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. 2018 May 31;2(5):155–161. doi: 10.1002/2018GH000135

Comment on “Next‐Generation Ice Core Technology Reveals True Minimum Natural Levels of Lead (Pb) in the Atmosphere: Insights From the Black Death” by More et al.

Richard Bindler 1,
PMCID: PMC7007141  PMID: 32158019

Abstract

Over the past four decades numerous studies of lake sediment, marine sediment, and peat from sites in close proximity to mining or metallurgical centers and in remote locations have detailed local and regional histories of lead (Pb) pollution in Europe. Contrary to More et al.'s (2017, https://doi.org/10.1002/2017GH000064) claim that “previous assumptions about preindustrial “natural” background lead levels in the atmosphere have been misleading,” these studies have clearly shown that true natural background conditions occurred more than 2,500 or even 3,500 years ago, and Pb pollution has proceeded uninterrupted since. The implications of this have been discussed within the context of environmental policy, for example, European Water Framework Directive. Though these records reflect a common European narrative of mining, metallurgy, and pollution, each reflects a combination of local and regional events, leading to differences in the timing and intensity of changes in each Pb record. No one record—ice or otherwise—fully represents the three millennia Pb pollution history in Europe. While the resolution of the ice record is impressive, there are questions about its interpretation. First, the authors discount local and regional Pb sources, whereas there is a close connection between the mining history in an area 40 km from the glacier and changes in a nearby lake Pb record; second, significant changes in ice chemistry cooccurring with the lowest Pb values are overlooked. A sharp increase in Ca/Fe ratios occurs precisely with the steepest Pb declines during the Black Death and mid‐1400s, suggesting additional processes influencing the Pb record.

Keywords: lead pollution, Europe, preindustrial, climate change, natural archives

Key Points

  • Four decades of research have detailed the Pb pollution history in Europe, including background levels occurring >3,000 years ago

  • Mining and metallurgy occurred in a wide range of locations resulting in local and regional histories within a common European narrative

  • Colle Gnifetti record contains many interesting details, but further examination of the chemistry is needed to understand the Pb record

1. Four Decades of Research on Three Millennia of Pb Pollution in Western European

The analytical developments in ice core research are impressive, not least the ability to perform very high‐resolution and even continuous trace‐level analyses of ice cores that may result in “a million new environmental data points.”. However, a million new data points may not necessarily result in new knowledge. While there are remarkable details in this new high‐resolution analysis of a 2,000‐year ice record from the Swiss‐Italian Alps by More et al. (2017)—notably the precipitous drop in lead (Pb) at the time of the Black Death that is one focus of the paper—the broader context and wider implications are already well established. Phrases such as “reveals true natural levels,” “contrary to widespread assumptions,” “significantly alter our understanding,” and “new data show that human activity has polluted European air for the last c. 2000 years” implicitly suggest the authors have uncovered something not previously known and lead to a few criticisms that I address below. The authors place too much emphasis on the historical story, but insufficiently on a complete analysis of their data and not at all on putting their data into the well‐established framework of millennial Pb pollution in Europe. The many references I cite here represent only a sampling of this work.

It is unclear what the authors mean precisely by “widespread assumptions” or “alter[ing] our understanding” regarding natural Pb levels. The period of the Black Death is certainly the lowest point in this one ice record, but more than four decades of research involving analyses of lake‐sediment, marine‐sediment, and peat records from many sites across Western Europe has already established not only that human activities have contributed to atmospheric Pb pollution uninterruptedly over the past 2,000 years, but that it is necessary to go back 2,500 or even 3,500 years in order to establish background, prepollution conditions (Figures 1b–1f), which is beyond the 2,000‐year time frame of the ice record. These studies have included sites in, for example, England, Switzerland, Sweden, Spain, France, Germany, Scotland, and Austria (Bindler et al., 1999; Brännvall et al., 1999, 2001; Breitenlechner et al., 2010; Cloy et al., 2008; Elbaz‐Poulichet et al., 2011; Forel et al., 2010; Garcia‐Alix et al., 2013; Jouffroy‐Bapicot et al., 2007; Klaminder et al., 2003; Küttner et al., 2014; Kylander et al., 2005; Le Roux et al., 2004, 2005; Leblanc et al., 2000; Lee & Tallis, 1973; Manteca et al., 2017; Martínez‐Cortizas et al., 2002, 2016; Mil‐Homens et al., 2016; Shotyk et al., 1998; Thevenon et al., 2011). This research in turn rests on the exploratory work by Clair Patterson and coworkers during the 1960–1980s of the historical dimensions of metal production (Murozumi et al., 1969; Patterson, 1965, 1971, 1972; Settle & Patterson, 1980).

Figure 1.

Figure 1

Comparison of the new, high‐resolution, 2000‐year ice record from the Swiss‐Italian Alps with other lead records from Europe: (a) discrete lead concentration data from the Colle Gnifetti ice record (with superimposed 10‐point running average), and comparisons of the Pb enrichment factor from the ice record (light grey circles and 10‐point running average) in comparison to (b) annually laminated lake‐sediment record from Kassjön, northern Sweden (Brännvall et al., 1999); (c) peat record from Store Mosse, southern Sweden; (d) peat record from Kolhütte Moor in the Black Forest, Germany (Le Roux et al., 2005); (e) peat record from Ludlow Bog, England (Le Roux et al., 2004); and (f) lake‐sediment record from the alpine lake Meidsee, Switzerland (Thevenon et al., 2011), located about 35 km from Colle Gnifetti. The dashed vertical line corresponds to the peak of the Black Death, 1350 CE, discussed in detail by More et al. (2017) (note that the x axis units are different for the lead records).

This large body of work on environmental archives covering the Pb record in Europe is summarily addressed by More et al. (2017) in just five lines in the introduction, and surprisingly, thereafter, the results of the ice core analyses are never evaluated and discussed within the context of this work.

2. Assumptions of Natural Background Levels and Environmental Implications of Three Millennia of Pb Pollution

“Previous assumptions about preindustrial “natural” background lead levels in the atmosphere—and potential impacts on humans—have been misleading, with significant implications for current environmental, industrial, and public health policy, as well as for the history of human lead exposure….

The new measurements significantly alter our understanding of atmospheric Pb pollution hitherto labeled as natural background and therefore assumed to be safe.”

A substantial body of work has preceded the authors' assertion that the million new environmental data points “significantly alter our understanding” of the environmental and health implications of millennial Pb pollution. Whereas More et al. (2017) can only allude to the health and environmental implications of their ice core data, there have been studies that have explicitly explored these concepts. Again, Patterson (Settle & Patterson, 1980), as well as Jerome Nriagu (1983), paved the way into investigating the health dimensions of historical metal contamination. Since then a few studies have assessed the metal exposure of preindustrial populations, for example, the analysis of bones from an ancient mining site in Jordan (Pyatt et al., 2000) and tooth enamel in England spanning the period from 5500 to 300 bp (Budd et al., 2004).

It is similarly surprising when More et al. (2017) write, “Previous assumptions about preindustrial “natural” background lead levels in the atmosphere … have been misleading.” In a landmark study, Renberg et al. (1994) opened with the statement, “Despite evidence from Greenland ice cores for pre industrial trace metal contamination it is commonly assumed that air pollution in remote areas is a recent problem caused by industrial activities … Here we report … that atmospheric lead deposition increased above background levels more than 2,600 years ago.” Their final concluding sentence was, “We believe our investigation challenges the commonly held view of a ‘clean’ pre‐industrial environment.”

Since then, the concept of background conditions and the environmental implications of millennial changes in Pb deposition in Europe have been explicitly discussed, such as in regard to soil and sediment quality and the concept of natural reference conditions as well as how these data could inform present‐day environmental management goals, for example, the European Water Framework Directive (Bindler et al., 2009, 2011). Two decades ago, for example, we modeled the concentration and storage of Pb in Swedish boreal forest soils over the past 5,500 years based on the Pb accumulation records from peat cores (Figure 1c; Bindler et al., 1999; Klaminder et al., 2003). Our objective had been to model a natural background concentration in the biologically active humus layer that we considered the proper reference point for ecotoxicological studies. A guiding tenet to that research was that “accumulation of Pb, and other heavy metals, has occurred over a long‐term period, therefore, future environmental goals must be viewed in a long‐term perspective.”

We later synthesized these and other data from studies of peat and lake sediments, forest soils, and vegetation, expressly linking preindustrial Pb pollution with contemporary biogeochemical cycling (Bindler, 2011; Bindler et al., 2011, 2008; Klaminder et al., 2006; Renberg et al., 2009). But a point of interest in the ice data is that, whereas Patterson (1965) estimated—later supported by analyses of peat records—there had been a 1,000‐fold increase in Pb in the atmosphere, the new ice Pb concentrations vary as much as 44,000‐fold.

3. European Narrative, but Local and Regional Sources of Historical Pb Pollution

“[O]ur new measurements of Pb deposition suggest that Europe's booming metal production ~1180–1220 C.E. (the highest preindustrial Pb peak in our record) may have generated pollution levels rivaling those ~1650 C.E.”

“We argue that British mines and smelting sites were the likely dominant source of Pb”

While there is a common historical narrative to mining and metallurgy in Europe over the past several millennia—and thus also metal pollution (Renberg et al., 2001)—the authors should be cautious in suggesting that one ice record represents European pollution history as a whole, although ultimately they tie events in England to changes in the ice record. When the many Pb records across Western Europe are compared, the specific details such as the timing and intensity differ greatly between sites, indicating the importance of local or regional histories. For example, in Figures 1b–1f there are substantial differences among the records in the timing and intensity of the Roman Pb peak, the onset of a medieval increase in Pb, and the relative importance of each period. One notable comparison is the Ludlow Bog record from England (Figure 1e), which declines over a longer period including the Black Death, but not to background levels, which have not occurred at the site since 1000 BCE.

It is surprising that the authors discuss the alpine ice record mainly in terms of English Pb sources and discount all of the mining areas to be found in close proximity to the Alps. This would include the extensive mining and metallurgy that took place in the Vosges Mountains in eastern France, where Pb concentrations increase from the late tenth century (Forel et al., 2010; Jouffroy‐Bapicot et al., 2007; Mariet et al., 2016), as well as many areas in the Alps (Breitenlechner et al., 2014; Cattin et al., 2011; Py et al., 2014). That Pb levels do not return to background at any point in any of these regional records, which indicates that despite the rise and fall of mining and metallurgy at various time points, pollution never ceased.

Another comparison of interest is the Holocene sediment record from Meidsee, a Swiss alpine lake located only ~35 km to the north of Colle Gnifetti. In the Meidsee record the largest Pb enrichment is centered on 140 BCE, which precedes the start of the ice record, with an increase of almost equal magnitude in the Middle Ages (Figure 1f; Thevenon et al., 2011). These peaks coincide with periods of active silver mining and minting that took place in the Wallis (Valais) region (Guénette‐Beck et al., 2009), which is only 20 km to the west of Meidsee and 40 km northwest of Colle Gnifetti. The Pb isotopic compositions of the Wallis ores and artefacts plot on the mixing line for the Meidsee sediment record. This history not only fits well with the Meidsee sediment record but might also be relevant for the ice record. Separate from this, Pb isotope data from previous work from Colle Gnifetti also point toward regional Pb sources (Gabrielli, 2008).

4. Exploring Details in the Ice Record

The high‐resolution analyses by More et al. (2017) have the potential to add some interesting details to an already extensive body of work on historical Pb pollution in Europe, but most of the details in this high‐resolution record remain unexplored. This is not only in regard to examining the record in light of the many available Pb records (Figures 1b–1f) but also in examining the details of the Pb record with regard to the chemistry of the ice itself. One of the important advances in the past two decades in the study of ancient pollution has been the increased scope of the analyses that extend beyond Pb concentrations and enrichment factors. An analysis of Pb within a larger geochemical (and often also pollen) context can provide a more complete understanding of the changes in Pb and the important drivers behind them (e.g., Currás et al., 2012; Karlsson et al., 2015; Küttner et al., 2014).

For the ice data, one noteworthy detail in the supporting information is that the exponential declines in Pb concentrations during the Black Death and again during the mid‐1400s occur over the same exact time frame as an approximately tenfold increase in the Ca/Fe ratio (Pearson's correlation for Ca/Fe versus ln[Pb] is −0.66, p = 0.01; Figures 2a and 2b). Being insufficiently familiar with the complexity of ice chemistry, I can only speculate on the significance of this change in Ca/Fe, but it suggests that there may be processes beyond only pollution that control the Pb record in the ice. Based on the individual concentration records of Ca and Fe (Ca being enriched, for example, in Saharan dust events), the authors preclude changes in atmospheric circulation patterns; however, the pronounced change in the Ca/Fe ratio suggests a change in precipitation source regions for the glacier, whereby the lowest Pb values in the ice may reflect periods with air masses originating from relatively cleaner source regions. Observationally, these two periods of elevated Ca/Fe coincide with increased flood frequency in the French Alps (Wilhelm et al., 2013), and with minima in solar insolation (Steinhilber et al., 2009)—periods of climate change linked to plague outbreaks (Schmid et al., 2015). (Addendum: more recently published data from this Colle Gnifetti ice record by some of the coauthors, Bohleber et al., 2018, provide a stronger indication that climate exerted a strong influence on the Pb record, indicated by the strong covariation between δ18O and Pb; Figure 2c.) Careful evaluation of the ice Pb record within a larger geochemical data set derived from the high‐resolution continuous analyses not only may yield more valuable insights on pollution transport and deposition at high elevations in the Alps but also may contribute further to identifying the origin of air masses during historical periods.

Figure 2.

Figure 2

Pb concentrations and Ca/Fe ratios in the Colle Gnifetti ice record: (a) plotted for the period 1100–1600 CE (time interval provided in supplementary data) and (b) scatterplot of ln[Pb] concentration versus Ca/Fe. (c) New data from the ice record for δ18O (Bohleber et al., 2018) and Pb, which adds support for a climate imprint on the Pb record.

Conflict of Interest

The authors declare no conflicts of interest relevant to this study.

Bindler, R. (2018). Comment on “Next‐generation ice core technology reveals true minimum natural levels of lead (Pb) in the atmosphere: Insights from the Black Death” by More et al. GeoHealth, 2, 155–161. 10.1002/2018GH000135

This article is a comment on More et al. (2017) https://doi.org/10.1002/2017GH000064.

This article was corrected on 15 JUL 2019. The online version of this article has been modified to include a Conflict of Interest statement.

References

  1. Bindler, R. (2011). Contaminated lead environments of man: Reviewing the lead isotopic evidence in sediments, peat, and soils for the temporal and spatial patterns of atmospheric lead pollution in Sweden. Environmental Geochemistry and Health, 33, 311–329. [DOI] [PubMed] [Google Scholar]
  2. Bindler, R. , Brännvall, M.‐L. , Renberg, I. , Emteryd, O. , & Grip, H. (1999). Natural lead concentrations in pristine boreal forest soils and past pollution trends: A reference for critical load models. Environmental Science & Technology, 33, 3362–3367. [Google Scholar]
  3. Bindler, R. , Renberg, I. , & Klaminder, J. (2008). Bridging the gap between ancient metal pollution and contemporary biogeochemistry. Journal of Paleolimnology, 40, 755–770. [Google Scholar]
  4. Bindler, R. , Renberg, I. , Rydberg, J. , & Andrén, T. (2009). Widespread waterborne pollution in central Swedish lakes and the Baltic Sea from pre‐industrial mining and metallurgy. Environmental Pollution, 157, 2132–2141. [DOI] [PubMed] [Google Scholar]
  5. Bindler, R. , Rydberg, J. , & Renberg, I. (2011). Establishing natural sediment reference conditions for metals and the legacy of long‐range and local pollution on lakes in Europe. Journal of Paleolimnology, 45, 519–531. [Google Scholar]
  6. Bohleber, P. , Erhardt, T. , Spaulding, N. , Hoffmann, H. , Fischer, H. , & Mayewski, P. (2018). Temperature and mineral dust variability recorded in two low‐accumulation Alpine ice cores over the last millennium. Climate of the Past, 14, 21–37. [Google Scholar]
  7. Brännvall, M.‐L. , Bindler, R. , Emteryd, O. , & Renberg, I. (2001). Four thousand years of atmospheric lead pollution in northern Europe: A summary from Swedish lake sediments. Journal of Paleolimnology, 25, 421–435. [Google Scholar]
  8. Brännvall, M.‐L. , Bindler, R. , Renberg, I. , Emteryd, O. , Bartnicki, J. , & Billström, K. (1999). The Medieval metal industry was the cradle of modern large‐scale atmospheric lead pollution in northern Europe. Environmental Science & Technology, 33, 4391–4395. [Google Scholar]
  9. Breitenlechner, E. , Hilber, M. , Lutz, J. , Kathrein, Y. , Unterkircher, A. , & Oeggl, K. (2010). The impact of mining activities on the environment reflected by pollen, charcoal and geochemical analyses. Journal of Archaeological Science, 37, 1458–1467. [Google Scholar]
  10. Breitenlechner, E. , Stöllner, T. , Thomas, P. , Lutz, J. , & Oeggl, K. (2014). An interdisciplinary study of the environmental reflection of prehistoric mining activities at the Mittenberg Main Lode (Salzburg, Austria). Archaeometry, 56, 102–128. [Google Scholar]
  11. Budd, P. , Montgomery, J. , Evans, J. , & Trickett, M. (2004). Human lead exposure in England from approximately 5500 BP to the 16th century AD. Science of the Total Environment, 318, 45–58. [DOI] [PubMed] [Google Scholar]
  12. Cattin, F. , Guenette‐Beck, B. , Curdy, P. , Meisser, N. , Ansermet, S. , Hofmann, B. , et al. (2011). Provenance of Early Bronze Age metal artefacts in Western Switzerland using elemental and lead isotopic compositions and their possible relation with copper minerals of the nearby Valais. Journal of Archaeological Science, 38, 1221–1233. [Google Scholar]
  13. Cloy, J. M. , Farmer, J. G. , Graham, M. C. , MacKenzie, A. B. , & Cook, G. T. (2008). Historical records of atmospheric Pb deposition in four Scottish ombrotrophic peat bogs: An isotopic comparison with other records from Western Europe and Greenland. Global Biogeochemical Cycles, 22, GB2016 10.1029/2007GB003059 [DOI] [Google Scholar]
  14. Currás, A. , Zamora, L. , Reed, J. M. , García‐Soto, E. , Ferrero, S. , Armengol, X. , et al. (2012). Climate change and human impact in central Spain during Roman times: High‐resolution multi‐proxy analysis of a tufa lake record (Somolinos, 1280 m asl). Catena, 89, 31–53. [Google Scholar]
  15. Elbaz‐Poulichet, F. , Dezileau, L. , Freydier, R. , Cossa, D. , & Sabatier, P. (2011). A 3500‐year record of Hg and Pb contamination in a Mediterranean Sedimentary Archive (The Pierre Blanche Lagoon, France). Environmental Science & Technology, 45, 8642–8647. [DOI] [PubMed] [Google Scholar]
  16. Forel, B. , Monna, F. , Petit, C. , Bruguier, O. , Losno, R. , Fluck, P. , et al. (2010). Historical mining and smelting in the Vosges Mountains (France) recorded in two ombrotrophic peat bogs. Journal of Geochemical Exploration, 107, 9–20. [Google Scholar]
  17. Gabrielli, J. (2008). Trace elements and polycyclic aromatic hydrocarbons (PAH) in snow and ice sampled at Colle Gnifetti, Monte Rosa (4450 m), during the last 10,000 years: Environmental and climatic implications. (PhD), Université Joseph‐Fourier‐Grenoble.
  18. Garcia‐Alix, A. , Jimenez‐Espejo, F. J. , Lozano, J. A. , Jimenez‐Moreno, G. , Martinez‐Ruiz, F. , Garcia Sanjuan, L. , et al. (2013). Anthropogenic impact and lead pollution throughout the Holocene in Southern Iberia. Science of the Total Environment, 449, 451–460. [DOI] [PubMed] [Google Scholar]
  19. Guénette‐Beck, B. , Meisser, N. , & Curdy, P. (2009). New insights into the ancient silver production of the Wallis area, Switzerland. Archaeological and Anthropological Sciences, 1, 215. [Google Scholar]
  20. Jouffroy‐Bapicot, I. , Pulido, M. , Baron, S. , Galop, D. , Monna, F. , Lavoie, M. , et al. (2007). Environmental impact of early palaeometallurgy: Pollen and geochemical analysis. Vegetation History and Archaeobotany, 16, 251–258. [Google Scholar]
  21. Karlsson, J. , Segerstrom, U. , Berg, A. , Mattielli, N. , & Bindler, R. (2015). Tracing modern environmental conditions to their roots in early mining, metallurgy, and settlement in Gladhammar, southeast Sweden: Vegetation and pollution history outside the traditional Bergslagen mining region. Holocene, 25, 944–955. [Google Scholar]
  22. Klaminder, J. , Renberg, I. , Bindler, R. , Appleby, P. G. , Emteryd, O. , & Grip, H. (2006). Estimating the mean residence time of lead in the mor layer of boreal forest soils using 210‐lead, stable lead and a soil chronosequence. Biogeochemistry, 78, 31–49. [Google Scholar]
  23. Klaminder, J. , Renberg, I. , Bindler, R. , & Emteryd, O. (2003). Isotopic trends and background fluxes of atmospheric lead deposition in N Europe: Analyses of three ombrotrophic bogs from south Sweden. Global Biogeochemical Cycles, 17, 1019 10.1029/2002GB001921 [DOI] [Google Scholar]
  24. Küttner, A. , Mighall, T. M. , De Vleeschouwer, F. , Mauquoy, D. , Cortizas, A. M. , Foster, I. D. L. , & Krupp, E. (2014). A 3300‐year atmospheric metal contamination record from Raeburn Flow raised bog, south west Scotland. Journal of Archaeological Science, 44, 1–11. [Google Scholar]
  25. Kylander, M. E. , Weiss, D. J. , Martinez Cortizas, A. , Spiro, B. , Garcia‐Sanchez, R. , & Coles, B. J. (2005). Refining the pre‐industrial atmospheric Pb isotope evolution curve in Europe using an 8000 year old peat core from NW Spain. Earth and Planetary Science Letters, 240, 467–485. [Google Scholar]
  26. Le Roux, G. , Aubert, D. , Stille, P. , Krachler, M. , Kober, B. , Cheburkin, A. , et al. (2005). Recent atmospheric Pb deposition at a rural site in southern Germany assessed using a peat core and snowpack, and comparison with other archives. Atmospheric Environment, 39, 6790–6801. [Google Scholar]
  27. Le Roux, G. , Weiss, D. , Grattan, J. P. , Givelet, N. , Krachler, M. , Cheburkin, A. , et al. (2004). Identifying the sources and timing of ancient and medieval atmospheric lead pollution in England using a peat profile from Lindow bog, Manchester. Journal of Environmental Monitoring, 6, 502–510. [DOI] [PubMed] [Google Scholar]
  28. Leblanc, M. , Morales, J. , Borrego, J. , & Elbaz‐Poulicet, F. (2000). 4,500‐year‐old mining pollution in southwestern Spain: Long‐term implications for modern mining pollution. Economic Geology, 95, 655–662. [Google Scholar]
  29. Lee, J. A. , & Tallis, J. H. (1973). Regional and historical aspects of lead pollution in Britain. Nature, 245, 216–218. [DOI] [PubMed] [Google Scholar]
  30. Manteca, J.‐I. , Ros‐Sala, M. , Ramallo‐Asensio, S. , Navarro‐Hervás, F. , Rodríguez‐Estrella, T. , Cerezo‐Andreo, F. , et al. (2017). Early metal pollution in southwestern Europe: The former littoral lagoon of El Almarjal (Cartagena mining district, S.E. Spain). A sedimentary archive more than 8000 years old. Environmental Science and Pollution Research, 24, 10,584–10,603. [DOI] [PubMed] [Google Scholar]
  31. Mariet, A. L. , de Vaufleury, A. , Begeot, C. , Walter‐Simonnet, A. V. , & Gimbert, F. (2016). Palaeo‐pollution from mining activities in the Vosges Mountains: 1000 years and still bioavailable. Environmental Pollution, 214, 575–584. [DOI] [PubMed] [Google Scholar]
  32. Martínez‐Cortizas, A. , Garcia‐Rodeja, E. , Pontevedra‐Pombal, X. , Nóvoa Muñoz, J. C. , Weiss, D. , & Cheburkin, A. (2002). Atmospheric Pb deposition in Spain during the last 4600 years recorded by two ombrotrophic peat bogs and the implications for the use of peat as archive. Science of the Total Environment, 292, 33–44. [DOI] [PubMed] [Google Scholar]
  33. Martínez‐Cortizas, A. , Lopez‐Merino, L. , Bindler, R. , Mighall, T. , & Kylander, M. E. (2016). Early atmospheric metal pollution provides evidence for Chalcolithic/Bronze Age mining and metallurgy in Southwestern Europe. Science of the Total Environment, 545, 398–406. [DOI] [PubMed] [Google Scholar]
  34. Mil‐Homens, M. , Vale, C. , Naughton, F. , Brito, P. , Drago, T. , Anes, B. , et al. (2016). Footprint of Roman and modern mining activities in a sediment core from the southwestern Iberian Atlantic shelf. Science of the Total Environment, 571, 1211–1221. [DOI] [PubMed] [Google Scholar]
  35. More, A. F. , Spaulding, N. E. , Bohleber, P. , Handley, M. J. , Hoffmann, H. , Korotkikh, E. V. , et al. (2017). Next‐generation ice core technology reveals true minimum natural levels of lead (Pb) in the atmosphere: Insights from the Black Death. GeoHealth, 1(4), 211–219. 10.1002/2017GH000064 [DOI] [PMC free article] [PubMed] [Google Scholar]
  36. Murozumi, M. , Chow, T. J. , & Patterson, C. C. (1969). The possibility of measuring variatioins in the intensity of worldwide lead smelting during medieval and ancient times using lead aerosol deposits in polar snow strata. Memoirs of the Muroran Institute of Technology, 6, 733–742. [Google Scholar]
  37. Nriagu, J. O. (1983). Lead and lead poisoning in antiquity. New York: Wiley‐Interscience. [Google Scholar]
  38. Patterson, C. (1965). Contaminated and natural lead environments of man. Archives of Environmental Health, 11, 344–360. [DOI] [PubMed] [Google Scholar]
  39. Patterson, C. C. (1971). Native copper, silver, and gold accessible to early metallurgists. American Antiquity, 36, 286–321. [Google Scholar]
  40. Patterson, C. C. (1972). Silver stocks and losses in Ancient and Medieval times. The Economic History Review, 25, 205–234. [Google Scholar]
  41. Py, V. , Véron, A. , Edouard, J.‐L. , Beaulieu, J.‐L. D. , Ancel, B. , Segard, M. , et al. (2014). Interdisciplinary characterisation and environmental imprints of mining and forestry in the upper Durance valley (France) during the Holocene. Quaternary International, 353, 74–97. [Google Scholar]
  42. Pyatt, F. B. , Gilmore, G. , Grattan, J. P. , Hunt, C. O. , & Mclaren, S. (2000). An Imperial Legacy? An Exploration of the Environmental Impact of Ancient Metal Mining and Smelting in Southern Jordan. Journal of Archaeological Science, 27, 771–778. [Google Scholar]
  43. Renberg, I. , Bigler, C. , Bindler, R. , Norberg, M. , Rydberg, J. , & Segerström, U. (2009). Environmental history: A piece in the puzzle for establishing plans for environmental management. Journal of Environmental Management, 8, 2794–2800. [DOI] [PubMed] [Google Scholar]
  44. Renberg, I. , Bindler, R. , & Brännvall, M.‐L. (2001). Using the historical atmospheric lead deposition record as a chronological marker in sediment deposits in Europe. Holocene, 11, 511–516. [Google Scholar]
  45. Renberg, I. , Wik‐Persson, M. , & Emteryd, O. (1994). Pre‐industrial atmospheric lead contamination detected in Swedish lake sediments. Nature, 368, 323–326. [Google Scholar]
  46. Schmid, B. V. , Büntgen, U. , Easterday, W. R. , Ginzler, C. , Walloe, L. , Bramanti, B. , & Stenseth, N. C. (2015). Climate‐driven introduction of the Black Death and successive plague reintroductions into Europe. Proceedings of the National Academy of Sciences of the United States of America, 112, 3020–3025. [DOI] [PMC free article] [PubMed] [Google Scholar]
  47. Settle, D. , & Patterson, C. C. (1980). Lead in Albacore: Guide to lead pollution in Americans. Science, 207, 1167–1176. [DOI] [PubMed] [Google Scholar]
  48. Shotyk, W. , Weiss, D. , Appleby, P. G. , Cheburkin, A. K. , Frei, R. , Gloor, M. , et al. (1998). History of atmospheric lead deposition since 12,370 14C yr BP from a peat bog, Jura mountains, Switzerland. Science, 281, 1635–1640. [DOI] [PubMed] [Google Scholar]
  49. Steinhilber, F. , Beer, J. , & Frohlich, C. (2009). Total solar irradiance during the Holocene. Geophysical Research Letters, 36, L19704 10.1029/2009GL040142 [DOI] [Google Scholar]
  50. Thevenon, F. , Guédron, S. , Chiaradia, M. , Loizeau, J.‐L. , & Poté, J. (2011). (Pre‐) historic changes in natural and anthropogenic heavy metals deposition inferred from two contrasting Swiss Alpine lakes. Quaternary Science Reviews, 30, 224–233. [Google Scholar]
  51. Wilhelm, B. , Arnaud, F. , Sabatier, P. , Magand, O. , Chapron, E. , Courp, T. , et al. (2013). Palaeoflood activity and climate change over the last 1400 years recorded by lake sediments in the north‐west European Alps. Journal of Quaternary Science, 28, 189–199. [Google Scholar]

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