminants. Fibrous filters are used in current surgical masks and respirators, made from several flat, fine, fiber layers (μm in diameter) of nonwoven mats, capable of capturing PM particles through physical adhesion barriers. Various parameters regulate filtration effectiveness, such as fiber diameter, porosity, and filter thickness. The filtration mechanism is a significant aspect in terms of the accuracy and efficiency of the filter media. Filtering of particles is essentially performed through five collections of mechanisms: (1) interception, (2) inertial impaction, (3) diffusion, (4) gravitational settling, and (5) electrostatic attraction (Figure 5a). On the other hand, deep filtration with low efficiency and a longer life occurs when microfiber is used, while the nanofibers lead to high efficiency, a shorter life, and a surface filtration process. To perform deep, high efficiency and a shorter time filtration process, the beaded nanofiber is recommended to be used (Figure 5b).
Generally, all collection mechanisms, except the electrostatic attraction, refer to mechanical filters and are affected by particle size and velocity. Interception and inertial impaction are commonly known to be predominant combination mechanisms for macro and microparticles (>0.3 μm), while diffusion is predominant for nanoparticles (<0.3 μm). An interception occurs when the particles follow streamline round the fiber and come into contact with the fiber’s surface, and deposit on it because of van der Waals forces. Inertial impaction occurs when the particle changes its streamline direction near a filter fiber and impacts the fiber due to inertia. This mechanism is more efficient for capturing large particles and increases at higher particle velocity. On the contrary, particles under 0.3 μm are mainly affected by diffusion. These very tiny particles move across streamlines (Brownian motion) until they contact the fiber, because of air molecules’ random movements. In gravitational settling, and due to gravity, large particles may settle in slow movement airstreams. The electrostatic attraction may be significant, but hard to measure because it needs to know the fiber charges and particles. Through the Columbia attraction, particles that are charged are attracted to the fibers oppositely charged [50,51]. When the filter fibers are in the nanoscale, the filtration conditions can change. Airflow aerodynamic behavior around the periphery of nanostructured fibers will significantly change. In addition, the strong forces of van der Waals that are capable of adsorbing submicron-sized particles will be produced. Due to the pores’ good interconnectivity, the diffusion, inertial effect, and interception will also be enhanced [52].
7. The Composition of Surgical Masks and N95 Respirators
The filtering materials of face masks and respirators are made of nonwoven fabric, considered disposal after use because their reuse significantly degrades their filtering performance. The salient benefit of nonwoven technology concerns the potential to manufacture fabrics and structures that cost much lower than other fabric technology, such as woven and knitted. Most surgical mask industries use spunbond melt-blown spunbond (SMS) technology for producing surgical masks. The suitable polymer materials for surgical mask manufacturing are PP, polyethylene terephthalate (PET), polystyrene, polycarbonate, polyethylene (PE), polyester, etc. [53,54,55,56]. PP is usually used to produce surgical masks by fabricating spunbond nonwoven layers (20 g/m2) and melt-blown nonwoven sheets (25 g/m2) [57]. It is relatively cheap and has low melt viscosity for easy processing. In addition, these polymers are transparent, lightweight, and provide high-optical clarity; thus, they could be three-dimensionally (3D) printed as face masks for COVID-19 protection [58].
A standard surgical mask is usually comprised of three layers: a soft nonwoven absorbent (layer being inner), a melt-blown (the layer at middle), and a nonwoven hydrophobic (layer being outer). Each layer has a specific function: the inner layer is purposed to absorb moisture, sweat, and the spit of the wearer; the middle layer of the surgical mask is designed as an electret filter to prevent germs from coming in or exiting from the mask; and the outer layer is purposed to repulse water, bodily fluids, and blood. Masks are manufactured by machines where the layers are ultrasonically welded together, and the masks are labeled with ear strings and nose strips. Masks are first sterilized before being exported.
The N95 respirator is comprised of many layers of PP nonwoven fabric. The two external protective layers are produced using a spunbond to cover both the inner and outer of the N95 respirator. There is a layer of pre-filtration between these spunbond layers, which may be as thick as 250 g/m2, making it stiffer and thicker, so it can be flexible enough to form the required shape. The last layer is a nonwoven melt-blown electret material of high-quality that controls filtration competence. The full respirators are manufactured by converted equipment, welding the layers by ultrasonic and adding belts and strips of metal to regulate the mask over the user’s face. Finally, respirators are sanitized before shipment.
8. Electrospun Nanofibers and Their Applications in Face Masks and Respirators
Electrospinning is a novel technique to manufacture nanofibers, as it provides a quick procedure, low expense, and precise control of the nanofiber compositions and geometric features. In electrospinning, high voltages apply to melts or polymer solution droplets to eliminate the tension of liquid surface and ultrafine fibers with diameters between 40 and 2000 nm to be created (Figure 6) [59]. Selecting a suitable solution concentration, appropriate voltage, and the space between the supporting collector and the syringe tip is of considerable importance for synthesizing uniform nanofibers. As an essential part of this technology, nanofiber-based filter media are the main components for enhancing filtration performance [60,61,62,63,64].
Electrospun nanofiber-based filter media possess a high ratio of surface/volume, low-pressure drop, good interconnectivity of voids, and controllable connectivity and morphology, rendering them desirable to achieve excellent filtering. Because of its fragility, electrospun nanofibers do notcan not be used individually at filter media, it should be deposited onto a substrate, usually fabric as nonwoven. Glass, polyester, nylon, and cellulose are the common substances used to support the electrospun nanofibers. The substrate should have excellent mechanical properties to enable pleating, fabrication of filter, and toughness in usage [66]. For the filtration propose, substrates are selected for pleating, filter fabrication, durability in use, and filter cleaning.
Currently, most researchers who are interested in the air filter industry are searching for technology based on nanofibers to enhance dust interception capability and filtration quality. There are already several applications of commercialized filters, as well as those in progress. Using nanofibers in face masks and respirators is better than the available commercialized. The active filters used in commercial face masks and respirators right now employ small diameter PP fibers in the range of 500–1000 nm; these filters achieve filtration with the help of static electricity. The pore size decreases as the fiber diameter decreases, and the distribution of fibers per unit area becomes denser. The electrostatic assisted melt-blown improves filtration quality by creating a small charge in the fabric, which increases the fabric’s adsorption capability.
However, such filters can lose their static electricity after wearing for an extended period and when exposed to water, thereby reducing their filtration efficiency, so this type of filter is designed to be disposable. This is not the case for nanofibers that do not depend on static electricity to filter contaminants; they use smaller pores and reasonable distribution of pores to physically filter aerosols that contain harmful dust or viruses [67].
Several studies and patents on nanofibers have been identified in different face masks and respirator applications [68,69,70]. Munzarová (2013) developed barrier fabrics based on nanofibers via electrospinning to be laminated onto face masks. This barrier protects from the permeation of microorganisms, dust particles, and allergens [71]. Skaria and Smaldone (2014) produced a prototype nanofiber-based filter media fitted face mask compared to the N95 respirator. They found that the prototype significantly reduced airflow resistance, resulting in greater face mask compliance and increased filtration efficiency, similar to that obtained when using an N95 respirator [72].
With a slightly different perspective, Li and Gong (2015) informed of the development of nanofiber-based on polysulfone for mask filtration, utilizing electrospinning to be coated onto nonwoven PP, aiming to avoid the inhalation of harmful pollutants in contaminated haze air. The nanofiber mat thickness was modified at different collective preparation periods (15 min < 30 min < 60 min), and these three nanofiber masks were compared with nonwoven disposable face masks, nonwoven operative room masks, N95 and R95 respirators, and Ito PM2.5. It was observed that electrospun nanofiber masks might be efficient at filtering out PM2.5 particles and, at the same time, maintain good breathability [73]. Similarly, Akduman (2019) prepared a nanofiber layer of cellulose acetate (CA) and polyvinylidene fluoride (PVDF) with 100% mechanical filtration for face masks and respirators capable of meeting the specifications of N95 respirators. The effect of nanofiber mat thickness, nanofiber diameters, and pore size on filtration efficiency was compared [38,74]. The mean diameter of PVDF nanofibers (236.50 nm) was smaller than the diameter CA (319.02 nm) nanofibers. Therefore, CA nanofibers showed better filtration efficiency [74].
The use of solution blow spinning (SBS) nanofibers is a significant step in developing a composite mask [75,76]. Noel et al. (2019) used the SBS nanofibers method in composite multilayered filter masks; they prepared three different nanofiber fabrics types, cellulose diacetate (CDA), polyacrylonitrile (PAN), and PVDF. They demonstrated that the presence of functionalities of different molecules in the electrospun nanofibers had a significant effect on the efficiency of filtration, i.e., PAN nanofiber had the best filtration efficiency (0.05 Pa−1) of the quality factor and good air permeability, whereas, among all the nanofibers studied, PVDF air filter quality was the lowest, with (0.02 Pa−1) of the quality factor [77].
Moreover, titanium dioxide (TiO2), carbon nanotubes (CNTs), and silver (Ag) have been easily used as additional materials for coating onto electrospun nanofibers. Nanostructured TiO2 was of considerable interest to different coating materials because of its remarkable catalysis of UV rays and shielding properties [78,79]. Ruan et al. (2020) fabricated and developed the polyacrylonitrile-co-polyacrylate (PAN-co-PMA):TiO2 membrane of the electrospun nanofiber [80]. The electrospun nanofiber membrane features, such as permeability of air, PM trapping, and aerosol inspection, were evaluated methodically. For two types of nanofiber membranes, the microfiber nonwoven, the nanofiber membrane, and the nonwoven fabric bracket were built-up into a multi-layer structure electrostatic force. The PAN-co-PMA:TiO2 nanofiber membrane bonding system demonstrated effective PM2.5 removal and superior air permeability (284–339 mm/s) [80]. Several studies have manifested the use of activated carbon, and carbon nanofiber (AC/CNF) composite was found to be a suitable alternative for the respirator cartridge due to being lightweight and its appropriate absorption ability [81]. In the study by Jahangiri et al. (2013), the granulated (AC/CNF) was utilized to absorb and remove VOCs from breathing air in the respiratory mask cartridges. The findings demonstrated that the breakthrough period was longer for this cartridge than for other types [82].
It is known that incorporating antimicrobial agents, such as silver, with nanofibers, exhibits antimicrobial properties in the filters [83]. They were mainly distributed on the nanofiber surface. Microorganisms can be killed when they contact silver nanoparticles during filtration [84], for example, nanosilver-embedded polyacrylonitrile nanofibers [85]. Yang et al. (2017) demonstrated the thermal management effect in the nano-fiber-based face mask with a nylon 6/nano PE model system that manifests high efficacy for PM2.5 capturing (99.6%) with lower pressure drop [62]. Moreover, they modified the nano PE substrate with silver. The fiber/Ag/nano PE mask filter reveals a value of (87.0%) as IR reflectance is high and might be utilized in winter or summer to protect the wearer from contaminated air and render the face warm or cool/comfortable [62].
Additionally, for protection against bacteria and viruses, nanofibers comprising superabsorbent polymers (SAPs) have been produced in order to provide greater convenience, adding additional functions, as well as medical care. To this end, many researchers have fabricated electrospun superabsorbent nanofibers to increase material absorption ability, to be utilized as personal hygiene products, microbe bio-filters, and disposable face masks [86,87]. Sivri (2018) used nanofibers electrospun of (PVA/SAP) aqueous polymer solutions to be coated onto face masks for developing virus barrier functions and liquid absorption functions. It was found that all face masks were successfully coated with nanofiber, according to Fourier transform infrared spectroscopy (FTIR) investigations and scanning electron microscopy (SEM). Air permeability and capacity to absorb liquids showed that the coating with nanofiber improved the face mask’s hydrophilicity while permeability of air decreased reversely [88].
The coronavirus pandemic outbreak has prompted a lack of face masks and respirators in the world. Therefore, there is an immediate need for a secure disinfection method, and reuse them, with minimum loss of efficiency and integrity [89,90,91,92]. Lee et al. (2019) developed high-performance membrane filters of polybenzimidazole (PBI) nanofiber that can be utilized for dustproof masks or other air filters. They indicated that the PBI nanofiber filter membrane achieved high filtration efficiency (~98.5%) at a significantly lower pressure drop (130 Pa), in contrast to the commercial face mask. They also demonstrated the PBI filter reusability membrane, due to its thermal, mechanical, and chemical stability, after the proposed cleaning process [93]. An injection molded autoclavable, scalable, conformable (iMASC) system was designed and produced by James et al. (2020) for aerosol-based protection N95 content filters that can be installed and replaced as desired. To understand the masking potential with various face forms and sizes, the finite element (FE) analysis tested the deformability of the iMASC system. The iMASC system has been shown to match several various face shapes and sizes with success, utilizing a test method confirmed by Occupational Safety and Health Administration (OSHA). These data support more qualification tests required for use in the healthcare sector [94].
Nazek et al. (2020) have improved a nanoporous flexible Si-based template on a silicon-on-insulator (SOI) wafer utilizing potassium hydroxides (KOH) etching, utilizing the template as a hard mask through a reactive ion etching process for transferring patterns onto a lightweight (<0.12 g) and flexible polymeric membrane. The flexible membrane might be utilized on the N95 mask as reusable to boost its filtration efficiency against particles sub-300 nm, including COVID-19. Furthermore, N95 mask reusability contributes toward eliminating the challenges surrounding single-use face mask shortages [95].
9. Conclusions
The COVID-19 outbreak has become a serious problem in modern human history. Wearing protective face masks, preserving personal hygiene, and social distancing should be followed to help prevent the spread of COVID-19. This disease has led to a worldwide increase in the usage of billions of face masks and respirators every day, resulting in a high demand for goods that produce them. In general, most commercial filtering facepieces use electrostatic filter media that can degrade over time (due to many different variables). Nanotechnologies play a crucial role in this issue by fabricating nanomaterials with special characteristics for air filtration. A nanofiber-based mask would not lose its efficiency in time or due to many different factors (because of its mechanical filtration efficiency protection, from the mask layers). In this regard, we summarize the filters based on electrospun nanofibers and their unique characteristics to increase filtration performance of face masks and respirators.
Acknowledgments
The authors are grateful for the financial support by USAID Partnerships for Enhanced Engagement in Research (PEER) Program—an international grants program that funds scientists and engineers in developing countries who partner with U.S. government-funded researchers to address global development challenges. The U.S. National Academies of Sciences administered it, Engineering and Medicine (NASEM), PEER/Iraq project/cycle 6.
Short Biography of Author
Dr. Gomaa A. M. Ali is an Assistant Professor at the Chemistry Department, Faculty of Science, Al–Azhar University, Egypt. He has 13 years of experience working in the research area of Materials Science, Nanocomposites, Humidity Sensing, Graphene, Supercapacitors, Water Treatment, and Drug Delivery. He was awarded his Ph.D. in Advanced Nanomaterials for Energy Storage from UMP, Malaysia. He is the recipient of some national and international prizes and awards, such as TWAS-AREP (2018), Gold Medals (Archimedes, Russia, 2014), Green Technology Award (CITREX, Malaysia, 2015), Gold Medals (British Invention Show, UK, 2015). He has published over 94 journal articles and six book chapters on a broad range of cross-disciplinary research fields. He has served as both a Senior Editor and board member of many international journals and a reviewer for more than 50 WoS journals. Dr. Gomaa is a co-Editor of the handbook “Waste recycling technologies for nanomaterials manufacturing” Springer, 2021.
Funding
This research was funded by the U.S. National Academies of Sciences administered it, Engineering and Medicine (NASEM), PEER/Iraq project/cycle 6.
Institutional Review Board Statement
Not applicable.
Informed Consent Statement
Not applicable.
Data Availability Statement
The data presented in this study are cited (reference numbers).
Conflicts of Interest
The authors declare no conflict of interest.
Footnotes
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations.
References
- 1.WHO . Policy Implications for Countries in Eastern Europe, Caucasus and Central Asia. Volume 1. WHO; Geneva, Switzerland: 2013. Health effects of particulate matter; pp. 2–10. [Google Scholar]
- 2.Burnett R., Chen H., Szyszkowicz M., Fann N., Hubbell B., Pope C.A., Apte J.S., Brauer M., Cohen A., Weichenthal S. Global estimates of mortality associated with long-term exposure to outdoor fine particulate matter. Proc. Natl. Acad. Sci. USA. 2018;115:9592–9597. doi: 10.1073/pnas.1803222115. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 3.Cohen A.J., Brauer M., Burnett R., Anderson H.R., Frostad J., Estep K., Balakrishnan K., Brunekreef B., Dandona L., Dandona R. Estimates and 25-year trends of the global burden of disease attributable to ambient air pollution: An analysis of data from the Global Burden of Diseases Study 2015. Lancet. 2017;389:1907–1918. doi: 10.1016/S0140-6736(17)30505-6. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 4.Legare P., Dwyer G.E., Murphy A., Smith S.J. Air Filtration Device. US9744493B2. 2017 (Patent) pp. 1–13.
- 5.Wang N., Yang Y., Al-Deyab S.S., El-Newehy M., Yu J., Ding B. Ultra-light 3D nanofibre-nets binary structured nylon 6–polyacrylonitrile membranes for efficient filtration of fine particulate matter. J. Mater. Chem. A. 2015;3:23946–23954. doi: 10.1039/C5TA06543G. [DOI] [Google Scholar]
- 6.Xu J., Liu C., Hsu P.-C., Liu K., Zhang R., Liu Y., Cui Y. Roll-to-roll transfer of electrospun nanofiber film for high-efficiency transparent air filter. Nano Lett. 2016;16:1270–1275. doi: 10.1021/acs.nanolett.5b04596. [DOI] [PubMed] [Google Scholar]
- 7.Bian Y., Wang R., Wang S., Yao C., Ren W., Chen C., Zhang L. Metal–organic framework-based nanofiber filters for effective indoor air quality control. J. Mater. Chem. A. 2018;6:15807–15814. doi: 10.1039/C8TA04539A. [DOI] [Google Scholar]
- 8.Al-Attabi R., Morsi Y., Schütz J.A., Cornu D., Maghe M., Dumée L.F. Flexible and reusable carbon nano-fibre membranes for airborne contaminants capture. Sci. Total Environ. 2021;754:142231. doi: 10.1016/j.scitotenv.2020.142231. [DOI] [PubMed] [Google Scholar]
- 9.Xiao J., Liang J., Zhang C., Tao Y., Ling G.-W., Yang Q.-H. Advanced Materials for Capturing Particulate Matter: Progress and Perspectives. Small Methods. 2018;2:1800012. doi: 10.1002/smtd.201800012. [DOI] [Google Scholar]
- 10.Sundarrajan S., Tan K.L., Lim S.H., Ramakrishna S. Electrospun Nanofibers for Air Filtration Applications. Procedia Eng. 2014;75:159–163. doi: 10.1016/j.proeng.2013.11.034. [DOI] [Google Scholar]
- 11.Wu H., Fan J., Chu C.-C., Wu J. Electrospinning of small diameter 3-D nanofibrous tubular scaffolds with controllable nanofiber orientations for vascular grafts. J. Mater. Sci. Mater. Med. 2010;21:3207–3215. doi: 10.1007/s10856-010-4164-8. [DOI] [PubMed] [Google Scholar]
- 12.Zhang M., Li X., Li S., Liu Y., Hao L. Electrospun poly(l-lactide)/zein nanofiber mats loaded with Rana chensinensis skin peptides for wound dressing. J. Mater. Sci. Mater. Med. 2016;27:136. doi: 10.1007/s10856-016-5749-7. [DOI] [PubMed] [Google Scholar]
- 13.Wang S.-X., Yap C.C., He J., Chen C., Wong S.Y., Li X. Electrospinning: A facile technique for fabricating functional nanofibers for environmental applications. Nanotechnol. Rev. 2016;5:51–73. doi: 10.1515/ntrev-2015-0065. [DOI] [Google Scholar]
- 14.Tsai W.-T. Toxic volatile organic compounds (VOCs) in the atmospheric environment: Regulatory aspects and monitoring in Japan and Korea. Environments. 2016;3:23. doi: 10.3390/environments3030023. [DOI] [Google Scholar]
- 15.Ciencewicki J., Jaspers I. Air pollution and respiratory viral infection. Inhal. Toxicol. 2007;19:1135–1146. doi: 10.1080/08958370701665434. [DOI] [PubMed] [Google Scholar]
- 16.Bonzini M., Tripodi A., Artoni A., Tarantini L., Marinelli B., Bertazzi P.A., Apostoli P., Baccarelli A. Effects of inhalable particulate matter on blood coagulation. J. Thromb. Haemost. 2010;8:662–668. doi: 10.1111/j.1538-7836.2009.03694.x. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 17.Zhu H., Hu B., Yang F. Removal of Sulfadiazine by Polyamide Nanofiltration Membranes: Measurement, Modeling, and Mechanisms. Membranes. 2021;11:104. doi: 10.3390/membranes11020104. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 18.Aziz M., Kasongo G. The Removal of Selected Inorganics from Municipal Membrane Bioreactor Wastewater Using UF/NF/RO Membranes for Water Reuse Application: A Pilot-Scale Study. Membranes. 2021;11:117. doi: 10.3390/membranes11020117. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 19.Schwarze P.E., Øvrevik J., Låg M., Refsnes M., Nafstad P., Hetland R.B., Dybing E. Particulate matter properties and health effects: Consistency of epidemiological and toxicological studies. Hum. Exp. Toxicol. 2006;25:559–579. doi: 10.1177/096032706072520. [DOI] [PubMed] [Google Scholar]
- 20.Schraufnagel D.E., Balmes J.R., Cowl C.T., De Matteis S., Jung S.-H., Mortimer K., Perez-Padilla R., Rice M.B., Riojas-Rodriguez H., Sood A. Air pollution and noncommunicable diseases: A review by the Forum of International Respiratory Societies’ Environmental Committee, Part 2: Air pollution and organ systems. CHEST. 2019;155:417–426. doi: 10.1016/j.chest.2018.10.041. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 21.Franchini M., Mannucci P.M. Air pollution and cardiovascular disease. Thromb. Res. 2012;129:230–234. doi: 10.1016/j.thromres.2011.10.030. [DOI] [PubMed] [Google Scholar]
- 22.Leem J.H., Kim S.T., Kim H.C. Public-health impact of outdoor air pollution for 2nd air pollution management policy in Seoul metropolitan area, Korea. Ann. Occup. Environ. Med. 2015;27:7. doi: 10.1186/s40557-015-0058-z. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 23.Newby D.E., Mannucci P.M., Tell G.S., Baccarelli A.A., Brook R.D., Donaldson K., Forastiere F., Franchini M., Franco O.H., Graham I., et al. Expert position paper on air pollution and cardiovascular disease. Eur. Heart J. 2015;36:83–93. doi: 10.1093/eurheartj/ehu458. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 24.Qiu H., Yu I.T.-S., Tian L., Wang X., Tse L.A., Tam W., Wong T.W. Effects of coarse particulate matter on emergency hospital admissions for respiratory diseases: A time-series analysis in Hong Kong. Environ. Health Perspect. 2012;120:572–576. doi: 10.1289/ehp.1104002. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 25.Zhu M., Han J., Wang F., Shao W., Xiong R., Zhang Q., Pan H., Yang Y., Samal S.K., Zhang F. Electrospun nanofibers membranes for effective air filtration. Macromol. Mater. Eng. 2017;302:1600353. doi: 10.1002/mame.201600353. [DOI] [Google Scholar]
- 26.Sanità di Toppi L., Sanità di Toppi L., Bellini E. Novel Coronavirus: How Atmospheric Particulate Affects Our Environment and Health. Challenges. 2020;11:6. doi: 10.3390/challe11010006. [DOI] [Google Scholar]
- 27.Gautam S., Hens L. COVID-19: Impact by and on the environment, health and economy. Environ. Dev. Sustain. 2020;22:4953–4954. doi: 10.1007/s10668-020-00818-7. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 28.Sarkodie S.A., Owusu P.A. Global assessment of environment, health and economic impact of the novel coronavirus (COVID-19) Environ. Dev. Sustain. 2020 doi: 10.1007/s10668-020-00801-2. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 29.Chua M.H., Cheng W., Goh S.S., Kong J., Li B., Lim J.Y.C., Mao L., Wang S., Xue K., Yang L., et al. Face Masks in the New COVID-19 Normal: Materials, Testing, and Perspectives. Research. 2020;2020:7286735. doi: 10.34133/2020/7286735. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 30.Ji D., Fan L., Li X., Ramakrishna S. Addressing the worldwide shortages of face masks. BMC Mater. 2020;2:1–11. doi: 10.1186/s42833-020-00015-w. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 31.Cole E.C., Cook C.E. Characterization of infectious aerosols in health care facilities: An aid to effective engineering controls and preventive strategies. Am. J. Infect. Control. 1998;26:453–464. doi: 10.1016/S0196-6553(98)70046-X. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 32.Wei J., Li Y. Airborne spread of infectious agents in the indoor environment. Am. J. Infect. Control. 2016;44:S102–S108. doi: 10.1016/j.ajic.2016.06.003. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 33.Asadi S., Cappa C.D., Barreda S., Wexler A.S., Bouvier N.M., Ristenpart W.D. Efficacy of masks and face coverings in controlling outward aerosol particle emission from expiratory activities. Sci. Rep. 2020;10:15665. doi: 10.1038/s41598-020-72798-7. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 34.Sungnak W., Huang N., Bécavin C., Berg M., Queen R., Litvinukova M., Talavera-López C., Maatz H., Reichart D., Sampaziotis F. SARS-CoV-2 entry factors are highly expressed in nasal epithelial cells together with innate immune genes. Nat. Med. 2020;26:681–687. doi: 10.1038/s41591-020-0868-6. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 35.Ruiz-Hitzky E., Darder M., Wicklein B., Ruiz-Garcia C., Martín-Sampedro R., del Real G., Aranda P. Nanotechnology Responses to COVID-19. Adv. Healthc. Mater. 2020;9:2000979. doi: 10.1002/adhm.202000979. [DOI] [PubMed] [Google Scholar]
- 36.O’Dowd K., Nair K.M., Forouzandeh P., Mathew S., Grant J., Moran R., Bartlett J., Bird J., Pillai S.C. Face masks and respirators in the fight against the COVID-19 pandemic: A review of current materials, advances and future perspectives. Materials. 2020;13:3363. doi: 10.3390/ma13153363. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 37.Hutten I.M. Handbook of Nonwoven Filter Media. Elsevier; Amsterdam, The Netherlands: 2007. [DOI] [Google Scholar]
- 38.Akduman C., Akcakoca K.E.P. Nanofibers in face masks and respirators to provide better protection. IOP Conf. Ser. Mater. Sci. Eng. 2018;460:012013. doi: 10.1088/1757-899X/460/1/012013. [DOI] [Google Scholar]
- 39.Lee K.P., Yip J., Kan C.W., Chiou J.C., Yung K.F. Reusable face masks as alternative for disposable medical masks: Factors that affect their wear-comfort. Int. J. Environ. Res. Public Health. 2020;17:6623. doi: 10.3390/ijerph17186623. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 40.Wang Q., Yu C. The role of masks and respirator protection against SARS-CoV-2. Infect. Control Hosp. Epidemiol. 2020;41:746–747. doi: 10.1017/ice.2020.83. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 41.Zou L., Ruan F., Huang M., Liang L., Huang H., Hong Z., Yu J., Kang M., Song Y., Xia J. SARS-CoV-2 viral load in upper respiratory specimens of infected patients. N. Engl. J. Med. 2020;382:1177–1179. doi: 10.1056/NEJMc2001737. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 42.Gardner P.D., Eshbaugh J.P., Harpest S.D., Richardson A.W., Hofacre K.C. Viable viral efficiency of N95 and P100 respirator filters at constant and cyclic flow. J. Occup. Environ. Hyg. 2013;10:564–572. doi: 10.1080/15459624.2013.818228. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 43.Rengasamy S., Shaffer R., Williams B., Smit S. A comparison of facemask and respirator filtration test methods. J. Occup. Environ. Hyg. 2017;14:92–103. doi: 10.1080/15459624.2016.1225157. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 44.Bałazy A., Toivola M., Adhikari A., Sivasubramani S.K., Reponen T., Grinshpun S.A. Do N95 respirators provide 95% protection level against airborne viruses, and how adequate are surgical masks? Am. J. Infect. Control. 2006;34:51–57. doi: 10.1016/j.ajic.2005.08.018. [DOI] [PubMed] [Google Scholar]
- 45.Serfozo N., Ondrácek J., Zíková N., Lazaridis M., Ždímal V. Size-resolved penetration of filtering materials from CE-marked filtering facepiece respirators. Aerosol Air Qual. Res. 2017;17:1305–1315. doi: 10.4209/aaqr.2016.09.0390. [DOI] [Google Scholar]
- 46.Shorten G.D. Personal protective equipment during the COVID-19 pandemic (Letter #1) Can. J. Anesth. 2020;67:1647–1648. doi: 10.1007/s12630-020-01784-4. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 47.Rossettie S., Perry C., Pourghaed M., Zumwalt M. Effectiveness of manufactured surgical masks, respirators, and home-made masks in prevention of respiratory infection due to airborne microorganisms. Southwest Respir. Crit. Care Chron. 2020;8:11–26. doi: 10.12746/swrccc.v8i34.675. [DOI] [Google Scholar]
- 48.Wibisono Y., Fadila C.R., Saiful S., Bilad M.R. Facile Approaches of Polymeric Face Masks Reuse and Reinforcements for Micro-Aerosol Droplets and Viruses Filtration: A Review. Polymers. 2020;12:2516. doi: 10.3390/polym12112516. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 49.Fang J., Zhang L., Sutton D., Wang X., Lin T. Needleless Melt-Electrospinning of Polypropylene Nanofibres. J. Nanomater. 2012;2012:382639. doi: 10.1155/2012/382639. [DOI] [Google Scholar]
- 50.Liu H., Huang J., Mao J., Chen Z., Chen G., Lai Y. Transparent antibacterial nanofiber air filters with highly efficient moisture resistance for sustainable particulate matter capture. iScience. 2019;19:214–223. doi: 10.1016/j.isci.2019.07.020. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 51.Tebyetekerwa M., Xu Z., Yang S., Ramakrishna S. Electrospun nanofibers-based face masks. Adv. Fiber Mater. 2020;2:161–166. doi: 10.1007/s42765-020-00049-5. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 52.Zhang Z., Ji D., He H., Ramakrishna S. Electrospun ultrafine fibers for advanced face masks. Mater. Sci. Eng. R. 2021;143:100594. doi: 10.1016/j.mser.2020.100594. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 53.Abdelrazeq H., Khraisheh M., Al Momani F., McLeskey J.T., Hassan M.K., Gad-el-Hak M., Tafreshi H.V. Performance of electrospun polystyrene membranes in synthetic produced industrial water using direct-contact membrane distillation. Desalination. 2020;493:114663. doi: 10.1016/j.desal.2020.114663. [DOI] [Google Scholar]
- 54.Parangusan H., Ponnamma D., Hassan M.K., Adham S., Al-Maadeed M.A.A. Designing Carbon Nanotube-Based Oil Absorbing Membranes from Gamma Irradiated and Electrospun Polystyrene Nanocomposites. Materials. 2019;12:709. doi: 10.3390/ma12050709. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 55.Benson N.U., Fred-Ahmadu O.H., Bassey D.E., Atayero A.A. COVID-19 pandemic and emerging plastic-based personal protective equipment waste pollution and management in Africa. J. Environ. Chem. Eng. 2021;9:105222. doi: 10.1016/j.jece.2021.105222. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 56.Kurian B.P., Daniel S., Ghosh S., Paul P., Reddy M.A., Das L., Darshan J., Roy A.D. The Need of Understanding the Importance and Use of Face Masks. J. Curr. Med Res. Opin. 2021;4:762–772. doi: 10.15520/jcmro.v4i02.388. [DOI] [Google Scholar]
- 57.Chellamani K.P., Veerasubramanian D., Balaji R.S.V. Surgical face masks: Manufacturing methods and classification. J. Acad. Ind. Res. 2013;2:320–324. [Google Scholar]
- 58.Ishack S., Lipner S.R. Applications of 3D printing technology to address COVID-19–related supply shortages. Am. J. Med. 2020;133:771–773. doi: 10.1016/j.amjmed.2020.04.002. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 59.Reneker D.H., Chun I. Nanometre diameter fibres of polymer, produced by electrospinning. Nanotechnology. 1996;7:216. doi: 10.1088/0957-4484/7/3/009. [DOI] [Google Scholar]
- 60.Abbas J.A., Said I.A., Mohamed M.A., Yasin S.A., Ali Z.A., Ahmed I.H. Electrospinning of polyethylene terephthalate (PET) nanofibers: Optimization study using taguchi design of experiment. IOP Conf. Ser. Mater. Sci. Eng. 2018;454:012130. doi: 10.1088/1757-899X/454/1/012130. [DOI] [Google Scholar]
- 61.Barhate R.S., Sundarrajan S., Pliszka D., Ramakrishna S. Fine chemical processing: The potential of nanofibres in filtration. Filtr. Sep. 2008;45:32–35. doi: 10.1016/S0015-1882(08)70092-2. [DOI] [Google Scholar]
- 62.Yang A., Cai L., Zhang R., Wang J., Hsu P.-C., Wang H., Zhou G., Xu J., Cui Y. Thermal management in nanofiber-based face mask. Nano Lett. 2017;17:3506–3510. doi: 10.1021/acs.nanolett.7b00579. [DOI] [PubMed] [Google Scholar]
- 63.Yang C. Aerosol Filtration Application Using Fibrous Media-An Industrial Perspective. Chin. J. Chem. Eng. 2012;20:1–9. doi: 10.1016/S1004-9541(12)60356-5. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 64.Yasin S.A., Abbas J.A., Saeed I.A., Ahmed I.H. The application of green synthesis of metal oxide nanoparticles embedded in polyethylene terephthalate nanofibers in the study of the photocatalytic degradation of methylene blue. Polym. Bull. 2020;77:3473–3484. doi: 10.1007/s00289-019-02919-4. [DOI] [Google Scholar]
- 65.Esfahani H., Jose R., Ramakrishna S. Electrospun ceramic nanofiber mats today: Synthesis, properties, and applications. Materials. 2017;10:1238. doi: 10.3390/ma10111238. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 66.Thavasi V., Singh G., Ramakrishna S. Electrospun nanofibers in energy and environmental applications. Energy Environ. Sci. 2008;1:205–221. doi: 10.1039/b809074m. [DOI] [Google Scholar]
- 67.Liu C., Hsu P.-C., Lee H.-W., Ye M., Zheng G., Liu N., Li W., Cui Y. Transparent air filter for high-efficiency PM2.5 capture. Nat. Commun. 2015;6:6205. doi: 10.1038/ncomms7205. [DOI] [PubMed] [Google Scholar]
- 68.Loesecke D., Murphey B. Machinery and processing: An overview of engine filtration. Filtr. Sep. 2008;45:17–19. doi: 10.1016/S0015-1882(08)70256-8. [DOI] [Google Scholar]
- 69.Shabafrooz V., Mozafari M., Vashaee D., Tayebi L. Electrospun nanofibers: From filtration membranes to highly specialized tissue engineering scaffolds. J. Nanosci. Nanotechnol. 2014;14:522–534. doi: 10.1166/jnn.2014.9195. [DOI] [PubMed] [Google Scholar]
- 70.Conlon M. A Facemask Having One or More Nanofiber Layers. WO2014143039A1. 2014 Sep 18;
- 71.Munzarová Nanocon M. Barrier fabric containing nanofiber layer; Proceedings of the Nanocon; Brno, Czech. 16–18 October 2013; pp. 16–19. [Google Scholar]
- 72.Skaria S.D., Smaldone G.C. Respiratory source control using surgical masks with nanofiber media. Ann. Occup. Hyg. 2014;58:771–781. doi: 10.1093/annhyg/meu023. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 73.Li X., Gong Y. Design of Polymeric Nanofiber Gauze Mask to Prevent Inhaling PM2.5 Particles from Haze Pollution. J. Chem. 2015;2015:460392. doi: 10.1155/2015/460392. [DOI] [Google Scholar]
- 74.Akduman C. Cellulose acetate and polyvinylidene fluoride nanofiber mats for N95 respirators. J. Ind. Text. 2019;50:1528083719858760. doi: 10.1177/1528083719858760. [DOI] [Google Scholar]
- 75.Salva J.M., Gutierrez D.D., Ching L.A., Ucab P.M., Cascon H., Tan N.P. Solution blow spinning (SBS)-assisted synthesis of well-defined carboxymethyl cellulose (CMC) nanowhiskers. Nanotechnology. 2018;29:50LT01. doi: 10.1088/1361-6528/aae2fc. [DOI] [PubMed] [Google Scholar]
- 76.Zhuang X., Yang X., Shi L., Cheng B., Guan K., Kang W. Solution blowing of submicron-scale cellulose fibers. Carbohydr. Polym. 2012;90:982–987. doi: 10.1016/j.carbpol.2012.06.031. [DOI] [PubMed] [Google Scholar]
- 77.Tan N.P.B., Paclijan S.S., Ali H.N.M., Hallazgo C.M.J.S., Lopez C.J.F., Ebora Y.C. Solution blow spinning (SBS) nanofibers for composite air filter masks. ACS Appl. Nano Mater. 2019;2:2475–2483. doi: 10.1021/acsanm.9b00207. [DOI] [Google Scholar]
- 78.Chen D., Wei L., Meng L., Wang D., Chen Y., Tian Y., Yan S., Mei L., Jiao J. High-performance self-powered UV detector based on SnO2-TiO2 nanomace arrays. Nanoscale Res. Lett. 2018;13:92. doi: 10.1186/s11671-018-2501-x. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 79.Mahmoud H.A., Narasimharao K., Ali T.T., Khalil K.M.S. Acidic peptizing agent effect on anatase-rutile ratio and photocatalytic performance of TiO2 nanoparticles. Nanoscale Res. Lett. 2018;13:48. doi: 10.1186/s11671-018-2465-x. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 80.Ruan D., Qin L., Chen R., Xu G., Su Z., Cheng J., Xie S., Cheng F., Ko F. Transparent PAN:TiO2 and PAN-co-PMA:TiO2 Nanofiber Composite Membranes with High Efficiency in Particulate Matter Pollutants Filtration. Nanoscale Res. Lett. 2020;15:7. doi: 10.1186/s11671-019-3225-2. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 81.Mauter M.S., Elimelech M. Environmental applications of carbon-based nanomaterials. Environ. Sci. Technol. 2008;42:5843–5859. doi: 10.1021/es8006904. [DOI] [PubMed] [Google Scholar]
- 82.Jahangiri M., Adl J., Shahtaheri S.J., Rashidi A., Ghorbanali A., Kakooe H., Forushani A.R., Ganjali M.R. Preparation of a new adsorbent from activated carbon and carbon nanofiber (AC/CNF) for manufacturing organic-vacbpour respirator cartridge. Iran. J. Environ. Health Sci. Eng. 2013;10:15. doi: 10.1186/1735-2746-10-15. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 83.Montazer M., Malekzadeh S.B. Electrospun antibacterial nylon nanofibers through in situ synthesis of nanosilver: Preparation and characteristics. J. Polym. Res. 2012;19:9980. doi: 10.1007/s10965-012-9980-8. [DOI] [Google Scholar]
- 84.Rahman M.M., Ashwin P., Thakkar I. Use of Nano Fibers in Filtration—A Review. Int. J. Sci. Res. Dev. 2016;4:1067–1072. [Google Scholar]
- 85.Karthick A., Nallathambi G. Nano silver incorporated electrospun polyacrylonitrile nanofibers and spun bonded polypropylene composite for aerosol filtration. J. Ind. Text. 2017;46:1342–1361. doi: 10.1177/1528083715622428. [DOI] [Google Scholar]
- 86.Brochocka A. Filtration Properties of Nonwoven Structures with Superabsorbents for Respiratory Protective Devices. Fibres Text. East. Eur. 2017;25:62–67. doi: 10.5604/01.3001.0010.1691. [DOI] [Google Scholar]
- 87.Majchrzycka K., Okrasa M., Jachowicz A., Szulc J., Brycki B., Gutarowska B. Application of Biocides and Super-Absorbing Polymers to Enhance the Efficiency of Filtering Materials. Molecules. 2019;24:3339. doi: 10.3390/molecules24183339. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 88.Sivri Ç. Improvement of protective and comfort properties of face masks using superabsorbent polymer containing nanofibers. Int. J. Cloth. Sci. Technol. 2018;30 doi: 10.1108/IJCST-10-2017-0169. [DOI] [Google Scholar]
- 89.Celina M., Martinez E., Omana M.A., Sanchez A., Wiemann D., Tezak M., Dargaville T.R. Extended use of face masks during the COVID-19 pandemic-Thermal conditioning and spray-on surface disinfection. Polym. Degrad. Stab. J. 2020;179:109251. doi: 10.1016/j.polymdegradstab.2020.109251. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 90.Liao L., Xiao W., Zhao M., Yu X., Wang H., Wang Q., Chu S., Cui Y. Can N95 respirators be reused after disinfection? How many times? ACS Nano. 2020;14:6348–6356. doi: 10.1021/acsnano.0c03597. [DOI] [PubMed] [Google Scholar]
- 91.Rubio-Romero J.C., del Carmen Pardo-Ferreira M., García J.A.T., Calero-Castro S. Disposable masks: Disinfection and sterilization for reuse, and non-certified manufacturing, in the face of shortages during the COVID-19 pandemic. Saf. Sci. J. 2020;129:104830. doi: 10.1016/j.ssci.2020.104830. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 92.Suen L.K.P., Guo Y.P., Ho S.S.K., Au-Yeung C.H., Lam S.C. Comparing mask fit and usability of traditional and nanofibre N95 filtering facepiece respirators before and after nursing procedures. J. Hosp. Infect. 2020;104:336–343. doi: 10.1016/j.jhin.2019.09.014. [DOI] [PubMed] [Google Scholar]
- 93.Lee S., Cho A.R., Park D., Kim J.K., Han K.S., Yoon I.-J., Lee M.H., Nah J. Reusable polybenzimidazole nanofiber membrane filter for highly breathable PM2. 5 dust proof mask. ACS Appl. Mater. Interfaces. 2019;11:2750–2757. doi: 10.1021/acsami.8b19741. [DOI] [PubMed] [Google Scholar]
- 94.Byrne J.D., Wentworth A.J., Chai P.R., Huang H.-W., Babaee S., Li C., Becker S.L., Tov C., Min S., Traverso G. Injection Molded Autoclavable, Scalable, Conformable (iMASC) system for aerosol-based protection: A prospective single-arm feasibility study. BMJ Open. 2020;10:039120. doi: 10.1136/bmjopen-2020-039120. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 95.El-Atab N., Qaiser N., Badghaish H.S., Shaikh S.F., Hussain M.M. A Flexible Nanoporous Template for the Design and Development of Reusable Anti-COVID-19 Hydrophobic Face Masks. ACS Nano. 2020;14:7659–7665. doi: 10.1021/acsnano.0c03976. [DOI] [PMC free article] [PubMed] [Google Scholar]
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Data Availability Statement
The data presented in this study are cited (reference numbers).