Azimuthal anisotropy in Cu$+$Au collisions at $\sqrt{s_{_{NN}}}$ = 200 GeV

L. Adamczyk, K. Krueger,D. Kalinkin, A. Tawfik, X. Bai,V. Okorokov,Wen-Qing Shen,T. J. Humanic,Hans Georg Ritter,G. S. Averichev,L. Ruan, J. Ewigleben, M. Sergeeva, Barbara Trzeciak,D. A. Morozov,M. Strikhanov, P. Federicova,T. Huang, P. Seyboth,M. Simko, A. Harlenderova, S. Salur, S. Heppelmann,X. M. Sun, J. Lauret,Yuanjing Li,Niseem Magdy Abdelwahab Abdelrahman, Z. Zhu,Christina Markert,O. V. Rogachevskiy,Chris Perkins,D. B. Nemes, Subhasis Chattopadhyay, Igor Bordyuzhin,G. L. Ma,Q. Y. Shou,S. W. Wissink, W. G. Li,Nu Xu,J. L. Drachenberg, N. G. Minaev, Z. Feng, J. Zhao, L. Didenko,Sergei A. Voloshin,M. Tokarev, L. Wen, Kin Yip,Song Zhang,Lokesh Kumar,Olga Evdokimov, J. H. Chen,H. J. Crawford,A. Chatterjee, D. Kapukchyan,S. Fazio, Dmitri Smirnov,Xin Dong,D. M. Anderson, S. B. Nurushev,Long Zhou, N. Elsey, Bill Christie,A. Ogawa, L. V. Nogach,Zhangbu Xu,L. Fulek,Jaroslav Bielcik,J. Bouchet,Alexander Vasiliev,D. S. Gunarathne,Xiaoping Zhang, D. Olvitt,N. Yu,C. Zhong,A. I. Hamad,S. K. Tripathy,Jeong-Hun Lee, D. Arkhipkin, L. Yi,B. Pawlik, S. Trentalange,Jim Thomas,L. K. Kosarzewski,Feng Liu, A. Attri,G. D. Westfall,G. Xie,M. Posik, Yi Guo,Xin Li, Y. Panebratsev,Jianping Cheng,R. E. Tribble,Xiaofeng Luo,Kejun Kang,N. Chankova-Bunzarova,P. Bhattarai, Tapan Kumar Nayak,A. F. Kraishan,Jan Pluta, Evan Finch, Yuri Fisyak,R. Esha,B. R. Schweid, J. C. Webb,O. Rusnakova, Spiros Margetis, Mariusz Przybycien,A. Taranenko, Takafumi Niida,Chi Yang,Jian Deng,Y. Liu,Y. Sun,Pradip Kumar Sahu, R. Bellwied, T. Ljubicic, Xiaolong Chen, ShinIchi Esumi,Zhengqiao Zhang, Subhash Singha,B. Tu,D. J. Stewart,Arabinda Behera, K. Poniatowska,J. Fujita,Zebo Tang, D. Grosnick,Zhenyu Ye,J. H. Kwasizur, T. Tarnowsky, T. G. Dedovich,Jingbo Zhang,D. P. Kikola,X. Huang,L. C. Bland,Y. Wang,H. W. Ke,Adam Gibson,X. Chen, Samuel Heppelmann,B. Summa,Peter Filip,M. A. Lisa, Richard Majka,Jay Roberts, Irakli Chakaberia,N. Shah,Daniel Brown, B. Schmidke, Ashok Kumar Bhati, M. M. Aggarwal,Shuai Yang, Hal Spinka,Yi-Fei Xu,I. Upsal,B. Huang, Ron Longacre, Norbert Herrmann,Frank Geurts, W. Guryn,B. Srivastava,G. Wang, G. Eppley, F. Videbaek, In-Kwon Yoo,R. Ma,A. M. Poskanzer, Kenneth Barish,A. Aparin,A. M. Schmah, Vipul Bairathi, S. Mioduszewski, Robert Pak,B. S. Page, T. Nonaka,H. Pei,S. S. Shi,A. Vossen, A. Bhasin,J. Sandweiss, M. Cherney,D. N. Svirida, M. Kocmanek, B. Mohanty, Z. W. Miller,T. Sugiura,Y. Wu, W. Zha, Z. Ahammed, Hanna Zbroszczyk, Gene Van Buren,C. Zhou,K. Oh,L. Ma,M. M. Mondal, Carl A. Gagliardi,John Nelson, Liang Zhang,J. Kvapil, Martin Girard, N. K. Pruthi,Sanshiro Mizuno, Kevin Adkins, Anthony Timmins, B. Stringfellow,S. Horvat, L. Kochenda,G. Agakishiev, Alexandre Alarcon Suaide, D. Cebra,Ernst Sichtermann,J. B. Zhang, A. Hirsch, L. Krauth,W. Solyst,R. Sikora,Yu-Gang Ma, K. Kauder, J. Lidrych,J. Bryslawskyj, M. Lomnitz,J. M. Butterworth, E. Shahaliev, Manuel Calderon de la Barca Sanchez,E. G. Judd,Joachim Schambach, Dave Underwood,R. Seto, M.J. Rehbein, A. Kechechyan, J. Seger, E. C. Aschenauer,Juan M. Romero, David Tlusty,J. Engelage,Y. Zhang,Nikolai Smirnov, J. Fedorisin, Jeffery Landgraf,T. Todoroki, Joern Putschke,M. Nie, H. Z. Huang, Nasim,D. Mishra,Cheng Li,D. Mayes,W. J. Llope, S. Stanislaus,H. Liu,Z. Shi,K. Jiang,A. Jentsch, Maksym Zyzak,Q. Yang,Xiangming Sun,Qinghua Xu,Z. H. Khan, Jochen Thaeder,Declan Keane,Y. Pandit,S. Luo, J. C. Mei, S. Kabana,K. Meehan, G. Odyniec,William Jacobs,Richard Lednicky, A. Lebedev,A. Hamed,Giacomo Contin,C. Dilks, S. Vokal, F. Wang, P. Chaloupka,Sabita Das,J. D. Brandenburg,Wei Xie,H. S. Matis, H. Wieman,John William Harris,A. V. Brandin,Yi Wang,I. Alekseev,Yi Yang,O. Eyser, P. Kravtsov, R. Fatemi,Paul Sorensen, J. E. Draper, H. Caines, Liang He,Jeff Porter, D. Mallick, R. Aoyama,N. Kulathunga, S. Jowzaee,O. D. Tsai, Lanny Ray, B. Surrow, Pavol Federic,Z. Xiao,M. K. Mustafa,Prithwish Tribedy, George Igo,Xianglei Zhu,N. R. Sahoo, Ivan Kisel,J. R. Adams,A. A. Derevschikov,K. D. Landry,C. Flores,C. Kim,M. J. Skoby,Thomas Ullrich, Gerrit Jan van Nieuwenhuizen, R. Lacey,I. Bunzarov, Z. Chang,Adam Kisiel, Miroslav Saur, John Campbell,Ming Shao, G. Nigmatkulov,S. Zhang,N. N. Ajitanand,G. Webb,I. M. Deppner, Anik Gupta,T. Lin, Thorsten Kollegger, Jana Bielcikova,P. Liu,Z. Ye,P. V. Shanmuganathan, M. U. Ashraf, R. Witt,J. Rusnak,Aihong Tang,N. Schmitz,Peng Huo,Michal Sumbera,J. C. Dunlop,J. Xu,A. Quintero,Jiangyong Jia,R. Reed,J.D. Roth

arXiv: Nuclear Experiment(2017)

引用 21|浏览14
暂无评分
摘要
The azimuthal anisotropic flow of identified and unidentified charged particles has been systematically studied in Cu+Au collisions at $sqrt{s_{_{NN}}}$ = 200 GeV for harmonics $n=$ 1-4 in the pseudorapidity range $|eta|u003c1$. The directed flow in Cu+Au collisions is compared with the rapidity-odd and, for the first time, the rapidity-even components of charged particle directed flow in Au+Au collisions at $sqrt{s_{_{NN}}}$ = 200~GeV. The slope of the directed flow pseudorapidity dependence in Cu+Au collisions is found to be similar to that in Au+Au collisions, with the intercept shifted toward positive $eta$ values, i.e., the Cu-going direction. The mean transverse momentum projected onto the spectator plane, $langle p_xrangle$, in Cu+Au collision also exhibits approximately linear dependence on $eta$ with the intercept at about $etaapprox-0.4$, closer to the rapidity of the Cu+Au system center-of-mass. The observed dependencies find natural explanation in a picture of the directed flow originating partly due the tilted source and partly due to the rapidity dependent asymmetry in the initial density distribution. Charge-dependence of the $langle p_xrangle$ was also observed in Cu+Au collisions, indicating an effect of the initial electric field created by charge difference of the spectator protons in two colliding nuclei. The rapidity-even component of directed flow in Au+Au collisions is close to that in Pb+Pb collisions at $sqrt{s_{_{NN}}}$ = 2.76 TeV, indicating a similar magnitude of dipole-like fluctuations in the initial-state density distribution. Higher harmonic flow in Cu+Au collisions exhibits similar trends to those observed in Au+Au and Pb+Pb collisions and is qualitatively reproduced by a viscous hydrodynamic model and a multi-phase transport model. For all harmonics with $nge2$ we observe an approximate scaling of $v_n$ with the number of constituent quarks.
更多
查看译文
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要