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Global tropospheric ozone trends, attributions, and radiative impacts in 1995-2017: an integrated analysis using aircraft (IAGOS) observations, ozonesonde, and multi-decadal chemical model simulations 期刊论文
Atmospheric Chemistry and Physics, 2022
作者:  Haolin Wang, Xiao Lu, Daniel J. Jacob, Owen R. Cooper, Kai-Lan Chang, Ke Li, Meng Gao, Yiming Liu, Bosi Sheng, Kai Wu, Tongwen Wu, Jie Zhang, Bastien Sauvage, Philippe Nédélec, Romain Blot, and Shaojia Fan
收藏  |  浏览/下载:18/0  |  提交时间:2022/07/08
Ozone pollution in the North China Plain spreading into the late-winter haze season 期刊论文
Proceedings of the National Academy of Science, 2021
作者:  Ke Li;  Daniel J. Jacob;  Hong Liao;  Yulu Qiu;  Lu Shen;  Shixian Zhai;  Kelvin H. Bates;  Melissa P. Sulprizio;  Shaojie Song;  Xiao Lu;  Qiang Zhang;  Bo Zheng;  Yuli Zhang;  Jinqiang Zhang;  Hyun Chul Lee;  Su Keun Kuk
收藏  |  浏览/下载:14/0  |  提交时间:2021/03/12
Aqueous production of secondary organic aerosol from fossil-fuel emissions in winter Beijing haze 期刊论文
Proceedings of the National Academy of Science, 2021
作者:  Junfeng Wang;  Jianhuai Ye;  Qi Zhang;  Jian Zhao;  Yangzhou Wu;  Jingyi Li;  Dantong Liu;  Weijun Li;  Yange Zhang;  Cheng Wu;  Conghui Xie;  Yiming Qin;  Yali Lei;  Xiangpeng Huang;  Jianping Guo;  Pengfei Liu;  Pingqing Fu;  Yongjie Li;  Hyun Chul Lee;  Hyoungwoo Choi;  Jie Zhang;  Hong Liao;  Mindong Chen;  Yele Sun;  Xinlei Ge;  Scot T. Martin;  Daniel J. Jacob
收藏  |  浏览/下载:15/0  |  提交时间:2021/02/22
Global modeling of cloud water acidity, precipitation acidity, and acid inputs to ecosystems 期刊论文
Atmospheric Chemistry and Physics, 2020
作者:  Viral Shah, Daniel J. Jacob, Jonathan M. Moch, Xuan Wang, and Shixian Zhai
收藏  |  浏览/下载:8/0  |  提交时间:2020/11/09
Global status and conservation potential of reef sharks 期刊论文
Nature, 2020
作者:  M. Aaron MacNeil;  Demian D. Chapman;  Michelle Heupel;  Colin A. Simpfendorfer;  Michael Heithaus;  Mark Meekan;  Euan Harvey;  Jordan Goetze;  Jeremy Kiszka;  Mark E. Bond;  Leanne M. Currey-Randall;  Conrad W. Speed;  C. Samantha Sherman;  Matthew J. Rees;  Vinay Udyawer;  Kathryn I. Flowers;  Gina Clementi;  Jasmine Valentin-Albanese;  Taylor Gorham;  M. Shiham Adam;  Khadeeja Ali;  Fabiá;  n Pina-Amargó;  s;  Jorge A. Angulo-Valdé;  s;  Jacob Asher;  Laura Garcí;  a Barcia;  Océ;  ane Beaufort;  Cecilie Benjamin;  Anthony T. F. Bernard;  Michael L. Berumen;  Stacy Bierwagen;  Erika Bonnema;  Rosalind M. K. Bown;  Darcey Bradley;  Edd Brooks;  J. Jed Brown;  Dayne Buddo;  Patrick Burke;  Camila Cá;  ceres;  Diego Cardeñ;  osa;  Jeffrey C. Carrier;  Jennifer E. Caselle;  Venkatesh Charloo;  Thomas Claverie;  Eric Clua;  Jesse E. M. Cochran;  Neil Cook;  Jessica Cramp;  Brooke D’;  Alberto;  Martin de Graaf;  Mareike Dornhege;  Andy Estep;  Lanya Fanovich;  Naomi F. Farabough;  Daniel Fernando;  Anna L. Flam;  Camilla Floros;  Virginia Fourqurean;  Ricardo Garla;  Kirk Gastrich;  Lachlan George;  Rory Graham;  Tristan Guttridge;  Royale S. Hardenstine;  Stephen Heck;  Aaron C. Henderson;  Heidi Hertler;  Robert Hueter;  Mohini Johnson;  Stacy Jupiter;  Devanshi Kasana;  Steven T. Kessel;  Benedict Kiilu;  Taratu Kirata;  Baraka Kuguru;  Fabian Kyne;  Tim Langlois;  Elodie J. I. Lé;  ;  e;  Steve Lindfield;  Andrea Luna-Acosta;  Jade Maggs;  B. Mabel Manjaji-Matsumoto;  Andrea Marshall;  Philip Matich;  Erin McCombs;  Dianne McLean;  Llewelyn Meggs;  Stephen Moore;  Sushmita Mukherji;  Ryan Murray;  Muslimin Kaimuddin;  Stephen J. Newman;  Josep Nogué;  s;  Clay Obota;  Owen O’;  Shea;  Kennedy Osuka;  Yannis P. Papastamatiou;  Nishan Perera;  Bradley Peterson;  Alessandro Ponzo;  Andhika Prasetyo;  L. M. Sjamsul Quamar;  Jessica Quinlan;  Alexei Ruiz-Abierno;  Enric Sala;  Melita Samoilys;  Michelle Schä;  rer-Umpierre;  Audrey Schlaff;  Nikola Simpson;  Adam N. H. Smith;  Lauren Sparks;  Akshay Tanna;  Rubé;  n Torres;  Michael J. Travers;  Maurits van Zinnicq Bergmann;  Laurent Vigliola;  Juney Ward;  Alexandra M. Watts;  Colin Wen;  Elizabeth Whitman;  Aaron J. Wirsing;  Aljoscha Wothke;  Esteban Zarza-Gonzâ;  lez;  Joshua E. Cinner
收藏  |  浏览/下载:17/0  |  提交时间:2020/08/09
Accelerating methane growth rate from 2010 to 2017: leading contributions from the tropics and East Asia 期刊论文
Atmospheric Chemistry and Physics, 2020
作者:  Yi Yin, Frederic Chevallier, Philippe Ciais, Philippe Bousquet, Marielle Saunois, Bo Zheng, John Worden, A. Anthony Bloom, Robert Parker, Daniel Jacob, Edward J. Dlugokencky, and Christian Frankenberg
收藏  |  浏览/下载:16/0  |  提交时间:2020/07/14
Global modeling of cloudwater acidity, rainwater acidity, and acid inputs to ecosystems 期刊论文
Atmospheric Chemistry and Physics, 2020
作者:  Viral Shah, Daniel J. Jacob, Jonathan M. Moch, Xuan Wang, and Shixian Zhai
收藏  |  浏览/下载:10/0  |  提交时间:2020/06/29
Fast sulfate formation from oxidation of SO2 by NO2 and HONO observed in Beijing haze 期刊论文
NATURE COMMUNICATIONS, 2020, 11 (1)
作者:  Wang, Junfeng;  Li, Jingyi;  Ye, Jianhuai;  Zhao, Jian;  Wu, Yangzhou;  Hu, Jianlin;  Liu, Dantong;  Nie, Dongyang;  Shen, Fuzhen;  Huang, Xiangpeng;  Huang, Dan Dan;  Ji, Dongsheng;  Sun, Xu;  Xu, Weiqi;  Guo, Jianping;  Song, Shaojie;  Qin, Yiming;  Liu, Pengfei;  Turner, Jay R.;  Lee, Hyun Chul;  Hwang, Sungwoo;  Liao, Hong;  Martin, Scot T.;  Zhang, Qi;  Chen, Mindong;  Sun, Yele;  Ge, Xinlei;  Jacob, Daniel J.
收藏  |  浏览/下载:18/0  |  提交时间:2020/06/09
2013-2019 increases of surface ozone pollution in China: anthropogenic and meteorological influences 期刊论文
Atmospheric Chemistry and Physics, 2020
作者:  Ke Li, Daniel J. Jacob, Lu Shen, Xiao Lu, Isabelle De Smedt, and Hong Liao
收藏  |  浏览/下载:9/0  |  提交时间:2020/05/13
Electrical manipulation of a topological antiferromagnetic state 期刊论文
NATURE, 2020, 580 (7805) : 608-+
作者:  Chabon, Jacob J.;  Hamilton, Emily G.;  Kurtz, David M.;  Esfahani, Mohammad S.;  Moding, Everett J.;  Stehr, Henning;  Schroers-Martin, Joseph;  Nabet, Barzin Y.;  Chen, Binbin;  Chaudhuri, Aadel A.;  Liu, Chih Long;  Hui, Angela B.;  Jin, Michael C.;  Azad, Tej D.;  Almanza, Diego;  Jeon, Young-Jun;  Nesselbush, Monica C.;  Keh, Lyron Co Ting;  Bonilla, Rene F.;  Yoo, Christopher H.;  Ko, Ryan B.;  Chen, Emily L.;  Merriott, David J.;  Massion, Pierre P.;  Mansfield, Aaron S.;  Jen, Jin;  Ren, Hong Z.;  Lin, Steven H.;  Costantino, Christina L.;  Burr, Risa;  Tibshirani, Robert;  Gambhir, Sanjiv S.;  Berry, Gerald J.;  Jensen, Kristin C.;  West, Robert B.;  Neal, Joel W.;  Wakelee, Heather A.;  Loo, Billy W., Jr.;  Kunder, Christian A.;  Leung, Ann N.;  Lui, Natalie S.;  Berry, Mark F.;  Shrager, Joseph B.;  Nair, Viswam S.;  Haber, Daniel A.;  Sequist, Lecia V.;  Alizadeh, Ash A.;  Diehn, Maximilian
收藏  |  浏览/下载:37/0  |  提交时间:2020/07/03

Room-temperature electrical switching of a topological antiferromagnetic state in polycrystalline Mn3Sn thin films is demonstrated using the same protocol as that used for conventional ferromagnetic metals.


Electrical manipulation of phenomena generated by nontrivial band topology is essential for the development of next-generation technology using topological protection. A Weyl semimetal is a three-dimensional gapless system that hosts Weyl fermions as low-energy quasiparticles(1-4). It has various exotic properties, such as a large anomalous Hall effect (AHE) and chiral anomaly, which are robust owing to the topologically protected Weyl nodes(1-16). To manipulate such phenomena, a magnetic version of Weyl semimetals would be useful for controlling the locations of Weyl nodes in the Brillouin zone. Moreover, electrical manipulation of antiferromagnetic Weyl metals would facilitate the use of antiferromagnetic spintronics to realize high-density devices with ultrafast operation(17,18). However, electrical control of a Weyl metal has not yet been reported. Here we demonstrate the electrical switching of a topological antiferromagnetic state and its detection by the AHE at room temperature in a polycrystalline thin film(19) of the antiferromagnetic Weyl metal Mn3Sn9,10,12,20, which exhibits zero-field AHE. Using bilayer devices composed of Mn3Sn and nonmagnetic metals, we find that an electrical current density of about 10(10) to 10(11) amperes per square metre induces magnetic switching in the nonmagnetic metals, with a large change in Hall voltage. In addition, the current polarity along the bias field and the sign of the spin Hall angle of the nonmagnetic metals-positive for Pt (ref. (21)), close to 0 for Cu and negative for W (ref. (22))-determines the sign of the Hall voltage. Notably, the electrical switching in the antiferromagnet is achieved with the same protocol as that used for ferromagnetic metals(23,24). Our results may lead to further scientific and technological advances in topological magnetism and antiferromagnetic spintronics.