Bell's theorem for trajectories
Dragoljub Gočanin, Aleksandra Dimić, Flavio Del Santo, and Borivoje Dakić
Phys. Rev. A 102, 020201(R) (2020) - Published 7 August, 2020
Paul Webster and Stephen D. Bartlett
Phys. Rev. A 102, 022403 (2020) - Published 6 August, 2020
Universal quantum computing by braiding defects in topological stabilizer codes of any dimension is proven to be impossible. Notwithstanding this no-go theorem, it is shown how braiding defects can yield all Clifford gates in three or more dimensions, and that universal quantum computing in three-dimensional surface codes is possible by supplementing braiding with adaptive gates.
Abhijeet Melkani, Clemens Gneiting, and Franco Nori
Phys. Rev. A 102, 022412 (2020) - Published 19 August, 2020
A scheme for quantum state tomography based on an efficient neural network representation is demonstrated. The method, tailored to a relevant class of nearly pure states, or simple mixed states, was tested using experimental data from trapped-ion experiments with four to eight qubits.
Manuel Rispler, Pascal Cerfontaine, Veit Langrock, and Barbara M. Terhal
Phys. Rev. A 102, 022416 (2020) - Published 21 August, 2020
A realistic multiqubit chip configuration is investigated in detail, showing that building a device with error suppression is within reach with current technology. The study uses full density matrix simulation with accurate noise modeling, bringing to light potential bottlenecks and how to overcome them.
Martin W. van Mourik, Esteban A. Martinez, Lukas Gerster, Pavel Hrmo, Thomas Monz, Philipp Schindler, and Rainer Blatt
Phys. Rev. A 102, 022611 (2020) - Published 12 August, 2020
An important building block for large-scale quantum computation with trapped ions is experimentally realized. The investigation is crucial for transport-based quantum logic.
Y. W. Zhang, J. W. Gao, Y. Wu, F. Y. Zhou, J. G. Wang, N. Sisourat, and A. Dubois
Phys. Rev. A 102, 022814 (2020) - Published 24 August, 2020
A theoretical investigation on single- and double-electron capture in highly-charged-nitrogen-ion and hydrogen-molecule collisions is carried out using a two-active-electron semiclassical nonperturbative approach. It is shown that electron-electron correlations play an important role and that capture into the autoionizing states must be considered when comparing with experimental data for single projectile charge-changing processes.
I. A. Aleksandrov, D. A. Tumakov, A. Kudlis, V. M. Shabaev, and N. N. Rosanov
Phys. Rev. A 102, 023102 (2020) - Published 4 August, 2020
The spin dynamics of an electron in a laser pulse is investigated within a classical treatment and relativistic quantum mechanics. It is shown that the electric-field area of a unipolar pulse plays a crucial role in the process. Besides, the classical predictions are accurately reproduced when using the Foldy-Wouthuysen spin operator.
L. Stenzel, A. L. C. Hayward, U. Schollwöck, and F. Heidrich-Meisner
Phys. Rev. A 102, 023315 (2020) - Published 17 August, 2020
The Harper-Hofstadter model for spinful fermions at two-thirds filling is studied using a hybrid-space DMRG approach. Hall conductivity is computed and topological phases, including the appearance of a ferromagnetic ground state between the strongly interacting 1D and 2D models, are identified.
Ming Zhu, Yan-Cheng Wei, and Chen-Lung Hung
Phys. Rev. A 102, 023716 (2020) - Published 24 August, 2020
Optical detection of molecules can often be challenging due to the lack of a closed cycling transition. In this paper, the authors explore the use of high- cavities and microresonators to increase the interaction time of light with a single molecule. Their technique could potentially also be applied for atoms or other quantum emitters.
Dragoljub Gočanin, Aleksandra Dimić, Flavio Del Santo, and Borivoje Dakić
Phys. Rev. A 102, 020201(R) (2020) - Published 7 August, 2020
Matteo Fadel, Albert Aloy, and Jordi Tura
Phys. Rev. A 102, 020401(R) (2020) - Published 14 August, 2020
Yusef Maleki and Bahram Ahansaz
Phys. Rev. A 102, 020402(R) (2020) - Published 17 August, 2020
Marcin Gronowski, Adam M. Koza, and Michał Tomza
Phys. Rev. A 102, 020801(R) (2020) - Published 10 August, 2020
Pablo Barcellona, Robert Bennett, and Stefan Yoshi Buhmann
Phys. Rev. A 102, 020802(R) (2020) - Published 31 August, 2020
D. Buhin, D. Kovačić, F. Schmid, M. Kruljac, V. Vulić, T. Ban, and D. Aumiler
Phys. Rev. A 102, 021101(R) (2020) - Published 25 August, 2020
Xin Lü
Phys. Rev. A 102, 022201 (2020) - Published 4 August, 2020
M. Thenabadu, G.-L. Cheng, T. L. H. Pham, L. V. Drummond, L. Rosales-Zárate, and M. D. Reid
Phys. Rev. A 102, 022202 (2020) - Published 5 August, 2020
Mirjam Weilenmann and Roger Colbeck
Phys. Rev. A 102, 022203 (2020) - Published 6 August, 2020
Francesco Giacosa, Przemysław Kościk, and Tomasz Sowiński
Phys. Rev. A 102, 022204 (2020) - Published 11 August, 2020
Isadora Veeren and Fernando de Melo
Phys. Rev. A 102, 022205 (2020) - Published 10 August, 2020
G. Homa, A. Csordás, M. A. Csirik, and J. Z. Bernád
Phys. Rev. A 102, 022206 (2020) - Published 10 August, 2020
Giulio Amato, Heinz-Peter Breuer, Sandro Wimberger, Alberto Rodríguez, and Andreas Buchleitner
Phys. Rev. A 102, 022207 (2020) - Published 11 August, 2020
Iman Sargolzahi
Phys. Rev. A 102, 022208 (2020) - Published 11 August, 2020
Denis Lacroix, V. V. Sargsyan, G. G. Adamian, N. V. Antonenko, and A. A. Hovhannisyan
Phys. Rev. A 102, 022209 (2020) - Published 11 August, 2020
Felix Thiel, David A. Kessler, and Eli Barkai
Phys. Rev. A 102, 022210 (2020) - Published 13 August, 2020
K. L. Zhang and Z. Song
Phys. Rev. A 102, 022211 (2020) - Published 13 August, 2020
Michael Kastner
Phys. Rev. A 102, 022212 (2020) - Published 13 August, 2020
Naoaki Shimada and Akira Shudo
Phys. Rev. A 102, 022213 (2020) - Published 17 August, 2020
Kunkun Wang, Mengyan Xu, Lei Xiao, and Peng Xue
Phys. Rev. A 102, 022214 (2020) - Published 17 August, 2020
Fei-Lei Xiong and Wei-Min Zhang
Phys. Rev. A 102, 022215 (2020) - Published 18 August, 2020
Mariano Bonifacio and Adrián A. Budini
Phys. Rev. A 102, 022216 (2020) - Published 19 August, 2020
Haijin Mu and Yongming Li
Phys. Rev. A 102, 022217 (2020) - Published 19 August, 2020
Rui Zhang, Yi-Fan Liu, and Tian Chen
Phys. Rev. A 102, 022218 (2020) - Published 19 August, 2020
X. M. Yang and Z. Song
Phys. Rev. A 102, 022219 (2020) - Published 19 August, 2020
Hillary Dawkins, Joel Wallman, and Joseph Emerson
Phys. Rev. A 102, 022220 (2020) - Published 20 August, 2020
Hossein Rangani Jahromi, Kobra Mahdavipour, Mahshid Khazaei Shadfar, and Rosario Lo Franco
Phys. Rev. A 102, 022221 (2020) - Published 20 August, 2020
Alfredo Luis and Laura Ares
Phys. Rev. A 102, 022222 (2020) - Published 21 August, 2020
Gonzalo Martín-Vázquez and Javier Rodríguez-Laguna
Phys. Rev. A 102, 022223 (2020) - Published 24 August, 2020
Emilio Bagan, János A. Bergou, and Mark Hillery
Phys. Rev. A 102, 022224 (2020) - Published 24 August, 2020
Olli Siltanen, Tom Kuusela, and Jyrki Piilo
Phys. Rev. A 102, 022225 (2020) - Published 25 August, 2020
Kyrylo Simonov
Phys. Rev. A 102, 022226 (2020) - Published 25 August, 2020
Shantanav Chakraborty, Leonardo Novo, and Jérémie Roland
Phys. Rev. A 102, 022227 (2020) - Published 26 August, 2020
Simon Einsiedler, Andreas Ketterer, and Heinz-Peter Breuer
Phys. Rev. A 102, 022228 (2020) - Published 27 August, 2020
Ming-Da Huang, Ya-Fei Yu, and Zhi-Ming Zhang
Phys. Rev. A 102, 022229 (2020) - Published 27 August, 2020
Aaron Z. Goldberg, Ilaria Gianani, Marco Barbieri, Fabio Sciarrino, Aephraim M. Steinberg, and Nicolò Spagnolo
Phys. Rev. A 102, 022230 (2020) - Published 27 August, 2020
Saptarshi Biswas, Partha Nandi, and Biswajit Chakraborty
Phys. Rev. A 102, 022231 (2020) - Published 28 August, 2020
Henri Lyyra, Olli Siltanen, Jyrki Piilo, Subhashish Banerjee, and Tom Kuusela
Phys. Rev. A 102, 022232 (2020) - Published 31 August, 2020
Biswajit Paul, Kaushiki Mukherjee, Ajoy Sen, Debasis Sarkar, Amit Mukherjee, Arup Roy, and Some Sankar Bhattacharya
Phys. Rev. A 102, 022401 (2020) - Published 3 August, 2020
Chao Yin and Andrew Lucas
Phys. Rev. A 102, 022402 (2020) - Published 4 August, 2020
Paul Webster and Stephen D. Bartlett
Phys. Rev. A 102, 022403 (2020) - Published 6 August, 2020
Universal quantum computing by braiding defects in topological stabilizer codes of any dimension is proven to be impossible. Notwithstanding this no-go theorem, it is shown how braiding defects can yield all Clifford gates in three or more dimensions, and that universal quantum computing in three-dimensional surface codes is possible by supplementing braiding with adaptive gates.
Lu Qi, Guo-Li Wang, Shutian Liu, Shou Zhang, and Hong-Fu Wang
Phys. Rev. A 102, 022404 (2020) - Published 7 August, 2020
Victoria Lipinska, Jérémy Ribeiro, and Stephanie Wehner
Phys. Rev. A 102, 022405 (2020) - Published 7 August, 2020
Aleks Kissinger and John van de Wetering
Phys. Rev. A 102, 022406 (2020) - Published 11 August, 2020
Max Hunter-Gordon, Zsolt Szabó, Robert A. Nyman, and Florian Mintert
Phys. Rev. A 102, 022407 (2020) - Published 11 August, 2020
Patrick Rall
Phys. Rev. A 102, 022408 (2020) - Published 14 August, 2020
A. Roggero
Phys. Rev. A 102, 022409 (2020) - Published 14 August, 2020
Yiping Lu, Jun Yan Sim, Jun Suzuki, Berthold-Georg Englert, and Hui Khoon Ng
Phys. Rev. A 102, 022410 (2020) - Published 18 August, 2020
N. Fabre, A. Keller, and P. Milman
Phys. Rev. A 102, 022411 (2020) - Published 19 August, 2020
Abhijeet Melkani, Clemens Gneiting, and Franco Nori
Phys. Rev. A 102, 022412 (2020) - Published 19 August, 2020
A scheme for quantum state tomography based on an efficient neural network representation is demonstrated. The method, tailored to a relevant class of nearly pure states, or simple mixed states, was tested using experimental data from trapped-ion experiments with four to eight qubits.
Adam Burchardt and Zahra Raissi
Phys. Rev. A 102, 022413 (2020) - Published 19 August, 2020
Mathieu Bozzio, Ulysse Chabaud, Iordanis Kerenidis, and Eleni Diamanti
Phys. Rev. A 102, 022414 (2020) - Published 19 August, 2020
Juan Atalaya, Alexander N. Korotkov, and K. Birgitta Whaley
Phys. Rev. A 102, 022415 (2020) - Published 20 August, 2020
Manuel Rispler, Pascal Cerfontaine, Veit Langrock, and Barbara M. Terhal
Phys. Rev. A 102, 022416 (2020) - Published 21 August, 2020
A realistic multiqubit chip configuration is investigated in detail, showing that building a device with error suppression is within reach with current technology. The study uses full density matrix simulation with accurate noise modeling, bringing to light potential bottlenecks and how to overcome them.
Hailong Wang, Kai Zhang, Nicolas Treps, Claude Fabre, Jun Zhang, and Jietai Jing
Phys. Rev. A 102, 022417 (2020) - Published 21 August, 2020
Mao-Sheng Li and Kavan Modi
Phys. Rev. A 102, 022418 (2020) - Published 24 August, 2020
Shih-Xian Yang, Gelo Noel Tabia, Pei-Sheng Lin, and Yeong-Cherng Liang
Phys. Rev. A 102, 022419 (2020) - Published 24 August, 2020
Xiao-Dan Cui, C. L. Liu, and D. M. Tong
Phys. Rev. A 102, 022420 (2020) - Published 24 August, 2020
Kok Chuan Tan
Phys. Rev. A 102, 022421 (2020) - Published 24 August, 2020
Jeffrey B. Parker and Ilon Joseph
Phys. Rev. A 102, 022422 (2020) - Published 25 August, 2020
Shantanav Chakraborty, Kyle Luh, and Jérémie Roland
Phys. Rev. A 102, 022423 (2020) - Published 25 August, 2020
Koichi Miyamoto and Kenji Shiohara
Phys. Rev. A 102, 022424 (2020) - Published 27 August, 2020
Dan-Yang Chen, Zhi Lin, Ming Yang, Qing Yang, Xue-Ping Zang, and Zhuo-Liang Cao
Phys. Rev. A 102, 022425 (2020) - Published 28 August, 2020
Wesley C. Campbell
Phys. Rev. A 102, 022426 (2020) - Published 31 August, 2020
Miroslav Urbanek, Benjamin Nachman, and Wibe A. de Jong
Phys. Rev. A 102, 022427 (2020) - Published 31 August, 2020
Hadrien Chevalier, A. J. Paige, and M. S. Kim
Phys. Rev. A 102, 022428 (2020) - Published 31 August, 2020
Zhao-Ming Wang, Marcelo S. Sarandy, and Lian-Ao Wu
Phys. Rev. A 102, 022601 (2020) - Published 3 August, 2020
Le Bin Ho, Hideaki Hakoshima, Yuichiro Matsuzaki, Masayuki Matsuzaki, and Yasushi Kondo
Phys. Rev. A 102, 022602 (2020) - Published 4 August, 2020
Du Ran, Wu-Jiang Shan, Zhi-Cheng Shi, Zhen-Biao Yang, Jie Song, and Yan Xia
Phys. Rev. A 102, 022603 (2020) - Published 5 August, 2020
Chao-Hui Gao, Yu Guo, Dong Jiang, Jia Liu, and Li-Jun Chen
Phys. Rev. A 102, 022604 (2020) - Published 5 August, 2020
Hong-Wei Li, Zheng-Mao Xu, Zhen-Qiang Yin, and Qing-Yu Cai
Phys. Rev. A 102, 022605 (2020) - Published 10 August, 2020
Zheng-Hong Li, Xiao-Fei Ji, Saeed Asiri, Luojia Wang, and M. Al-Amri
Phys. Rev. A 102, 022606 (2020) - Published 10 August, 2020
Michael P. Kaicher, Simon B. Jäger, Pierre-Luc Dallaire-Demers, and Frank K. Wilhelm
Phys. Rev. A 102, 022607 (2020) - Published 10 August, 2020
Senmao Tan, Raditya Weda Bomantara, and Jiangbin Gong
Phys. Rev. A 102, 022608 (2020) - Published 10 August, 2020
Pu Wang, Xuyang Wang, and Yongmin Li
Phys. Rev. A 102, 022609 (2020) - Published 10 August, 2020
Manuel H. Muñoz-Arias, Ivan H. Deutsch, Poul S. Jessen, and Pablo M. Poggi
Phys. Rev. A 102, 022610 (2020) - Published 10 August, 2020
Martin W. van Mourik, Esteban A. Martinez, Lukas Gerster, Pavel Hrmo, Thomas Monz, Philipp Schindler, and Rainer Blatt
Phys. Rev. A 102, 022611 (2020) - Published 12 August, 2020
An important building block for large-scale quantum computation with trapped ions is experimentally realized. The investigation is crucial for transport-based quantum logic.
Yuxiao Jiang, Xiyue Wang, Leigh Martin, and K. Birgitta Whaley
Phys. Rev. A 102, 022612 (2020) - Published 13 August, 2020
Akihiro Mizutani
Phys. Rev. A 102, 022613 (2020) - Published 17 August, 2020
Xiao-Qi Xiao, Elisha S. Matekole, Jiankang Zhao, Guihua Zeng, Jonathan P. Dowling, and Hwang Lee
Phys. Rev. A 102, 022614 (2020) - Published 19 August, 2020
Syed M. Assad, Mile Gu, Xiaoying Li, and Ping Koy Lam
Phys. Rev. A 102, 022615 (2020) - Published 19 August, 2020
Michael Hanks, William J. Munro, and Kae Nemoto
Phys. Rev. A 102, 022616 (2020) - Published 24 August, 2020
Yi-Hao Kang, Zhi-Cheng Shi, Jie Song, and Yan Xia
Phys. Rev. A 102, 022617 (2020) - Published 24 August, 2020
Nicolás Mirkin, Martín Larocca, and Diego Wisniacki
Phys. Rev. A 102, 022618 (2020) - Published 24 August, 2020
X. Y. Han, T. Q. Cai, X. G. Li, Y. K. Wu, Y. W. Ma, Y. L. Ma, J. H. Wang, H. Y. Zhang, Y. P. Song, and L. M. Duan
Phys. Rev. A 102, 022619 (2020) - Published 25 August, 2020
Li-Yi Hsu, Ching-Yi Lai, You-Chia Chang, Chien-Ming Wu, and Ray-Kuang Lee
Phys. Rev. A 102, 022620 (2020) - Published 25 August, 2020
Wei Zhao, Ronghua Shi, Jinjing Shi, Xinchao Ruan, Ying Guo, and Duan Huang
Phys. Rev. A 102, 022621 (2020) - Published 25 August, 2020
J. Cohn, F. Yang, K. Najafi, B. Jones, and J. K. Freericks
Phys. Rev. A 102, 022622 (2020) - Published 28 August, 2020
Cosmo Lupo
Phys. Rev. A 102, 022623 (2020) - Published 31 August, 2020
K. R. Hamilton, O. Zatsarinny, K. Bartschat, M. S. Rabasović, D. Šević, B. P. Marinković, S. Dujko, J. Atić, D. V. Fursa, I. Bray, R. P. McEachran, F. Blanco, G. García, P. W. Stokes, R. D. White, and M. J. Brunger
Phys. Rev. A 102, 022801 (2020) - Published 3 August, 2020
H. B. Ambalampitiya and I. I. Fabrikant
Phys. Rev. A 102, 022802 (2020) - Published 4 August, 2020
Andrea Muolo and Markus Reiher
Phys. Rev. A 102, 022803 (2020) - Published 4 August, 2020
Vladimir I. Korobov, Jean-Philippe Karr, Mohammad Haidar, and Zhen-Xiang Zhong
Phys. Rev. A 102, 022804 (2020) - Published 4 August, 2020
S. Yoshida, J. Burgdörfer, G. Fields, R. Brienza, and F. B. Dunning
Phys. Rev. A 102, 022805 (2020) - Published 4 August, 2020
Johan van der Tol and Ewald Janssens
Phys. Rev. A 102, 022806 (2020) - Published 10 August, 2020
Murali Krishna Ganesa Subramanian, Roman Brannath, Ralph Welsch, Robin Santra, and Markus Drescher
Phys. Rev. A 102, 022807 (2020) - Published 11 August, 2020
M. V. Moro, P. Bauer, and D. Primetzhofer
Phys. Rev. A 102, 022808 (2020) - Published 12 August, 2020
B. King and S. Tang
Phys. Rev. A 102, 022809 (2020) - Published 13 August, 2020
Di Xiao, Jiguang Li (李冀光), Wesley C. Campbell, Thomas Dellaert, Patrick McMillin, Anthony Ransford, Conrad Roman, and Andrei Derevianko
Phys. Rev. A 102, 022810 (2020) - Published 14 August, 2020
Norio Inui
Phys. Rev. A 102, 022811 (2020) - Published 14 August, 2020
P. A. S. Randi, G. M. Moreira, and M. H. F. Bettega
Phys. Rev. A 102, 022812 (2020) - Published 14 August, 2020
J. Jose, S. Baral, P. C. Deshmukh, and S. T. Manson
Phys. Rev. A 102, 022813 (2020) - Published 21 August, 2020
Y. W. Zhang, J. W. Gao, Y. Wu, F. Y. Zhou, J. G. Wang, N. Sisourat, and A. Dubois
Phys. Rev. A 102, 022814 (2020) - Published 24 August, 2020
A theoretical investigation on single- and double-electron capture in highly-charged-nitrogen-ion and hydrogen-molecule collisions is carried out using a two-active-electron semiclassical nonperturbative approach. It is shown that electron-electron correlations play an important role and that capture into the autoionizing states must be considered when comparing with experimental data for single projectile charge-changing processes.
V. A. Yerokhin, K. Pachucki, M. Puchalski, C. H. Keitel, and Z. Harman
Phys. Rev. A 102, 022815 (2020) - Published 25 August, 2020
Yashwant Chougale, Jugal Talukdar, Tomás Ramos, and Rejish Nath
Phys. Rev. A 102, 022816 (2020) - Published 25 August, 2020
Neelam Shukla, Bindiya Arora, Lalita Sharma, and Rajesh Srivastava
Phys. Rev. A 102, 022817 (2020) - Published 27 August, 2020
Katrin Dulitz, Tobias Sixt, Jiwen Guan, Jonas Grzesiak, Markus Debatin, and Frank Stienkemeier
Phys. Rev. A 102, 022818 (2020) - Published 27 August, 2020
J. Matsumoto, Y. Iwasaki, H. Shiromaru, and G. Veshapidze
Phys. Rev. A 102, 022819 (2020) - Published 31 August, 2020
B. K. Sahoo
Phys. Rev. A 102, 022820 (2020) - Published 31 August, 2020
B. Fetić, W. Becker, and D. B. Milošević
Phys. Rev. A 102, 023101 (2020) - Published 3 August, 2020
I. A. Aleksandrov, D. A. Tumakov, A. Kudlis, V. M. Shabaev, and N. N. Rosanov
Phys. Rev. A 102, 023102 (2020) - Published 4 August, 2020
The spin dynamics of an electron in a laser pulse is investigated within a classical treatment and relativistic quantum mechanics. It is shown that the electric-field area of a unipolar pulse plays a crucial role in the process. Besides, the classical predictions are accurately reproduced when using the Foldy-Wouthuysen spin operator.
Shi Chen, Jing Chen, Gerhard G. Paulus, and HuiPeng Kang
Phys. Rev. A 102, 023103 (2020) - Published 4 August, 2020
Konstantin V. Kazakov and Andrey A. Vigasin
Phys. Rev. A 102, 023104 (2020) - Published 5 August, 2020
K. Yu. Vagin, T. V. Mamontova, and S. A. Uryupin
Phys. Rev. A 102, 023105 (2020) - Published 6 August, 2020
Liang Xu and Feng He
Phys. Rev. A 102, 023106 (2020) - Published 6 August, 2020
D. B. Milošević and W. Becker
Phys. Rev. A 102, 023107 (2020) - Published 10 August, 2020
A. J. Fallon, S. J. Berl, E. R. Moan, and C. A. Sackett
Phys. Rev. A 102, 023108 (2020) - Published 10 August, 2020
Jinlei Liu, Jing Zhao, Yindong Huang, Xiaowei Wang, and Zengxiu Zhao
Phys. Rev. A 102, 023109 (2020) - Published 10 August, 2020
David Mellado-Alcedo, Niurka R. Quintero, and Rosario González-Férez
Phys. Rev. A 102, 023110 (2020) - Published 10 August, 2020
D. Habibović, A. Gazibegović-Busuladžić, M. Busuladžić, A. Čerkić, and D. B. Milošević
Phys. Rev. A 102, 023111 (2020) - Published 11 August, 2020
Van-Hung Hoang and Anh-Thu Le
Phys. Rev. A 102, 023112 (2020) - Published 12 August, 2020
Yi Huang, Qihao Guo, Anda Xiong, Tongcang Li, and Zhang-qi Yin
Phys. Rev. A 102, 023113 (2020) - Published 18 August, 2020
Mikael Eklund, Hannes Hultgren, Igor Kiyan, Hanspeter Helm, and Dag Hanstorp
Phys. Rev. A 102, 023114 (2020) - Published 19 August, 2020
Andreas S. Skeidsvoll, Alice Balbi, and Henrik Koch
Phys. Rev. A 102, 023115 (2020) - Published 20 August, 2020
Tomoya Okino and Katsumi Midorikawa
Phys. Rev. A 102, 023116 (2020) - Published 21 August, 2020
I. A. Ivanov and Kyung Taec Kim
Phys. Rev. A 102, 023117 (2020) - Published 24 August, 2020
Andrei Kamalov, Anna L. Wang, Philip H. Bucksbaum, Daniel J. Haxton, and James P. Cryan
Phys. Rev. A 102, 023118 (2020) - Published 26 August, 2020
A. Hirota, R. Igosawa, N. Kimura, S. Kuma, K. C. Chartkunchand, P. M. Mishra, M. Lindley, T. Yamaguchi, Y. Nakano, and T. Azuma
Phys. Rev. A 102, 023119 (2020) - Published 26 August, 2020
Hikaru Kitamura
Phys. Rev. A 102, 023120 (2020) - Published 31 August, 2020
G. C. Katsimiga, S. I. Mistakidis, T. M. Bersano, M. K. H. Ome, S. M. Mossman, K. Mukherjee, P. Schmelcher, P. Engels, and P. G. Kevrekidis
Phys. Rev. A 102, 023301 (2020) - Published 3 August, 2020
Abdelâali Boudjemâa and Nadia Guebli
Phys. Rev. A 102, 023302 (2020) - Published 5 August, 2020
Bo Zhu, Yongguan Ke, Wenjie Liu, Zheng Zhou, and Honghua Zhong
Phys. Rev. A 102, 023303 (2020) - Published 4 August, 2020
Weizhe Edward Liu, Zhe-Yu Shi, Meera M. Parish, and Jesper Levinsen
Phys. Rev. A 102, 023304 (2020) - Published 5 August, 2020
Maxim Pyzh and Peter Schmelcher
Phys. Rev. A 102, 023305 (2020) - Published 5 August, 2020
Lei Pan, Xueliang Wang, Xiaoling Cui, and Shu Chen
Phys. Rev. A 102, 023306 (2020) - Published 6 August, 2020
Tobias Dornheim
Phys. Rev. A 102, 023307 (2020) - Published 6 August, 2020
Peng He, Jia-Hao Fu, Dan-Wei Zhang, and Shi-Liang Zhu
Phys. Rev. A 102, 023308 (2020) - Published 6 August, 2020
C. E. Berger, K. J. Morrell, and J. E. Drut
Phys. Rev. A 102, 023309 (2020) - Published 6 August, 2020
Keisuke Fujii and Yusuke Nishida
Phys. Rev. A 102, 023310 (2020) - Published 11 August, 2020
A. D. Kerin and A. M. Martin
Phys. Rev. A 102, 023311 (2020) - Published 11 August, 2020
Suman Mondal, Augustine Kshetrimayum, and Tapan Mishra
Phys. Rev. A 102, 023312 (2020) - Published 13 August, 2020
J. R. McKenney, A. Jose, and J. E. Drut
Phys. Rev. A 102, 023313 (2020) - Published 14 August, 2020
Inderpreet Kaur and Sankalpa Ghosh
Phys. Rev. A 102, 023314 (2020) - Published 17 August, 2020
L. Stenzel, A. L. C. Hayward, U. Schollwöck, and F. Heidrich-Meisner
Phys. Rev. A 102, 023315 (2020) - Published 17 August, 2020
The Harper-Hofstadter model for spinful fermions at two-thirds filling is studied using a hybrid-space DMRG approach. Hall conductivity is computed and topological phases, including the appearance of a ferromagnetic ground state between the strongly interacting 1D and 2D models, are identified.
Haruka Otoishi, Shu Nagata, Takumi Yukawa, Kazuya Yamashita, and Toshiya Kinoshita
Phys. Rev. A 102, 023316 (2020) - Published 18 August, 2020
Li Chen, Yunbo Zhang, and Han Pu
Phys. Rev. A 102, 023317 (2020) - Published 18 August, 2020
L. Parisi and S. Giorgini
Phys. Rev. A 102, 023318 (2020) - Published 19 August, 2020
Gary McCormack, Rejish Nath, and Weibin Li
Phys. Rev. A 102, 023319 (2020) - Published 19 August, 2020
Andreas Kruckenhauser, Lukas M. Sieberer, Luigi De Marco, Jun-Ru Li, Kyle Matsuda, William G. Tobias, Giacomo Valtolina, Jun Ye, Ana Maria Rey, Mikhail A. Baranov, and Peter Zoller
Phys. Rev. A 102, 023320 (2020) - Published 19 August, 2020
Araceli Venegas-Gomez, Anton S. Buyskikh, Johannes Schachenmayer, Wolfgang Ketterle, and Andrew J. Daley
Phys. Rev. A 102, 023321 (2020) - Published 20 August, 2020
A. Gallemí, S. M. Roccuzzo, S. Stringari, and A. Recati
Phys. Rev. A 102, 023322 (2020) - Published 21 August, 2020
H. M. Cataldo
Phys. Rev. A 102, 023323 (2020) - Published 24 August, 2020
Jianwen Jie, Q. Guan, S. Zhong, A. Schwettmann, and D. Blume
Phys. Rev. A 102, 023324 (2020) - Published 25 August, 2020
Abdelâali Boudjemâa and Karima Abbas
Phys. Rev. A 102, 023325 (2020) - Published 25 August, 2020
Andrew P. C. Underwood, D. Baillie, P. Blair Blakie, and H. Takeuchi
Phys. Rev. A 102, 023326 (2020) - Published 26 August, 2020
Hao Lyu and Yongping Zhang
Phys. Rev. A 102, 023327 (2020) - Published 26 August, 2020
Tanji Zhou, Zhongcheng Yu, Zhihan Li, Xuzong Chen, and Xiaoji Zhou
Phys. Rev. A 102, 023328 (2020) - Published 26 August, 2020
Michael L. Wall
Phys. Rev. A 102, 023329 (2020) - Published 26 August, 2020
R. A. Kidd, A. Safavi-Naini, and J. F. Corney
Phys. Rev. A 102, 023330 (2020) - Published 27 August, 2020
Eloi Nicolau, Jordi Mompart, Bruno Juliá-Díaz, and Verònica Ahufinger
Phys. Rev. A 102, 023331 (2020) - Published 27 August, 2020
J. Nunkaew, Raheel Ali, and T. F. Gallagher
Phys. Rev. A 102, 023332 (2020) - Published 28 August, 2020
L. Chomaz
Phys. Rev. A 102, 023333 (2020) - Published 28 August, 2020
Maximilien Barbier
Phys. Rev. A 102, 023334 (2020) - Published 31 August, 2020
M. C. Gordillo
Phys. Rev. A 102, 023335 (2020) - Published 31 August, 2020
Bo-Ye Sun and Zheng-Wei Zhou
Phys. Rev. A 102, 023501 (2020) - Published 3 August, 2020
Liyong Cui, Guiqiang Du, and Jack Ng
Phys. Rev. A 102, 023502 (2020) - Published 3 August, 2020
Sumei Huang and Aixi Chen
Phys. Rev. A 102, 023503 (2020) - Published 3 August, 2020
Tae Moon Jeong, Sergei V. Bulanov, Pavel V. Sasorov, Georg Korn, James K. Koga, and Stepan S. Bulanov
Phys. Rev. A 102, 023504 (2020) - Published 3 August, 2020
G. Cáceres-Aravena, L. E. F. Foa Torres, and R. A. Vicencio
Phys. Rev. A 102, 023505 (2020) - Published 4 August, 2020
Qiying Song, Qinggang Lin, Honggeng Wang, Haizhe Zhong, Yi Cai, Shuiqin Zheng, Zhenkuan Chen, Xiaowei Lu, Xuanke Zeng, Huangcheng Shangguan, Hongyu Wang, and Shixiang Xu
Phys. Rev. A 102, 023506 (2020) - Published 4 August, 2020
Yuntao Bai, Gautam Venugopalan, Kevin Kuns, Christopher Wipf, Aaron Markowitz, Andrew R. Wade, Yanbei Chen, and Rana X. Adhikari
Phys. Rev. A 102, 023507 (2020) - Published 5 August, 2020
Vladimir L. Kalashnikov and Stefan Wabnitz
Phys. Rev. A 102, 023508 (2020) - Published 6 August, 2020
Anita Devi and Arijit K. De
Phys. Rev. A 102, 023509 (2020) - Published 6 August, 2020
A. Yu. Zyuzin
Phys. Rev. A 102, 023510 (2020) - Published 6 August, 2020
A. Padrón-Godínez, B. Jaramillo-Ávila, and B. M. Rodríguez-Lara
Phys. Rev. A 102, 023511 (2020) - Published 7 August, 2020
Zhucheng Zhang, Yi-Ping Wang, and Xiaoguang Wang
Phys. Rev. A 102, 023512 (2020) - Published 7 August, 2020
Alexandr Karpenko and Sergey P. Vyatchanin
Phys. Rev. A 102, 023513 (2020) - Published 7 August, 2020
R. Ali, F. A. Pinheiro, R. S. Dutra, and P. A. Maia Neto
Phys. Rev. A 102, 023514 (2020) - Published 10 August, 2020
Nikolay V. Vitanov
Phys. Rev. A 102, 023515 (2020) - Published 10 August, 2020
V. V. Kotlyar, A. A. Kovalev, A. G. Nalimov, and A. P. Porfirev
Phys. Rev. A 102, 023516 (2020) - Published 12 August, 2020
Aleksandr K. Tusnin, Alexey M. Tikan, and Tobias J. Kippenberg
Phys. Rev. A 102, 023518 (2020) - Published 13 August, 2020
Zeyun Shi, Weibin Li, and Guoxiang Huang
Phys. Rev. A 102, 023519 (2020) - Published 17 August, 2020
Lavi K. Upreti and Pierre Delplace
Phys. Rev. A 102, 023520 (2020) - Published 18 August, 2020
Nicolas Poulvellarie, Utsav Dave, Koen Alexander, Charles Ciret, Maximilien Billet, Carlos Mas Arabi, Fabrice Raineri, Sylvain Combrié, Alfredo De Rossi, Gunther Roelkens, Simon-Pierre Gorza, Bart Kuyken, and François Leo
Phys. Rev. A 102, 023521 (2020) - Published 19 August, 2020
Bárbara Abigail Ferreira Ribeiro, Rayssa Bruzaca de Andrade, Marcelo Martinelli, and Breno Marques
Phys. Rev. A 102, 023522 (2020) - Published 21 August, 2020
William R. Rowe, Dmitry V. Skryabin, and Andrey V. Gorbach
Phys. Rev. A 102, 023523 (2020) - Published 21 August, 2020
Sheng Li, Zheng-Yuan Xue, Ming Gong, and Yong Hu
Phys. Rev. A 102, 023524 (2020) - Published 21 August, 2020
Sohitri Ghosh, Daniel Carney, Peter Shawhan, and Jacob M. Taylor
Phys. Rev. A 102, 023525 (2020) - Published 21 August, 2020
N. Carlon Zambon, S. R. K. Rodriguez, A. Lemaître, A. Harouri, L. Le Gratiet, I. Sagnes, P. St-Jean, S. Ravets, A. Amo, and J. Bloch
Phys. Rev. A 102, 023526 (2020) - Published 21 August, 2020
A. A. Balakin, A. G. Litvak, and S. A. Skobelev
Phys. Rev. A 102, 023527 (2020) - Published 24 August, 2020
Huanyang Chen, Sicen Tao, Jakub Bělín, Johannes Courtial, and Rong-Xin Miao
Phys. Rev. A 102, 023528 (2020) - Published 24 August, 2020
Shibin Qi, Ruizhi Zhao, Ronger Lu, Jing Chen, Xuhao Hong, Chao Zhang, Yi-Qiang Qin, and Yong-Yuan Zhu
Phys. Rev. A 102, 023529 (2020) - Published 25 August, 2020
Ke Hu and Longqing Yi
Phys. Rev. A 102, 023530 (2020) - Published 26 August, 2020
An'an Wu, Yoshito Y. Tanaka, Ryoma Fukuhara, and Tsutomu Shimura
Phys. Rev. A 102, 023531 (2020) - Published 27 August, 2020
M. G. Stojanović, M. Stojanović Krasić, A. Maluckov, M. Johansson, I. A. Salinas, R. A. Vicencio, and M. Stepić
Phys. Rev. A 102, 023532 (2020) - Published 28 August, 2020
Alexandr B. Plachenov, Pedro Chamorro-Posada, and Aleksei P. Kiselev
Phys. Rev. A 102, 023533 (2020) - Published 28 August, 2020
Zhaoxue Li, Linguo Xie, Qian Ti, Pi Duan, Zhiyou Zhang, and Changliang Ren
Phys. Rev. A 102, 023701 (2020) - Published 3 August, 2020
Juan Román-Roche, Eduardo Sánchez-Burillo, and David Zueco
Phys. Rev. A 102, 023702 (2020) - Published 3 August, 2020
D. S. Shapiro, W. V. Pogosov, and Yu. E. Lozovik
Phys. Rev. A 102, 023703 (2020) - Published 7 August, 2020
Palak Dugar, Michael Scheibner, and Chih-Chun Chien
Phys. Rev. A 102, 023704 (2020) - Published 10 August, 2020
Colin Vendromin and Marc M. Dignam
Phys. Rev. A 102, 023705 (2020) - Published 11 August, 2020
K. S. Kravtsov, A. K. Zhutov, and S. P. Kulik
Phys. Rev. A 102, 023706 (2020) - Published 12 August, 2020
Deng-Gao Lai, Xin Wang, Wei Qin, Bang-Pin Hou, Franco Nori, and Jie-Qiao Liao
Phys. Rev. A 102, 023707 (2020) - Published 12 August, 2020
A. W. Chin, B. Le Dé, E. Mangaud, O. Atabek, and M. Desouter-Lecomte
Phys. Rev. A 102, 023708 (2020) - Published 13 August, 2020
N. Fabre, J. Belhassen, A. Minneci, S. Felicetti, A. Keller, M. I. Amanti, F. Baboux, T. Coudreau, S. Ducci, and P. Milman
Phys. Rev. A 102, 023710 (2020) - Published 14 August, 2020
Andrei Gaidash, Anton Kozubov, and George Miroshnichenko
Phys. Rev. A 102, 023711 (2020) - Published 18 August, 2020
M. Engelkemeier, L. Lorz, Syamsundar De, B. Brecht, I. Dhand, M. B. Plenio, C. Silberhorn, and J. Sperling
Phys. Rev. A 102, 023712 (2020) - Published 20 August, 2020
G. Mouloudakis and P. Lambropoulos
Phys. Rev. A 102, 023713 (2020) - Published 20 August, 2020
Yiying Yan, Lipeng Chen, JunYan Luo, and Yang Zhao
Phys. Rev. A 102, 023714 (2020) - Published 21 August, 2020
Kostas Blekos, Dionisis Stefanatos, and Emmanuel Paspalakis
Phys. Rev. A 102, 023715 (2020) - Published 24 August, 2020
Ming Zhu, Yan-Cheng Wei, and Chen-Lung Hung
Phys. Rev. A 102, 023716 (2020) - Published 24 August, 2020
Optical detection of molecules can often be challenging due to the lack of a closed cycling transition. In this paper, the authors explore the use of high- cavities and microresonators to increase the interaction time of light with a single molecule. Their technique could potentially also be applied for atoms or other quantum emitters.
Alexander Holm Kiilerich and Klaus Mølmer
Phys. Rev. A 102, 023717 (2020) - Published 26 August, 2020
Luigi Garziano, Alessio Settineri, Omar Di Stefano, Salvatore Savasta, and Franco Nori
Phys. Rev. A 102, 023718 (2020) - Published 26 August, 2020
S. U. Shringarpure and J. D. Franson
Phys. Rev. A 102, 023719 (2020) - Published 31 August, 2020
B. Dubetsky
Phys. Rev. A 102, 027301 (2020) - Published 20 August, 2020
Christian Ufrecht and Enno Giese
Phys. Rev. A 102, 027302 (2020) - Published 20 August, 2020
Thomas C. Fraser and Elie Wolfe
Phys. Rev. A 102, 029901 (2020) - Published 3 August, 2020
G. Hétet, L. Slodička, A. Glätzle, M. Hennrich, and R. Blatt
Phys. Rev. A 102, 029902 (2020) - Published 31 August, 2020