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. 2015 May 12;75(5):209. doi: 10.1140/epjc/s10052-015-3425-6

Search for production of WW/WZ resonances decaying to a lepton, neutrino and jets in pp collisions at s=8 TeV with the ATLAS detector

G Aad 85, B Abbott 113, J Abdallah 152, S Abdel Khalek 117, O Abdinov 11, R Aben 107, B Abi 114, M Abolins 90, O S AbouZeid 159, H Abramowicz 154, H Abreu 153, R Abreu 30, Y Abulaiti 147, B S Acharya 165, L Adamczyk 38, D L Adams 25, J Adelman 108, S Adomeit 100, T Adye 131, T Agatonovic-Jovin 13, J A Aguilar-Saavedra 126, M Agustoni 17, S P Ahlen 22, F Ahmadov 65, G Aielli 134, H Akerstedt 147, T P A Åkesson 81, G Akimoto 156, A V Akimov 96, G L Alberghi 20, J Albert 170, S Albrand 55, M J Alconada Verzini 71, M Aleksa 30, I N Aleksandrov 65, C Alexa 26, G Alexander 154, G Alexandre 49, T Alexopoulos 10, M Alhroob 113, G Alimonti 91, L Alio 85, J Alison 31, B M M Allbrooke 18, L J Allison 72, P P Allport 74, A Aloisio 104, A Alonso 36, F Alonso 71, C Alpigiani 76, A Altheimer 35, B Alvarez Gonzalez 90, M G Alviggi 104, K Amako 66, Y Amaral Coutinho 24, C Amelung 23, D Amidei 89, S P Amor Dos Santos 126, A Amorim 126, S Amoroso 48, N Amram 154, G Amundsen 23, C Anastopoulos 140, L S Ancu 49, N Andari 30, T Andeen 35, C F Anders 58, G Anders 30, K J Anderson 31, A Andreazza 91, V Andrei 58, X S Anduaga 71, S Angelidakis 9, I Angelozzi 107, P Anger 44, A Angerami 35, F Anghinolfi 30, A V Anisenkov 109, N Anjos 12, A Annovi 124, M Antonelli 47, A Antonov 98, J Antos 145, F Anulli 133, M Aoki 66, L Aperio Bella 18, G Arabidze 90, Y Arai 66, J P Araque 126, A T H Arce 45, F A Arduh 71, J-F Arguin 95, S Argyropoulos 42, M Arik 19, A J Armbruster 30, O Arnaez 30, V Arnal 82, H Arnold 48, M Arratia 28, O Arslan 21, A Artamonov 97, G Artoni 23, S Asai 156, N Asbah 42, A Ashkenazi 154, B Åsman 147, L Asquith 150, K Assamagan 25, R Astalos 145, M Atkinson 166, N B Atlay 142, B Auerbach 6, K Augsten 128, M Aurousseau 146, G Avolio 30, B Axen 15, M K Ayoub 117, G Azuelos 95, M A Baak 30, A E Baas 58, C Bacci 135, H Bachacou 137, K Bachas 155, M Backes 30, M Backhaus 30, P Bagiacchi 133, P Bagnaia 133, Y Bai 33, T Bain 35, J T Baines 131, O K Baker 177, P Balek 129, T Balestri 149, F Balli 84, E Banas 39, Sw Banerjee 174, A A E Bannoura 176, H S Bansil 18, L Barak 173, S P Baranov 96, E L Barberio 88, D Barberis 50, M Barbero 85, T Barillari 101, M Barisonzi 165, T Barklow 144, N Barlow 28, S L Barnes 84, B M Barnett 131, R M Barnett 15, Z Barnovska 5, A Baroncelli 135, G Barone 49, A J Barr 120, F Barreiro 82, J Barreiro Guimarães da Costa 57, R Bartoldus 144, A E Barton 72, P Bartos 145, A Bassalat 117, A Basye 166, R L Bates 53, S J Batista 159, J R Batley 28, M Battaglia 138, M Bauce 133, F Bauer 137, H S Bawa 144, J B Beacham 111, M D Beattie 72, T Beau 80, P H Beauchemin 162, R Beccherle 124, P Bechtle 21, H P Beck 17, K Becker 120, S Becker 100, M Beckingham 171, C Becot 117, A J Beddall 19, A Beddall 19, V A Bednyakov 65, C P Bee 149, L J Beemster 107, T A Beermann 176, M Begel 25, J K Behr 120, C Belanger-Champagne 87, P J Bell 49, W H Bell 49, G Bella 154, L Bellagamba 20, A Bellerive 29, M Bellomo 86, K Belotskiy 98, O Beltramello 30, O Benary 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Carrillo-Montoya 146, J R Carter 28, J Carvalho 126, D Casadei 78, M P Casado 12, M Casolino 12, E Castaneda-Miranda 146, A Castelli 107, V Castillo Gimenez 168, N F Castro 126, P Catastini 57, A Catinaccio 30, J R Catmore 119, A Cattai 30, G Cattani 134, J Caudron 83, V Cavaliere 166, D Cavalli 91, M Cavalli-Sforza 12, V Cavasinni 124, F Ceradini 135, B C Cerio 45, K Cerny 129, A S Cerqueira 24, A Cerri 150, L Cerrito 76, F Cerutti 15, M Cerv 30, A Cervelli 17, S A Cetin 19, A Chafaq 136, D Chakraborty 108, I Chalupkova 129, P Chang 166, B Chapleau 87, J D Chapman 28, D Charfeddine 117, D G Charlton 18, C C Chau 159, C A Chavez Barajas 150, S Cheatham 153, A Chegwidden 90, S Chekanov 6, S V Chekulaev 160, G A Chelkov 65, M A Chelstowska 89, C Chen 64, H Chen 25, K Chen 149, L Chen 33, S Chen 33, X Chen 33, Y Chen 67, H C Cheng 89, Y Cheng 31, A Cheplakov 65, E Cheremushkina 130, R Cherkaoui El Moursli 136, V Chernyatin 25, E Cheu 7, L Chevalier 137, V Chiarella 47, J T Childers 6, A 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Dedovich 65, I Deigaard 107, J Del Peso 82, T Del Prete 124, D Delgove 117, F Deliot 137, C M Delitzsch 49, M Deliyergiyev 75, A Dell’Acqua 30, L Dell’Asta 22, M Dell’Orso 124, M Della Pietra 104, D della Volpe 49, M Delmastro 5, P A Delsart 55, C Deluca 107, D A DeMarco 159, S Demers 177, M Demichev 65, A Demilly 80, S P Denisov 130, D Derendarz 39, J E Derkaoui 136, F Derue 80, P Dervan 74, K Desch 21, C Deterre 42, P O Deviveiros 30, A Dewhurst 131, S Dhaliwal 107, A Di Ciaccio 134, L Di Ciaccio 5, A Di Domenico 133, C Di Donato 104, A Di Girolamo 30, B Di Girolamo 30, A Di Mattia 153, B Di Micco 135, R Di Nardo 47, A Di Simone 48, R Di Sipio 159, D Di Valentino 29, C Diaconu 85, M Diamond 159, F A Dias 46, M A Diaz 32, E B Diehl 89, J Dietrich 16, T A Dietzsch 58, S Diglio 85, A Dimitrievska 13, J Dingfelder 21, F Dittus 30, F Djama 85, T Djobava 51, J I Djuvsland 58, M A B do Vale 24, D Dobos 30, M Dobre 26, C Doglioni 49, T Doherty 53, T Dohmae 156, J Dolejsi 129, Z Dolezal 129, B A Dolgoshein 98, M Donadelli 24, S Donati 124, P Dondero 121, J Donini 34, J Dopke 131, A Doria 104, M T Dova 71, A T Doyle 53, M Dris 10, E Dubreuil 34, E Duchovni 173, G Duckeck 100, O A Ducu 26, D Duda 176, A Dudarev 30, L Duflot 117, L Duguid 77, M Dührssen 30, M Dunford 58, H Duran Yildiz 4, M Düren 52, A Durglishvili 51, D Duschinger 44, M Dwuznik 38, M Dyndal 38, K M Ecker 101, W Edson 2, N C Edwards 46, W Ehrenfeld 21, T Eifert 30, G Eigen 14, K Einsweiler 15, T Ekelof 167, M El Kacimi 136, M Ellert 167, S Elles 5, F Ellinghaus 83, A A Elliot 170, N Ellis 30, J Elmsheuser 100, M Elsing 30, D Emeliyanov 131, Y Enari 156, O C Endner 83, M Endo 118, R Engelmann 149, J Erdmann 43, A Ereditato 17, D Eriksson 147, G Ernis 176, J Ernst 2, M Ernst 25, S Errede 166, E Ertel 83, M Escalier 117, H Esch 43, C Escobar 125, B Esposito 47, A I Etienvre 137, E Etzion 154, H Evans 61, A Ezhilov 123, L Fabbri 20, G Facini 31, R M Fakhrutdinov 130, S Falciano 133, R J Falla 78, J Faltova 129, Y Fang 33, M Fanti 91, A Farbin 8, A Farilla 135, T Farooque 12, S Farrell 15, S M Farrington 171, P Farthouat 30, F Fassi 136, P Fassnacht 30, D Fassouliotis 9, A Favareto 50, L Fayard 117, P Federic 145, O L Fedin 123, W Fedorko 169, S Feigl 30, L Feligioni 85, C Feng 33, E J Feng 6, H Feng 89, A B Fenyuk 130, P Fernandez Martinez 168, S Fernandez Perez 30, S Ferrag 53, J Ferrando 53, A Ferrari 167, P Ferrari 107, R Ferrari 121, D E Ferreira de Lima 53, A Ferrer 168, D Ferrere 49, C Ferretti 89, A Ferretto Parodi 50, M Fiascaris 31, F Fiedler 83, A Filipčič 75, M Filipuzzi 42, F Filthaut 106, M Fincke-Keeler 170, K D Finelli 151, M C N Fiolhais 126, L Fiorini 168, A Firan 40, A Fischer 2, C Fischer 12, J Fischer 176, W C Fisher 90, E A Fitzgerald 23, M Flechl 48, I Fleck 142, P Fleischmann 89, S Fleischmann 176, G T Fletcher 140, G Fletcher 76, T Flick 176, A Floderus 81, L R Flores Castillo 60, M J Flowerdew 101, A Formica 137, A Forti 84, D Fournier 117, H Fox 72, S Fracchia 12, P Francavilla 80, M Franchini 20, D Francis 30, L Franconi 119, M Franklin 57, M Fraternali 121, D Freeborn 78, S T French 28, F Friedrich 44, D Froidevaux 30, J A Frost 120, C Fukunaga 157, E Fullana Torregrosa 83, B G Fulsom 144, J Fuster 168, C Gabaldon 55, O Gabizon 176, A Gabrielli 20, A Gabrielli 133, S Gadatsch 107, S Gadomski 49, G Gagliardi 50, P Gagnon 61, C Galea 106, B Galhardo 126, E J Gallas 120, B J Gallop 131, P Gallus 128, G Galster 36, K K Gan 111, J Gao 33, Y S Gao 144, F M Garay Walls 46, F Garberson 177, C García 168, J E García Navarro 168, M Garcia-Sciveres 15, R W Gardner 31, N Garelli 144, V Garonne 30, C Gatti 47, G Gaudio 121, B Gaur 142, L Gauthier 95, P Gauzzi 133, I L Gavrilenko 96, C Gay 169, G Gaycken 21, E N Gazis 10, P Ge 33, Z Gecse 169, C N P Gee 131, D A A Geerts 107, Ch Geich-Gimbel 21, C Gemme 50, M H Genest 55, S Gentile 133, M George 54, S George 77, D Gerbaudo 164, A Gershon 154, H Ghazlane 136, N Ghodbane 34, B Giacobbe 20, S Giagu 133, V Giangiobbe 12, P Giannetti 124, F Gianotti 30, B Gibbard 25, S M Gibson 77, M Gilchriese 15, T P S Gillam 28, D Gillberg 30, G Gilles 34, D M Gingrich 3, N Giokaris 9, M P Giordani 165, F M Giorgi 20, F M Giorgi 16, P F Giraud 137, D Giugni 91, C Giuliani 48, M Giulini 58, B K Gjelsten 119, S Gkaitatzis 155, I Gkialas 155, E L Gkougkousis 117, L K Gladilin 99, C Glasman 82, J Glatzer 30, P C F Glaysher 46, A Glazov 42, G L Glonti 62, M Goblirsch-Kolb 101, J R Goddard 76, J Godlewski 39, S Goldfarb 89, T Golling 49, D Golubkov 130, A Gomes 126, R Gonçalo 126, J Goncalves Pinto Firmino Da Costa 137, L Gonella 21, S González de la Hoz 168, G Gonzalez Parra 12, S Gonzalez-Sevilla 49, L Goossens 30, P A Gorbounov 97, H A Gordon 25, I Gorelov 105, B Gorini 30, E Gorini 73, A Gorišek 75, E Gornicki 39, A T Goshaw 45, C Gössling 43, M I Gostkin 65, M Gouighri 136, D Goujdami 136, A G Goussiou 139, H M X Grabas 138, L Graber 54, I Grabowska-Bold 38, P Grafström 20, K-J Grahn 42, J Gramling 49, 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18, I Hinchliffe 15, E Hines 122, R R Hinman 15, M Hirose 158, D Hirschbuehl 176, J Hobbs 149, N Hod 107, M C Hodgkinson 140, P Hodgson 140, A Hoecker 30, M R Hoeferkamp 105, F Hoenig 100, M Hohlfeld 83, T R Holmes 15, T M Hong 122, L Hooft van Huysduynen 110, W H Hopkins 116, Y Horii 103, A J Horton 143, J-Y Hostachy 55, S Hou 152, A Hoummada 136, J Howard 120, J Howarth 42, M Hrabovsky 115, I Hristova 16, J Hrivnac 117, T Hryn’ova 5, A Hrynevich 93, C Hsu 146, P J Hsu 152, S-C Hsu 139, D Hu 35, Q Hu 33, X Hu 89, Y Huang 42, Z Hubacek 30, F Hubaut 85, F Huegging 21, T B Huffman 120, E W Hughes 35, G Hughes 72, M Huhtinen 30, T A Hülsing 83, N Huseynov 64, J Huston 90, J Huth 57, G Iacobucci 49, G Iakovidis 25, I Ibragimov 142, L Iconomidou-Fayard 117, E Ideal 177, Z Idrissi 136, P Iengo 104, O Igonkina 107, T Iizawa 172, Y Ikegami 66, K Ikematsu 142, M Ikeno 66, Y Ilchenko 31, D Iliadis 155, N Ilic 159, Y Inamaru 67, T Ince 101, P Ioannou 9, M Iodice 135, K Iordanidou 9, V Ippolito 57, A Irles Quiles 168, C Isaksson 167, M Ishino 68, M Ishitsuka 158, R Ishmukhametov 111, C Issever 120, S Istin 19, J M Iturbe Ponce 84, R Iuppa 134, J Ivarsson 81, W Iwanski 39, H Iwasaki 66, J M Izen 41, V Izzo 104, S Jabbar 3, B Jackson 122, M Jackson 74, P Jackson 1, M R Jaekel 30, V Jain 2, K Jakobs 48, S Jakobsen 30, T Jakoubek 127, J Jakubek 128, D O Jamin 152, D K Jana 79, E Jansen 78, R W Jansky 62, J Janssen 21, M Janus 171, G Jarlskog 81, N Javadov 65, T Javůrek 48, L Jeanty 15, J Jejelava 51, G-Y Jeng 151, D Jennens 88, P Jenni 48, J Jentzsch 43, C Jeske 171, S Jézéquel 5, H Ji 174, J Jia 149, Y Jiang 33, J Jimenez Pena 168, S Jin 33, A Jinaru 26, O Jinnouchi 158, M D Joergensen 36, P Johansson 140, K A Johns 7, K Jon-And 147, G Jones 171, R W L Jones 72, T J Jones 74, J Jongmanns 58, P M Jorge 126, K D Joshi 84, J Jovicevic 148, X Ju 174, C A Jung 43, P Jussel 62, A Juste Rozas 12, M Kaci 168, A Kaczmarska 39, M Kado 117, H Kagan 111, M Kagan 144, S J Kahn 85, E 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Vachon 87, N Valencic 107, S Valentinetti 20, A Valero 168, L Valery 12, S Valkar 129, E Valladolid Gallego 168, S Vallecorsa 49, J A Valls Ferrer 168, W Van Den Wollenberg 107, P C Van Der Deijl 107, R van der Geer 107, H van der Graaf 107, R Van Der Leeuw 107, N van Eldik 30, P van Gemmeren 6, J Van Nieuwkoop 143, I van Vulpen 107, M C van Woerden 30, M Vanadia 133, W Vandelli 30, R Vanguri 122, A Vaniachine 6, F Vannucci 80, G Vardanyan 178, R Vari 133, E W Varnes 7, T Varol 40, D Varouchas 80, A Vartapetian 8, K E Varvell 151, F Vazeille 34, T Vazquez Schroeder 54, J Veatch 7, F Veloso 126, T Velz 21, S Veneziano 133, A Ventura 73, D Ventura 86, M Venturi 170, N Venturi 159, A Venturini 23, V Vercesi 121, M Verducci 133, W Verkerke 107, J C Vermeulen 107, A Vest 44, M C Vetterli 143, O Viazlo 81, I Vichou 166, T Vickey 146, O E Vickey Boeriu 146, G H A Viehhauser 120, S Viel 15, R Vigne 30, M Villa 20, M Villaplana Perez 91, E Vilucchi 47, M G Vincter 29, V B Vinogradov 65, I Vivarelli 150, F Vives Vaque 3, S Vlachos 10, D Vladoiu 100, M Vlasak 128, M Vogel 32, P Vokac 128, G Volpi 124, M Volpi 88, H von der Schmitt 101, H von Radziewski 48, E von Toerne 21, V Vorobel 129, K Vorobev 98, M Vos 168, R Voss 30, J H Vossebeld 74, N Vranjes 13, M Vranjes Milosavljevic 13, V Vrba 127, M Vreeswijk 107, R Vuillermet 30, I Vukotic 31, Z Vykydal 128, P Wagner 21, W Wagner 176, H Wahlberg 71, S Wahrmund 44, J Wakabayashi 103, J Walder 72, R Walker 100, W Walkowiak 142, C Wang 33, F Wang 174, H Wang 15, H Wang 40, J Wang 42, J Wang 33, K Wang 87, R Wang 105, S M Wang 152, T Wang 21, X Wang 177, C Wanotayaroj 116, A Warburton 87, C P Ward 28, D R Wardrope 78, M Warsinsky 48, A Washbrook 46, C Wasicki 42, P M Watkins 18, A T Watson 18, I J Watson 151, M F Watson 18, G Watts 139, S Watts 84, B M Waugh 78, S Webb 84, M S Weber 17, S W Weber 175, J S Webster 31, A R Weidberg 120, B Weinert 61, J Weingarten 54, C Weiser 48, H Weits 107, P S Wells 30, T Wenaus 25, D Wendland 16, T Wengler 30, S Wenig 30, N Wermes 21, M Werner 48, P Werner 30, M Wessels 58, J Wetter 162, K Whalen 29, A M Wharton 72, A White 8, M J White 1, R White 32, S White 124, D Whiteson 164, D Wicke 176, F J Wickens 131, W Wiedenmann 174, M Wielers 131, P Wienemann 21, C Wiglesworth 36, L A M Wiik-Fuchs 21, A Wildauer 101, H G Wilkens 30, H H Williams 122, S Williams 107, C Willis 90, S Willocq 86, A Wilson 89, J A Wilson 18, I Wingerter-Seez 5, F Winklmeier 116, B T Winter 21, M Wittgen 144, J Wittkowski 100, S J Wollstadt 83, M W Wolter 39, H Wolters 126, B K Wosiek 39, J Wotschack 30, M J Woudstra 84, K W Wozniak 39, M Wu 55, M Wu 31, S L Wu 174, X Wu 49, Y Wu 89, T R Wyatt 84, B M Wynne 46, S Xella 36, D Xu 33, L Xu 33, B Yabsley 151, S Yacoob 146, R Yakabe 67, M Yamada 66, Y Yamaguchi 118, A Yamamoto 66, S Yamamoto 156, T Yamanaka 156, K Yamauchi 103, Y Yamazaki 67, Z Yan 22, H Yang 33, H Yang 174, Y Yang 152, S Yanush 93, L Yao 33, W-M Yao 15, Y Yasu 66, E Yatsenko 42, K H Yau Wong 21, J Ye 40, S Ye 25, I Yeletskikh 65, A L Yen 57, E Yildirim 42, K Yorita 172, R Yoshida 6, K Yoshihara 122, C Young 144, C J S Young 30, S Youssef 22, D R Yu 15, J Yu 8, J M Yu 89, J Yu 114, L Yuan 67, A Yurkewicz 108, I Yusuff 28, B Zabinski 39, R Zaidan 63, A M Zaitsev 130, A Zaman 149, S Zambito 23, L Zanello 133, D Zanzi 88, C Zeitnitz 176, M Zeman 128, A Zemla 38, K Zengel 23, O Zenin 130, T Ženiš 145, D Zerwas 117, D Zhang 89, F Zhang 174, J Zhang 6, L Zhang 152, R Zhang 33, X Zhang 33, Z Zhang 117, X Zhao 40, Y Zhao 33,117, Z Zhao 33, A Zhemchugov 65, J Zhong 120, B Zhou 89, C Zhou 45, L Zhou 35, L Zhou 40, N Zhou 164, C G Zhu 33, H Zhu 33, J Zhu 89, Y Zhu 33, X Zhuang 33, K Zhukov 96, A Zibell 175, D Zieminska 61, N I Zimine 65, C Zimmermann 83, R Zimmermann 21, S Zimmermann 48, Z Zinonos 54, M Zinser 83, M Ziolkowski 142, L Živković 13, G Zobernig 174, A Zoccoli 20, M zur Nedden 16, G Zurzolo 104, L Zwalinski 30; ATLAS Collaboration180
PMCID: PMC4428621  PMID: 25995709

Abstract

A search is presented for narrow diboson resonances decaying to WW or WZ in the final state where one W boson decays leptonically (to an electron or a muon plus a neutrino) and the other W/Z boson decays hadronically. The analysis is performed using an integrated luminosity of 20.3 fb-1 of pp collisions at s=8 TeV collected by the ATLAS detector at the large hadron collider. No evidence for resonant diboson production is observed, and resonance masses below 700 and 1490 GeV are excluded at 95 % confidence level for the spin-2 Randall–Sundrum bulk graviton G with coupling constant of 1.0 and the extended gauge model W boson respectively.

Introduction

Several new physics scenarios beyond the standard model (SM), such as technicolour [13], warped extra dimensions [46], and grand unified theories [7], predict new particles that predominantly decay to a pair of on-shell gauge bosons. In this paper, a search for such particles in the form of WW/WZ resonances where one W boson decays leptonically (Wν with =e,μ) and the other W/Z boson decays hadronically (W/Zqq¯/qq¯, with q,q=u,c,d,sorb) is presented. This search makes use of jet-substructure techniques for highly boosted W/Z bosons decaying hadronically and is optimized to significantly improve the sensitivity to high mass resonances compared to previous searches.

Two benchmark signal models are used to optimize the analysis strategy and interpret the search results. A spin-2 Kaluza–Klein (KK) graviton (G) is used to model a narrow resonance decaying to a WW final state. The KK graviton interpretation is based on an extended Randall–Sundrum model of a warped extra dimension (RS1) [8] where the SM fields can propagate into the bulk of the extra dimension. This extended “bulk” RS model, referred to as bulk RS hereafter, avoids constraints on the original RS1 model from limits on flavour-changing neutral currents and electroweak precision tests, and has a dimensionless coupling constant k/M¯Pl1, where k is the curvature of the warped extra dimension and M¯Pl=MPl/8π is the reduced Planck mass. A spin-1 gauge boson (W) of the sequential standard model with modified coupling to WZ, also referred to as the extended gauge model (EGM) [7], is used to model a narrow resonance that decays to a WZ final state. The EGM introduces W and Z bosons with SM couplings to fermions and with the coupling strength of the heavy W to WZ modified by a mixing factor ξ=c×(mW/mW)2 relative to the SM couplings, where mW and mW are the pole masses of the W and W bosons respectively, and c is a coupling scaling factor. In this scenario the partial width of the W boson scales linearly with mW, leading to a narrow resonance over the accessible mass range. The width of the W resonance at 1 TeV is approximately 35 GeV.

Searches for these particles in several decay channels have been performed at the Tevatron and the large hadron collider (LHC) and are reported elsewhere [913]. Previous results from the ATLAS experiment in the qq¯ channel excluded EGM W bosons with masses up to 1.59 TeV for WZ final states and RS1 gravitons with k/M¯Pl=1 and masses up to 740 GeV for ZZ final states [13]. The CMS experiment set limits on the production cross sections of bulk RS gravitons as well as excluded RS1 gravitons with k/M¯Pl=0.1 for masses up to 1.2 TeV and W bosons for masses up to 1.7 TeV [9].

This analysis is based on pp collision data at a centre-of-mass energy s=8 TeV corresponding to an integrated luminosity of 20.3 fb-1 collected by the ATLAS experiment at the LHC.

The ATLAS detector

The ATLAS detector [14] is a general-purpose particle detector used to investigate a broad range of physics processes. It includes inner tracking devices surrounded by a superconducting solenoid, electromagnetic and hadronic calorimeters and a muon spectrometer with a toroidal magnetic field. The inner detector (ID) provides precision tracking of charged particles with pseudorapidity |η|<2.5.1 The calorimeter system covers the pseudorapidity range |η|<4.9. It is composed of sampling calorimeters with either liquid argon (LAr) or scintillator tiles as the active media. The muon spectrometer (MS) provides muon identification and measurement for |η|<2.7. The ATLAS detector has a three-level trigger system to select events for offline analysis.

Monte Carlo samples

Simulated event samples are used to define the event selection and optimize the analysis. Benchmark signal samples are generated for a range of resonance masses from 300 to 2500 GeV in steps of 100 GeV. The bulk RS G signal events are generated with CalcHEP [15], using k/M¯Pl=1.0, interfaced to Pythia8 [16] to model fragmentation and hadronization, and the EGM W signal is generated using Pythia8 with c=1. The factorization and renormalization scales are set to the generated resonance mass. The CTEQ6L1 [17] and MSTW2008LO [18] parton distribution functions (PDFs) are used for the G and W signal samples respectively. The W cross section is normalized to a next-to-next-to-leading-order (NNLO) calculation in αs from ZWprod [19].

Simulated event samples are used to model the shape and normalization of most SM background processes. The main background sources in the analysis arise from W bosons produced in association with jets (W + jets), followed by top-quark and multijet production, with smaller contributions from dibosons and Z + jets. Production of W and Z bosons in association with up to five jets is simulated using Sherpa 1.4.1 [20] with the CT10 PDFs [21], where b- and c-quarks are treated as massive particles. Samples generated with MC@NLO [22] and interfaced to Herwig [23] for hadronization and to Jimmy [24] for the underlying event are used for tt¯ production as well as for single top-quark production in the s-channel and the Wt process. The tt¯ cross section is normalized to the calculation at NNLO in QCD including resummation of next-to-next-to-leading logarithmic soft gluon terms with Top++2.0 [2531]. Single top-quark production in the t-channel is simulated with AcerMC [32] interfaced to Pythia6 [33]. Diboson samples (WW, WZ and ZZ) are generated with Herwig and Jimmy.

The effect of multiple pp interactions in the same and neighbouring bunch crossings (pile-up) is included by overlaying minimum-bias events simulated with Pythia8 on each generated signal and background event. The number of overlaid events is such that the distribution of the average number of interactions per pp bunch crossing in the simulation matches that observed in the data (on average 21 interactions per bunch crossing). The generated samples are processed through the Geant4-based detector simulation [34, 35] or a fast simulation using a parameterization of the performance of the calorimeters and Geant4 for the other parts of the detector [36], and the standard ATLAS reconstruction software used for collision data.

Event selection

Events are required to have a vertex with at least three associated tracks, each with transverse momentum pT>400 MeV. The primary vertex is chosen to be the reconstructed vertex with the largest track pT2.

The main physics objects used in this analysis are electrons, muons, jets and missing transverse momentum. Electrons are selected from clusters of energy depositions in the calorimeter that match a track reconstructed in the ID and satisfy “tight” identification criteria defined in Ref. [37]. The electrons are required to have transverse momentum pT>25 GeV and |η|<2.47, excluding the transition region between the barrel and endcaps in the LAr calorimeter (1.37<|η|<1.52). Muons are reconstructed by combining ID and MS tracks that have consistent trajectories and curvatures [38]. The muon tracks are required to have pT>25 GeV and |η|<2.5. In addition, leptons are required to be isolated from other tracks and calorimetric activity. The scalar sum of transverse momenta of tracks with pT>1 GeV within ΔR=(Δη)2+(Δϕ)2=0.2 around the lepton track is required to be <15 % of the lepton pT. Similarly, the sum of transverse energy deposits in the calorimeter within a cone of ΔR=0.2, excluding the transverse energy from the lepton and corrected for the expected pile-up contribution, is required to be <14 % of the lepton pT. In order to ensure that leptons originate from the interaction point, a requirement of |d0|/σd0<6(3.5) and |z0sinθ|<0.5 mm is imposed on the electrons (muons), where d0(z0) is the transverse (longitudinal) impact parameter of the lepton with respect to the reconstructed primary vertex and σd0 is the uncertainty on the measured d0.

In this analysis, jets are reconstructed from three-dimensional clusters of energy depositions in the calorimeter using two different algorithms. The jet constituents are considered massless. The low-pT hadronically decaying W/Z candidates are selected by combining the two highest-pT jets which are constructed by the anti-kt algorithm [39] with a distance parameter of R=0.4. These jets are referred to as small-R jets and denoted by “j” hereafter. The energy of small-R jets is corrected for losses in passive material, the non-compensating response of the calorimeter, and extra energy due to multiple pp interactions [40]. The small-R jets are required to have pT>30 GeV and |η|<2.8. For jets with pT<50 GeV, the summed scalar pT of associated tracks from the reconstructed primary vertex is required to be at least 50 % of the summed scalar pT of all associated tracks. In the pseudorapidity range |η|<2.5, jets containing hadrons from b-quarks are identified using the MV1 b-tagging algorithm [41] with an efficiency of 70 %, determined from tt¯ simulated events, and with a misidentification rate for selecting light-quark or gluon jets of <1 %.

For high-pTW/Z bosons, such as the ones from a resonance with mass above 1 TeV, the hadronically decaying W/Z candidates are identified using a single large-R jet, referred to as “J” hereafter. The Cambridge–Aachen jet clustering algorithm [42] with a distance parameter of R=1.2 is used. This jet algorithm offers the advantage of allowing the usage of a splitting and filtering algorithm similar to that described in Ref. [43] but optimized for the identification of highly boosted boson decays. To exploit the characteristics of the decay of massive bosons into a light-quark pair, the splitting and filtering algorithm used here does not impose a mass relation between the large-R jet and its subjets [44]. The momentum balance is defined as yf=min(pTj1,pTj2)ΔR12/m12, where pTj1 and pTj2 are the transverse momenta of the two leading subjets, ΔR12 is their separation and m12 is their invariant mass. To suppress jets from gluon radiation and splitting, yf is required to be >0.45. Furthermore, the large-R jets are required to have pT>400 GeV and |η|<2.0.

The missing transverse momentum (with magnitude ETmiss) is calculated as the negative of the vectorial sum of the transverse momenta of all electrons, muons, and jets, as well as calibrated calorimeter energy clusters within |η|<4.9 that are not associated with any other objects [45].

The data used were recorded by single-electron and single-muon triggers, which are fully efficient for leptons with pT>25 GeV. The analysis selects events that contain exactly one reconstructed electron or muon matching a lepton trigger candidate, ETmiss>30 GeV and no b-tagged small-R jets. The transverse momentum of the neutrino from the leptonically decaying W boson is assumed to be equal to the missing transverse momentum. The momentum of the neutrino in the z-direction, pz, is obtained by imposing the W boson mass constraint on the lepton and neutrino system, which leads to a quadratic equation. The pz is defined as either the real component of the complex solution or the smaller in absolute value of the two real solutions.

In order to maximize the sensitivity to resonances with different masses, three different optimized sets of selection criteria are used to classify the events according to the pT of the leptonically decaying W candidate (pTν) and hadronically decaying W/Z candidate (pTjj or pTJ), namely the “low-pT resolved region” (LRR), “high-pT resolved region” (HRR) and “merged region” (MR), where the highly boosted W/Z decay products are observed as a single merged jet in the final state. To ensure the orthogonality of the signal regions, events are assigned exclusively to the first region for which the criteria are fulfilled, applying sequentially the MR, HRR, and LRR event selection. The hadronically decaying W/Z candidate is formed by combining the two small-R jets with highest pT in the resolved regions and its invariant mass mjj is required to be between 65 and 105 GeV. In the LRR (HRR), the event is required to have pTν>100 (300) GeV, pTjj>100 (300) GeV and Δϕ(j,ETmiss)>1, where Δϕ(j,ETmiss) is the azimuthal angle between the leading jet and the missing transverse momentum. The HRR additionally requires the two leading jets to have pT>80 GeV. In the MR, the large-R jet with the highest pT is selected as the hadronically decaying W/Z candidate and pTν>400 GeV is also imposed. The jet mass of the selected large-R jet (mJ) is required to be consistent with a W/Z boson mass (65<mJ<105 GeV) and the azimuthal angle between the jet and the missing transverse momentum, Δϕ(J,ETmiss), is required to satisfy Δϕ(J,ETmiss)>1. The signal acceptance times efficiency after all selection requirements increases from about 5 % at mW=300 GeV to a plateau of around 25 % for mW>500 GeV for WWZνqq¯ with =e,μ,τ.

Background estimation

The reconstructed WW/WZ mass, mνjj (mνJ), defined as the invariant mass of the νjj (νJ) system, is used to distinguish the signal from the background. The background distributions from W/Z + jets where W (Z) decays leptonically to ν () considering the three lepton flavors, tt¯, single top-quark and diboson processes are modelled using simulated events. The background shape from multijet production is obtained from an independent data sample that satisfies the signal selection criteria except for the lepton requirement: the electrons are required to satisfy a looser identification criterion (“medium” in Ref. [37]) but not meet the “tight” selection criteria; the selected muons are required to satisfy all the selection criteria after inverting the transverse impact parameter significance cut. The contribution from other processes is subtracted from data in the extraction of the multijet background shape.

The background contributions from tt¯, single top-quark and diboson production are normalized to the number of background events predicted by simulation. The pT(W) distribution in the W + jets simulated sample is corrected by comparing it to data in the LRR sidebands defined as 40<mjj<65 or 105<mjj<200 GeV. The normalizations of the W/Z + jets and multijet background contributions are derived in a control data sample which is obtained by requiring the mass of the hadronic W/Z candidate to be within the mJ(mjj) sidebands. They are determined from binned minimum χ2 fits to the ETmiss distributions in the control data samples corresponding to each signal region and channel separately. The fitted parameters are the normalizations of these two processes. The difference of the W/Z + jets normalization from the expected background from simulation ranges between 1 and 18 %.

The multijet background templates were validated in the electron channel using samples enriched in multijet events, obtained by inverting the ETmiss requirement. The description of the tt¯ background in simulation was validated in a sample dominated by top-pair events by requiring at least one b-tagged small-R jet. Good agreement within uncertainties is observed between data and expectation in these validation regions.

Systematic uncertainties

The main systematic uncertainty on the background estimation is the uncertainty on the normalization of W/Z + jets background obtained from the fit described above. This uncertainty is 3–4 % in the LRR and HRR, and 13–19 % in the MR. An uncertainty on the shape of the W/Z + jets background is obtained in the LRR by comparing data and simulation in the mjj sidebands, leading to an approximately 5 % uncertainty for mνjj<600 GeV. Due to the low numbers of data events in the sidebands for the HRR and MR, the W + jets shape uncertainty in these regions is evaluated by comparing a sample of simulated events from Sherpa with a sample of simulated events from Alpgen [46] interfaced to Pythia6. The uncertainty in the shape of the tt¯ mass distribution is estimated by comparing a sample from MC@NLO interfaced to Herwig with a sample from Powheg [4749] interfaced to Pythia6. The uncertainty on the shape of the multijet background is evaluated by using alternative templates obtained by removing the calorimeter-based lepton isolation cuts. For the remaining background processes, detector-related uncertainties from the small-R jet energy scale and resolution, large-R jet energy and mass scale, lepton reconstruction and identification efficiencies, lepton momentum scales and resolutions, and missing transverse momentum were considered when evaluating possible systematic effects on the shape or normalization of the background estimation and are found to have a minor impact. The large-R jet energy and mass scale uncertainties are evaluated by comparing the ratio of calorimeter-based to track-based measurements in dijet data and simulation, and are validated by in-situ data of high-pTW production in association with jets.

The dominant uncertainty on the signal arises from initial- and final-state radiation modelling in Pythia and is <12 % (6 %) for G (W). Uncertainties due to the choice of PDFs are below 1 %.

The uncertainty on the integrated luminosity is ±2.8 %. It is determined, following the same methodology as that detailed in Ref. [50], from a calibration of the luminosity scale derived from beam-separation scans performed in November 2012.

Results and interpretation

Table 1 shows the number of events predicted and observed in each signal region. The reconstructed mνjj(mνJ) distributions for data and predicted background events as well as selected benchmark signal models in the three signal regions are shown in Fig. 1 for the combined electron and muon channels. Good agreement is observed between the data and the background prediction. In the absence of a significant excess, the result is interpreted as 95 % confidence level (CL) upper limits on the production cross section times branching ratio for the G and W models. These upper limits are determined with the CLs modified frequentist formalism [51] with a profile-likelihood test statistic [52]. The test statistic is evaluated with a maximum-likelihood fit of signal models and background predictions to the reconstructed mνjj(mνJ) spectra. Systematic uncertainties are taken into account as nuisance parameters with Gaussian sampling distributions. For each source of systematic uncertainty, the correlations across bins and between different kinematic regions, as well as those between signal and background, are taken into account. The likelihood fit is performed for signal pole masses between 300 and 800 GeV for the LRR, 600–1000 GeV for the HRR and 800–2000 GeV for the MR. Overlapping regions are fit simultaneously. Figure 2 shows 95 % CL upper limits on the production cross section multiplied by the branching fraction into WW (WZ) for the bulk RS G (EGM W) as a function of the resonance pole mass. The theoretical predictions for the EGM W with a scale factor c=1 and the bulk RS G with coupling constant k/M¯Pl=1, shown in the figure, allow observed lower mass limits of 1490 GeV for the W and 700 GeV for the G to be extracted.

Table 1.

Event yields in signal regions for data, predicted background contributions, and G and W signals. Errors are shown before the fit to the data. The errors on the total background and total signal correspond to the full statistical and systematic uncertainty, while the errors on each background component include the full systematic uncertainty only. The G and W signal hypotheses correspond to resonance masses of 400, 800 and 1200 GeV for the LRR, HRR, and MR selections, respectively

Sample LRR HRR MR
W/Z + jets 104800 ± 1600 415 ± 10 180 ± 20
tt¯ + single top 37700 ± 1600 271 ± 13 42 ± 7
Multijet 13500 ± 500 84 ± 9 29.3 ± 2.9
Diboson 5500 ± 270 96 ± 6 43 ± 7
Total 161500 ± 2300 870 ± 40 295 ± 22
Data 157837 801 323
G signal 7000 ± 500 36 ± 6 5.5 ± 2.3
W signal 6800 ± 600 318 ± 21 70 ± 4

Fig. 1.

Fig. 1

Reconstructed mass distributions in data and the predicted backgrounds in the three kinematic regions referred to in the text as the low-pT resolved region (top left), high-pT resolved region (top right) and merged region (bottom). G and W signal hypotheses of masses 400, 800 and 1200 GeV are also shown. The band denotes the statistical and systematic uncertainty on the background before the fit to the data. The lower panels show the ratio of data to the SM background estimate

Fig. 2.

Fig. 2

Observed and expected 95 % CL upper limits on the cross section times branching fraction as a function of the resonance pole mass for the G (top) and EGM W (bottom). The LO (NNLO) theoretical cross section for the G (EGM W) production is also shown. The inner and outer bands around the expected limits represent ±1σ and ±2σ variations respectively. The band around the W cross section corresponds to the NNLO theory uncertainty

Summary

A search for WW and WZ resonances decaying to a lepton, neutrino and jets is presented in this paper. The search is performed using an integrated luminosity of 20.3 fb-1 of pp collisions at s=8 TeV collected by the ATLAS detector at the LHC. A set of event selections for bulk RS G and EGM W boson signal is derived using simulated events and applied to the data. No evidence for resonant diboson production is observed and 95 % CL upper limits on the production cross section times branching fraction of G and W are determined. Resonance masses below 700 GeV are excluded for the spin-2 RS graviton G and masses below 1490 GeV are excluded for the spin-1 EGM W boson at 95 % CL. The analysis also sets the most stringent limits to date on the production cross section for W-like resonances decaying to WZ with masses around 2 TeV, where σ(ppW)×BR(WWZ) values of 9.6 fb are excluded. The results represent a significant improvement over previously reported limits [11] in the same final state due to an increased data set size and the development of new techniques to analyse highly boosted bosons that decay hadronically.

Acknowledgments

We thank CERN for the very successful operation of the LHC, as well as the support staff from our institutions without whom ATLAS could not be operated efficiently. We acknowledge the support of ANPCyT, Argentina; YerPhI, Armenia; ARC, Australia; BMWFW and FWF, Austria; ANAS, Azerbaijan; SSTC, Belarus; CNPq and FAPESP, Brazil; NSERC, NRC and CFI, Canada; CERN; CONICYT, Chile; CAS, MOST and NSFC, China; COLCIENCIAS, Colombia; MSMT CR, MPO CR and VSC CR, Czech Republic; DNRF, DNSRC and Lundbeck Foundation, Denmark; EPLANET, ERC and NSRF, European Union; IN2P3-CNRS, CEA-DSM/IRFU, France; GNSF, Georgia; BMBF, DFG, HGF, MPG and AvH Foundation, Germany; GSRT and NSRF, Greece; RGC, Hong Kong SAR, China; ISF, MINERVA, GIF, I-CORE and Benoziyo Center, Israel; INFN, Italy; MEXT and JSPS, Japan; CNRST, Morocco; FOM and NWO, The Netherlands; BRF and RCN, Norway; MNiSW and NCN, Poland; GRICES and FCT, Portugal; MNE/IFA, Romania; MES of Russia and NRC KI, Russian Federation; JINR; MSTD, Serbia; MSSR, Slovakia; ARRS and MIZŠ, Slovenia; DST/NRF, South Africa; MINECO, Spain; SRC and Wallenberg Foundation, Sweden; SER, SNSF and Cantons of Bern and Geneva, Switzerland; NSC, Taiwan; TAEK, Turkey; STFC, the Royal Society and Leverhulme Trust, United Kingdom; DOE and NSF, United States of America. The crucial computing support from all WLCG partners is acknowledged gratefully, in particular from CERN and the ATLAS Tier-1 facilities at TRIUMF (Canada), NDGF (Denmark, Norway, Sweden), CC-IN2P3 (France), KIT/GridKA (Germany), INFN-CNAF (Italy), NL-T1 (The Netherlands), PIC (Spain), ASGC (Taiwan), RAL (UK) and BNL (USA) and in the Tier-2 facilities worldwide.

Footnotes

1

ATLAS uses a right-handed coordinate system with its origin at the nominal interaction point (IP) in the centre of the detector and the z-axis along the beam pipe. The x-axis points from the IP to the centre of the LHC ring, and the y-axis points upward. Cylindrical coordinates (r,ϕ) are used in the transverse plane, ϕ being the azimuthal angle around the beam pipe. The pseudorapidity is defined in terms of the polar angle θ as η=-lntan(θ/2).

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