Experimental detection of qubit-environment entanglement without accessing the environment
Xiang Zhan, Dengke Qu, Kunkun Wang, Lei Xiao, and Peng Xue
Phys. Rev. A 104, L020201 (2021) - Published 9 August, 2021
Haruya Kokubo, Kenichi Kasamatsu, and Hiromitsu Takeuchi
Phys. Rev. A 104, 023312 (2021) - Published 13 August, 2021
Animations illustrate various behaviors of the interface between two oppositely moving superfluids.
John B. DeBrota, Christopher A. Fuchs, Jacques L. Pienaar, and Blake C. Stacey
Phys. Rev. A 104, 022207 (2021) - Published 13 August, 2021
The authors use Bayesian probability theory to extend the “QBism” interpretation of quantum mechanics by showing how one may derive Born’s rule from a set of assumptions where the state and measurement are described relative to a “reference measurement.” The result gives insight into Born’s rule, even if one does not support the subjective interpretation of quantum mechanics underlying QBism.
N. Fabre and S. Felicetti
Phys. Rev. A 104, 022208 (2021) - Published 16 August, 2021
Hong-Ou-Mandel (HOM) interferometers can detect time delays down to attoseconds using two-photon destructive interference. Here, the authors present a theoretical extension of HOM interferometry with various spectral distributions of the probe states, and find that periodic continuous-variable grid states can be engineered with currently-available technology that significantly outperform the resolution of time-frequency Gaussian states.
Richard A. Brewster, Gerald Baumgartner, and Yanne K. Chembo
Phys. Rev. A 104, 022411 (2021) - Published 11 August, 2021
The formation of multiple photon pairs in spontaneous parametric down-conversion leads to a degradation of polarization entanglement quality. The authors characterize this quality and perform all-quantum calculations that agree with known results for two different Bell-state-generation methods.
K. Goswami, C. Giarmatzi, C. Monterola, S. Shrapnel, J. Romero, and F. Costa
Phys. Rev. A 104, 022432 (2021) - Published 26 August, 2021
Most noise-characterization methods for quantum technologies assume Markovianity, meaning that the environment and the system have no memory of their interactions with each other, because it is inefficient and computationally demanding to take temporal correlations into account. Here, the authors propose a more efficient machine learning method for estimating non-Markovian noise and implement it in a proof-of-principle quantum optics experiment.
Dmitry A. Zezyulin, Yaroslav V. Kartashov, and Vladimir V. Konotop
Phys. Rev. A 104, 023504 (2021) - Published 4 August, 2021
The authors theoretically and numerically demonstrate the existence of two-dimensional solitons persisting over long propagation distances close to an exceptional point in a two-dimensional nonlinear waveguide with distributed gain and losses, a non-Hermitian system. The long lifetime of such metastable solitons makes them potentially feasible for experimental observation.
Nicolas Staudenmaier, Simon Schmitt, Liam P. McGuinness, and Fedor Jelezko
Phys. Rev. A 104, L020602 (2021) - Published 30 August, 2021
The authors present a measurement protocol for using a single spin associated with a nitrogen-vacancy center in diamond as a heterodyne detector for near-resonant fields which enables signal reconstruction with a nanoscale spatial resolution. The technique has potential applications in electron-spin detection and nanocircuitry in quantum technologies.
Xiang Zhan, Dengke Qu, Kunkun Wang, Lei Xiao, and Peng Xue
Phys. Rev. A 104, L020201 (2021) - Published 9 August, 2021
Kohdai Kuroiwa and Hayata Yamasaki
Phys. Rev. A 104, L020401 (2021) - Published 2 August, 2021
Andrey Kardashin, Anastasiia Pervishko, Jacob Biamonte, and Dmitry Yudin
Phys. Rev. A 104, L020402 (2021) - Published 12 August, 2021
Chong Chen, Ping Wang, and Ren-Bao Liu
Phys. Rev. A 104, L020601 (2021) - Published 2 August, 2021
Nicolas Staudenmaier, Simon Schmitt, Liam P. McGuinness, and Fedor Jelezko
Phys. Rev. A 104, L020602 (2021) - Published 30 August, 2021
The authors present a measurement protocol for using a single spin associated with a nitrogen-vacancy center in diamond as a heterodyne detector for near-resonant fields which enables signal reconstruction with a nanoscale spatial resolution. The technique has potential applications in electron-spin detection and nanocircuitry in quantum technologies.
S. Nishimura et al. (MuSEUM Collaboration)
Phys. Rev. A 104, L020801 (2021) - Published 9 August, 2021
Robert A. Müller, Vladimir A. Yerokhin, Anton N. Artemyev, and Andrey Surzhykov
Phys. Rev. A 104, L020802 (2021) - Published 12 August, 2021
Hao Liang, Sven Grundmann, Yong-Kang Fang, Lei Geng, Qihuang Gong, and Liang-You Peng
Phys. Rev. A 104, L021101 (2021) - Published 18 August, 2021
Lei Geng, Hao Liang, K. Krajewska, Liang-You Peng, and Qihuang Gong
Phys. Rev. A 104, L021102 (2021) - Published 25 August, 2021
Anatoli S. Kheifets
Phys. Rev. A 104, L021103 (2021) - Published 27 August, 2021
Simon Brennecke and Manfred Lein
Phys. Rev. A 104, L021104 (2021) - Published 27 August, 2021
L. Villa, S. J. Thomson, and L. Sanchez-Palencia
Phys. Rev. A 104, L021301 (2021) - Published 27 August, 2021
Bifeng Lei, Daniel Seipt, Mingyuan Shi, Bin Liu, Jingwei Wang, Matt Zepf, and Sergey G. Rykovanov
Phys. Rev. A 104, L021501 (2021) - Published 20 August, 2021
Leonardo Santos and Barbara Amaral
Phys. Rev. A 104, 022201 (2021) - Published 4 August, 2021
Piotr Szańkowski
Phys. Rev. A 104, 022202 (2021) - Published 5 August, 2021
Iwo Bialynicki-Birula and Zofia Bialynicka-Birula
Phys. Rev. A 104, 022203 (2021) - Published 6 August, 2021
Maryam Khanahmadi and Klaus Mølmer
Phys. Rev. A 104, 022204 (2021) - Published 9 August, 2021
Donny Dwiputra and Freddy P. Zen
Phys. Rev. A 104, 022205 (2021) - Published 12 August, 2021
Arindam Mitra
Phys. Rev. A 104, 022206 (2021) - Published 13 August, 2021
John B. DeBrota, Christopher A. Fuchs, Jacques L. Pienaar, and Blake C. Stacey
Phys. Rev. A 104, 022207 (2021) - Published 13 August, 2021
The authors use Bayesian probability theory to extend the “QBism” interpretation of quantum mechanics by showing how one may derive Born’s rule from a set of assumptions where the state and measurement are described relative to a “reference measurement.” The result gives insight into Born’s rule, even if one does not support the subjective interpretation of quantum mechanics underlying QBism.
N. Fabre and S. Felicetti
Phys. Rev. A 104, 022208 (2021) - Published 16 August, 2021
Hong-Ou-Mandel (HOM) interferometers can detect time delays down to attoseconds using two-photon destructive interference. Here, the authors present a theoretical extension of HOM interferometry with various spectral distributions of the probe states, and find that periodic continuous-variable grid states can be engineered with currently-available technology that significantly outperform the resolution of time-frequency Gaussian states.
Suo Tang
Phys. Rev. A 104, 022209 (2021) - Published 18 August, 2021
Qi Guo, Wen-Jie Zhang, Gang Li, Tiancai Zhang, Hong-Fu Wang, and Shou Zhang
Phys. Rev. A 104, 022210 (2021) - Published 20 August, 2021
Xingrui Song, Mahdi Naghiloo, and Kater Murch
Phys. Rev. A 104, 022211 (2021) - Published 20 August, 2021
A. K. Pan
Phys. Rev. A 104, 022212 (2021) - Published 23 August, 2021
Hao-Qing Zhang, Ming-Zhong Ai, Jin-Ming Cui, Yong-Jian Han, Chuan-Feng Li, and Guang-Can Guo
Phys. Rev. A 104, 022213 (2021) - Published 23 August, 2021
D. F. Ramírez Jiménez and N. G. Kelkar
Phys. Rev. A 104, 022214 (2021) - Published 24 August, 2021
Federico Roccati
Phys. Rev. A 104, 022215 (2021) - Published 24 August, 2021
S. Marsh and J. B. Wang
Phys. Rev. A 104, 022216 (2021) - Published 24 August, 2021
Anandamay Das Bhowmik, Preeti Parashar, and Manik Banik
Phys. Rev. A 104, 022217 (2021) - Published 25 August, 2021
Kaustubh S. Agarwal and Yogesh N. Joglekar
Phys. Rev. A 104, 022218 (2021) - Published 26 August, 2021
Adrián Juan-Delgado and Aurélia Chenu
Phys. Rev. A 104, 022219 (2021) - Published 26 August, 2021
Kevin Liang, S. A. Wadood, and A. N. Vamivakas
Phys. Rev. A 104, 022220 (2021) - Published 27 August, 2021
Eneet Kaur, Siddhartha Das, Mark M. Wilde, and Andreas Winter
Phys. Rev. A 104, 022401 (2021) - Published 2 August, 2021
Ben-yuan Zhou, Yang Liu, Huatang Tan, and Gao-xiang Li
Phys. Rev. A 104, 022402 (2021) - Published 2 August, 2021
Enrico Fontana, Nathan Fitzpatrick, David Muñoz Ramo, Ross Duncan, and Ivan Rungger
Phys. Rev. A 104, 022403 (2021) - Published 4 August, 2021
Ao-Lin Guo, Tao Tu, Guang-Can Guo, and Chuan-Feng Li
Phys. Rev. A 104, 022404 (2021) - Published 4 August, 2021
Zheng-Hang Sun, Jian Cui, and Heng Fan
Phys. Rev. A 104, 022405 (2021) - Published 5 August, 2021
Sebastian Philipp Neumann, Thomas Scheidl, Mirela Selimovic, Matej Pivoluska, Bo Liu, Martin Bohmann, and Rupert Ursin
Phys. Rev. A 104, 022406 (2021) - Published 5 August, 2021
Changhun Oh, Kyungjoo Noh, Bill Fefferman, and Liang Jiang
Phys. Rev. A 104, 022407 (2021) - Published 5 August, 2021
Lucas J. Mensen, Ben Q. Baragiola, and Nicolas C. Menicucci
Phys. Rev. A 104, 022408 (2021) - Published 6 August, 2021
Shashank Gupta, Debarshi Das, and A. S. Majumdar
Phys. Rev. A 104, 022409 (2021) - Published 9 August, 2021
Aqil Sajjad, Michael R. Grace, Quntao Zhuang, and Saikat Guha
Phys. Rev. A 104, 022410 (2021) - Published 10 August, 2021
Richard A. Brewster, Gerald Baumgartner, and Yanne K. Chembo
Phys. Rev. A 104, 022411 (2021) - Published 11 August, 2021
The formation of multiple photon pairs in spontaneous parametric down-conversion leads to a degradation of polarization entanglement quality. The authors characterize this quality and perform all-quantum calculations that agree with known results for two different Bell-state-generation methods.
Kenneth Robbins and Peter J. Love
Phys. Rev. A 104, 022412 (2021) - Published 16 August, 2021
Thiago Mureebe Carrijo, Wesley Bueno Cardoso, and Ardiley Torres Avelar
Phys. Rev. A 104, 022413 (2021) - Published 16 August, 2021
Thomas Barthel and Qiang Miao
Phys. Rev. A 104, 022414 (2021) - Published 16 August, 2021
Lu-Feng Qiao, Zhi-Qiang Jiao, Xiao-Yun Xu, Jun Gao, Zhe-Yong Zhang, Ruo-Jing Ren, Wen-Hao Zhou, Xiao-Wei Wang, and Xian-Min Jin
Phys. Rev. A 104, 022415 (2021) - Published 17 August, 2021
Sonia Mazzucchi, Nicolò Leone, Stefano Azzini, Lorenzo Pavesi, and Valter Moretti
Phys. Rev. A 104, 022416 (2021) - Published 17 August, 2021
Jonas Haferkamp and Nicholas Hunter-Jones
Phys. Rev. A 104, 022417 (2021) - Published 17 August, 2021
Hai-Ling Liu, Yu-Sen Wu, Lin-Chun Wan, Shi-Jie Pan, Su-Juan Qin, Fei Gao, and Qiao-Yan Wen
Phys. Rev. A 104, 022418 (2021) - Published 18 August, 2021
Yao Wang, Yong-Heng Lu, Jun Gao, Lian-Ao Wu, and Xian-Min Jin
Phys. Rev. A 104, 022419 (2021) - Published 18 August, 2021
Yi Hong Teoh, Manas Sajjan, Zewen Sun, Fereshteh Rajabi, and Rajibul Islam
Phys. Rev. A 104, 022420 (2021) - Published 19 August, 2021
Akihito Soeda, Atsushi Shimbo, and Mio Murao
Phys. Rev. A 104, 022422 (2021) - Published 20 August, 2021
Shihai Sun
Phys. Rev. A 104, 022423 (2021) - Published 20 August, 2021
Vinod N. Rao and R. Srikanth
Phys. Rev. A 104, 022424 (2021) - Published 20 August, 2021
János A. Bergou, Dov Fields, Mark Hillery, Siddhartha Santra, and Vladimir S. Malinovsky
Phys. Rev. A 104, 022425 (2021) - Published 23 August, 2021
Adam Burchardt, Jakub Czartowski, and Karol Życzkowski
Phys. Rev. A 104, 022426 (2021) - Published 23 August, 2021
Anaelle Hertz, Matthieu Arnhem, Ali Asadian, and Nicolas J. Cerf
Phys. Rev. A 104, 022427 (2021) - Published 23 August, 2021
Sathyawageeswar Subramanian and Min-Hsiu Hsieh
Phys. Rev. A 104, 022428 (2021) - Published 24 August, 2021
Shilin Huang and Kenneth R. Brown
Phys. Rev. A 104, 022429 (2021) - Published 25 August, 2021
Kazuya Kaneko, Koichi Miyamoto, Naoyuki Takeda, and Kazuyoshi Yoshino
Phys. Rev. A 104, 022430 (2021) - Published 25 August, 2021
Guglielmo Mazzola
Phys. Rev. A 104, 022431 (2021) - Published 25 August, 2021
K. Goswami, C. Giarmatzi, C. Monterola, S. Shrapnel, J. Romero, and F. Costa
Phys. Rev. A 104, 022432 (2021) - Published 26 August, 2021
Most noise-characterization methods for quantum technologies assume Markovianity, meaning that the environment and the system have no memory of their interactions with each other, because it is inefficient and computationally demanding to take temporal correlations into account. Here, the authors propose a more efficient machine learning method for estimating non-Markovian noise and implement it in a proof-of-principle quantum optics experiment.
Jiru Liu, Wenchao Ge, and M. Suhail Zubairy
Phys. Rev. A 104, 022433 (2021) - Published 26 August, 2021
Baihong Li and Holger F. Hofmann
Phys. Rev. A 104, 022434 (2021) - Published 27 August, 2021
Andri Pradana and Lock Yue Chew
Phys. Rev. A 104, 022435 (2021) - Published 27 August, 2021
Nilanjana Chanda and Rangeet Bhattacharyya
Phys. Rev. A 104, 022436 (2021) - Published 30 August, 2021
Hari krishnan S V, Ashish Ranjan, and Manik Banik
Phys. Rev. A 104, 022437 (2021) - Published 30 August, 2021
Aritra Laha, Agrim Aggarwal, and Santosh Kumar
Phys. Rev. A 104, 022438 (2021) - Published 31 August, 2021
Chaohua Wu, Xin Guan, Jingtao Fan, Gang Chen, and Suotang Jia
Phys. Rev. A 104, 022601 (2021) - Published 3 August, 2021
Wei Sun, Keye Zhang, Pierre Meystre, and Weiping Zhang
Phys. Rev. A 104, 022602 (2021) - Published 9 August, 2021
Anton Kozubov, Andrei Gaidash, and George Miroshnichenko
Phys. Rev. A 104, 022603 (2021) - Published 9 August, 2021
Allan D. C. Tosta, Ernesto F. Galvão, and Daniel J. Brod
Phys. Rev. A 104, 022604 (2021) - Published 9 August, 2021
Marcin Jarzyna
Phys. Rev. A 104, 022605 (2021) - Published 13 August, 2021
Tao Wang, Peng Huang, Hongxin Ma, Shiyu Wang, and Guihua Zeng
Phys. Rev. A 104, 022606 (2021) - Published 16 August, 2021
Yuki Bando and Hidetoshi Nishimori
Phys. Rev. A 104, 022607 (2021) - Published 16 August, 2021
Quntao Zhuang and Bingzhi Zhang
Phys. Rev. A 104, 022608 (2021) - Published 16 August, 2021
Jin-Sung Kim, Lev S. Bishop, Antonio D. Córcoles, Seth Merkel, John A. Smolin, and Sarah Sheldon
Phys. Rev. A 104, 022609 (2021) - Published 17 August, 2021
Cheng-Qian Xu and D. L. Zhou
Phys. Rev. A 104, 022610 (2021) - Published 20 August, 2021
Davide Rattacaso, Gianluca Passarelli, Antonio Mezzacapo, Procolo Lucignano, and Rosario Fazio
Phys. Rev. A 104, 022611 (2021) - Published 23 August, 2021
Wei Wu and Chuan Shi
Phys. Rev. A 104, 022612 (2021) - Published 23 August, 2021
Yunkai Wang, Yujie Zhang, and Virginia O. Lorenz
Phys. Rev. A 104, 022613 (2021) - Published 23 August, 2021
Jhen-Dong Lin, Wei-Yu Lin, Huan-Yu Ku, Neill Lambert, Yueh-Nan Chen, and Franco Nori
Phys. Rev. A 104, 022614 (2021) - Published 30 August, 2021
Zhiyue Zuo, Yijun Wang, Qin Liao, and Ying Guo
Phys. Rev. A 104, 022615 (2021) - Published 31 August, 2021
Muhammad Erew, Moshe Goldstein, and Haim Suchowski
Phys. Rev. A 104, 022616 (2021) - Published 31 August, 2021
Li Guang Jiao, Yu Ying He, Aihua Liu, Yong Zhi Zhang, and Yew Kam Ho
Phys. Rev. A 104, 022801 (2021) - Published 2 August, 2021
Zhao Wang, Bin Guo, Rui Cheng, Feibiao Xue, Yanhong Chen, Yu Lei, Yuyu Wang, Zexian Zhou, Jie Yang, Maogen Su, and Chenzhong Dong
Phys. Rev. A 104, 022802 (2021) - Published 3 August, 2021
Tim Gould, Leeor Kronik, and Stefano Pittalis
Phys. Rev. A 104, 022803 (2021) - Published 4 August, 2021
Mohammad Reza Jangrouei, Katarzyna Pernal, and Oleg V. Gritsenko
Phys. Rev. A 104, 022804 (2021) - Published 4 August, 2021
Jesse S. Schelfhout and John J. McFerran
Phys. Rev. A 104, 022806 (2021) - Published 10 August, 2021
Pei-Gen Yan, Li-Yan Tang, Zong-Chao Yan, and James F. Babb
Phys. Rev. A 104, 022807 (2021) - Published 10 August, 2021
B. P. Marinković, S. D. Tošić, D. Šević, R. P. McEachran, F. Blanco, G. García, and M. J. Brunger
Phys. Rev. A 104, 022808 (2021) - Published 10 August, 2021
Zhihao Yang, Junwen Gao, Wenmin Yan, Ke Yao, Jiamin Yang, Zhongwen Wu, and Zhimin Hu
Phys. Rev. A 104, 022809 (2021) - Published 10 August, 2021
Soumya Chatterjee, Prashant Sharma, Shashank Singh, Mumtaz Oswal, Sunil Kumar, C. C. Montanari, D. Mitra, and T. Nandi
Phys. Rev. A 104, 022810 (2021) - Published 10 August, 2021
Baihui Ren, Zihan Xia, Yu Zhang, Long Wei, Wandong Yu, Jie Han, Bo Wang, Yaming Zou, Li Chen, and Baoren Wei
Phys. Rev. A 104, 022811 (2021) - Published 12 August, 2021
Andrey K. Belyaev and Yaroslav V. Voronov
Phys. Rev. A 104, 022812 (2021) - Published 13 August, 2021
Harry Ramanantoanina, Anastasia Borschevsky, Michael Block, and Mustapha Laatiaoui
Phys. Rev. A 104, 022813 (2021) - Published 13 August, 2021
V. A. Yerokhin, C. H. Keitel, and Z. Harman
Phys. Rev. A 104, 022814 (2021) - Published 13 August, 2021
Federico Zahariev, Mark S. Gordon, and Mel Levy
Phys. Rev. A 104, 022815 (2021) - Published 16 August, 2021
Ajay Kumar Arora, Vardaan Sahgal, Anand Bharadvaja, and Kasturi Lal Baluja
Phys. Rev. A 104, 022816 (2021) - Published 19 August, 2021
Sonia M. Poullain, Yuki Kobayashi, Kristina F. Chang, and Stephen R. Leone
Phys. Rev. A 104, 022817 (2021) - Published 20 August, 2021
Axel Molle, Alain Dubois, Jimena D. Gorfinkiel, Lorenz S. Cederbaum, and Nicolas Sisourat
Phys. Rev. A 104, 022818 (2021) - Published 20 August, 2021
Dario Bressanini
Phys. Rev. A 104, 022819 (2021) - Published 23 August, 2021
P. P. Abrantes, V. Pessanha, Reinaldo de Melo e Souza, and C. Farina
Phys. Rev. A 104, 022820 (2021) - Published 23 August, 2021
Anna V. Maiorova, Anton A. Peshkov, and Andrey Surzhykov
Phys. Rev. A 104, 022821 (2021) - Published 25 August, 2021
Lin Zhou, Chuan He, Si-Tong Yan, Xi Chen, Dong-Feng Gao, Wei-Tao Duan, Yu-Hang Ji, Run-Dong Xu, Biao Tang, Chao Zhou, Sachin Barthwal, Qi Wang, Zhuo Hou, Zong-Yuan Xiong, Yuan-Zhong Zhang, Min Liu, Wei-Tou Ni, Jin Wang, and Ming-Sheng Zhan
Phys. Rev. A 104, 022822 (2021) - Published 26 August, 2021
B. M. Roberts and J. S. M. Ginges
Phys. Rev. A 104, 022823 (2021) - Published 27 August, 2021
Mariusz Puchalski, Jacek Komasa, and Krzysztof Pachucki
Phys. Rev. A 104, 022824 (2021) - Published 31 August, 2021
Dmitry V. Karlovets, Valeriy G. Serbo, and Andrey Surzhykov
Phys. Rev. A 104, 023101 (2021) - Published 5 August, 2021
Mizuho Fushitani, Yoshitaka Kawabe, Hikaru Fujise, Makoto Yamada, Hiroka Hasegawa, Shigeki Owada, Tadashi Togashi, Kyo Nakajima, Makina Yabashi, Akitaka Matsuda, Yasumasa Hikosaka, and Akiyoshi Hishikawa
Phys. Rev. A 104, 023102 (2021) - Published 6 August, 2021
Christian Heide, Tobias Boolakee, Takuya Higuchi, and Peter Hommelhoff
Phys. Rev. A 104, 023103 (2021) - Published 13 August, 2021
J. Wang, X. B. Li, L. F. Gan, C. T. Zhou, S. P. Zhu, X. T. He, and B. Qiao
Phys. Rev. A 104, 023104 (2021) - Published 17 August, 2021
Bowen Song, Yanhua Wang, and Nan Zhao
Phys. Rev. A 104, 023105 (2021) - Published 17 August, 2021
Christian Zimmer, Pauline Yzombard, Antoine Camper, and Daniel Comparat
Phys. Rev. A 104, 023106 (2021) - Published 18 August, 2021
Youyuan Zhang, Erik Lötstedt, Toshiaki Ando, Atsushi Iwasaki, Huailiang Xu, and Kaoru Yamanouchi
Phys. Rev. A 104, 023107 (2021) - Published 19 August, 2021
Chuan Cheng, Zachary L. Streeter, Andrew J. Howard, Michael Spanner, Robert R. Lucchese, C. William McCurdy, Thomas Weinacht, Philip H. Bucksbaum, and Ruaridh Forbes
Phys. Rev. A 104, 023108 (2021) - Published 23 August, 2021
Yuan Wang and Simone De Liberato
Phys. Rev. A 104, 023109 (2021) - Published 24 August, 2021
Tor Kjellsson Lindblom, Oleg I. Tolstikhin, and Toru Morishita
Phys. Rev. A 104, 023110 (2021) - Published 25 August, 2021
Dmitry A. Telnov and Shih-I Chu
Phys. Rev. A 104, 023111 (2021) - Published 26 August, 2021
Yao-Li Liu, Shih-Chi Kao, Yi-Yong Ou Yang, Zhong-Ming Zhang, Jyhpyng Wang, and Hsu-hsin Chu
Phys. Rev. A 104, 023112 (2021) - Published 26 August, 2021
Hui Jiang and Feng He
Phys. Rev. A 104, 023113 (2021) - Published 27 August, 2021
Sen Qiao, Liang Li, Xiaosong Zhu, Pengfei Lan, and Peixiang Lu
Phys. Rev. A 104, 023114 (2021) - Published 30 August, 2021
Michael Obermeyer, Ludger Inhester, and Robin Santra
Phys. Rev. A 104, 023115 (2021) - Published 31 August, 2021
Federico Carlini and Sandro Stringari
Phys. Rev. A 104, 023301 (2021) - Published 2 August, 2021
Aleksandr Chatrchyan, Kevin T. Geier, Markus K. Oberthaler, Jürgen Berges, and Philipp Hauke
Phys. Rev. A 104, 023302 (2021) - Published 3 August, 2021
Xu-Yang Hou, Hao Guo, and Chih-Chun Chien
Phys. Rev. A 104, 023303 (2021) - Published 4 August, 2021
Yi Zheng and Shuo Yang
Phys. Rev. A 104, 023304 (2021) - Published 4 August, 2021
Wenjie Liu, Bo Zhu, Li Zhang, Yongguan Ke, and Chaohong Lee
Phys. Rev. A 104, 023305 (2021) - Published 4 August, 2021
Daniel Odell, Arnoldas Deltuva, and Lucas Platter
Phys. Rev. A 104, 023306 (2021) - Published 4 August, 2021
Yanting Cheng and Zhe-Yu Shi
Phys. Rev. A 104, 023307 (2021) - Published 5 August, 2021
Seth T. Rittenhouse, P. Giannakeas, and Nirav P. Mehta
Phys. Rev. A 104, 023308 (2021) - Published 6 August, 2021
Douglas F. C. A. Silva, Massimo Ostilli, and Carlo Presilla
Phys. Rev. A 104, 023309 (2021) - Published 11 August, 2021
Nadia Guebli and Abdelâali Boudjemâa
Phys. Rev. A 104, 023310 (2021) - Published 11 August, 2021
Guan-Qiang Li, Xi-Wang Luo, Junpeng Hou, and Chuanwei Zhang
Phys. Rev. A 104, 023311 (2021) - Published 12 August, 2021
Haruya Kokubo, Kenichi Kasamatsu, and Hiromitsu Takeuchi
Phys. Rev. A 104, 023312 (2021) - Published 13 August, 2021
Animations illustrate various behaviors of the interface between two oppositely moving superfluids.
Jiaxun Hou and Thomas Schäfer
Phys. Rev. A 104, 023313 (2021) - Published 13 August, 2021
Wenlong Wang, Theodore Kolokolnikov, D. J. Frantzeskakis, R. Carretero-González, and P. G. Kevrekidis
Phys. Rev. A 104, 023314 (2021) - Published 13 August, 2021
Artur Niezgoda, Jan Chwedeńczuk, Tomasz Wasak, and Francesco Piazza
Phys. Rev. A 104, 023315 (2021) - Published 19 August, 2021
Abhik Kumar Saha and Romain Dubessy
Phys. Rev. A 104, 023316 (2021) - Published 19 August, 2021
Felipe Isaule, Ivan Morera, Pietro Massignan, and Bruno Juliá-Díaz
Phys. Rev. A 104, 023317 (2021) - Published 19 August, 2021
J. Smits, H. T. C. Stoof, and P. van der Straten
Phys. Rev. A 104, 023318 (2021) - Published 20 August, 2021
Hiroyuki Tajima, Shoichiro Tsutsui, Takahiro M. Doi, and Kei Iida
Phys. Rev. A 104, 023319 (2021) - Published 23 August, 2021
Lijun Yang
Phys. Rev. A 104, 023320 (2021) - Published 24 August, 2021
P. M. A. Mestrom, J.-L. Li, V. E. Colussi, T. Secker, and S. J. J. M. F. Kokkelmans
Phys. Rev. A 104, 023321 (2021) - Published 24 August, 2021
T. Ichmoukhamedov and J. Tempere
Phys. Rev. A 104, 023322 (2021) - Published 25 August, 2021
L. Villa, S. J. Thomson, and L. Sanchez-Palencia
Phys. Rev. A 104, 023323 (2021) - Published 27 August, 2021
Peng Xu and Wenxian Zhang
Phys. Rev. A 104, 023324 (2021) - Published 27 August, 2021
Chen Tang, Athreya Shankar, Dominic Meiser, Daniel H. E. Dubin, John J. Bollinger, and Scott E. Parker
Phys. Rev. A 104, 023325 (2021) - Published 27 August, 2021
A. Farolfi, A. Zenesini, R. Cominotti, D. Trypogeorgos, A. Recati, G. Lamporesi, and G. Ferrari
Phys. Rev. A 104, 023326 (2021) - Published 30 August, 2021
Yang Chen, Xiaoman Chen, Xifeng Ren, Ming Gong, and Guang-can Guo
Phys. Rev. A 104, 023501 (2021) - Published 2 August, 2021
T. W. Penny, A. Pontin, and P. F. Barker
Phys. Rev. A 104, 023502 (2021) - Published 3 August, 2021
Yueqing Du, Chao Zeng, Zhiwen He, Qun Gao, Dong Mao, and Jianlin Zhao
Phys. Rev. A 104, 023503 (2021) - Published 3 August, 2021
Dmitry A. Zezyulin, Yaroslav V. Kartashov, and Vladimir V. Konotop
Phys. Rev. A 104, 023504 (2021) - Published 4 August, 2021
The authors theoretically and numerically demonstrate the existence of two-dimensional solitons persisting over long propagation distances close to an exceptional point in a two-dimensional nonlinear waveguide with distributed gain and losses, a non-Hermitian system. The long lifetime of such metastable solitons makes them potentially feasible for experimental observation.
V. A. Es'kin
Phys. Rev. A 104, 023505 (2021) - Published 5 August, 2021
Santosh Kumar, He Zhang, Prajnesh Kumar, Malvika Garikapati, Yong Meng Sua, and Yu-Ping Huang
Phys. Rev. A 104, 023506 (2021) - Published 6 August, 2021
A. N. Darinskii
Phys. Rev. A 104, 023507 (2021) - Published 6 August, 2021
Ivan A. Vartanyants and Ruslan Khubbutdinov
Phys. Rev. A 104, 023508 (2021) - Published 12 August, 2021
Roson Nongthombam, Ambaresh Sahoo, and Amarendra K. Sarma
Phys. Rev. A 104, 023509 (2021) - Published 13 August, 2021
Mikko Partanen and Jukka Tulkki
Phys. Rev. A 104, 023510 (2021) - Published 13 August, 2021
Wenle Weng, Miles H. Anderson, Anat Siddharth, Jijun He, Arslan S. Raja, and Tobias J. Kippenberg
Phys. Rev. A 104, 023511 (2021) - Published 16 August, 2021
Aqsa Ehsan, Muhammad Qasim Mehmood, Kashif Riaz, Yee Sin Ang, and Muhammad Zubair
Phys. Rev. A 104, 023512 (2021) - Published 18 August, 2021
Ambaresh Sahoo and Amarendra K. Sarma
Phys. Rev. A 104, 023513 (2021) - Published 18 August, 2021
Andrew S. H. Shevchuk, John C. H. Spence, Richard A. Kirian, William S. Graves, and Kevin E. Schmidt
Phys. Rev. A 104, 023514 (2021) - Published 19 August, 2021
Hamed Ghaemi-Dizicheh and Henning Schomerus
Phys. Rev. A 104, 023515 (2021) - Published 19 August, 2021
Julius Gohsrich, Tirth Shah, and Andrea Aiello
Phys. Rev. A 104, 023516 (2021) - Published 20 August, 2021
V. V. Marinyuk
Phys. Rev. A 104, 023517 (2021) - Published 20 August, 2021
Feng Wu, Ma Luo, Jiaju Wu, Caifu Fan, Xin Qi, Yiran Jian, Dejun Liu, Shuyuan Xiao, Gengyan Chen, Haitao Jiang, Yong Sun, and Hong Chen
Phys. Rev. A 104, 023518 (2021) - Published 23 August, 2021
Sergey P. Vyatchanin, Albert I. Nazmiev, and Andrey B. Matsko
Phys. Rev. A 104, 023519 (2021) - Published 24 August, 2021
Tomasz Radożycki
Phys. Rev. A 104, 023520 (2021) - Published 24 August, 2021
Lijun Yuan, Xiaoxia Luo, and Ya Yan Lu
Phys. Rev. A 104, 023521 (2021) - Published 24 August, 2021
S. A. Skobelev, A. A. Balakin, E. A. Anashkina, A. V. Andrianov, and A. G. Litvak
Phys. Rev. A 104, 023522 (2021) - Published 25 August, 2021
Harrison R. Greenwood and Mohammed F. Saleh
Phys. Rev. A 104, 023523 (2021) - Published 25 August, 2021
Marco Gandolfi, Andrea Tognazzi, Davide Rocco, Costantino De Angelis, and Luca Carletti
Phys. Rev. A 104, 023524 (2021) - Published 25 August, 2021
Guilhem Madiot, Franck Correia, Sylvain Barbay, and Rémy Braive
Phys. Rev. A 104, 023525 (2021) - Published 27 August, 2021
Fuxi Lu, Liu Tan, Zhifu Tan, Huahao Wu, and Yi Liang
Phys. Rev. A 104, 023526 (2021) - Published 31 August, 2021
Pawel Blasiak, Ewa Borsuk, Marcin Markiewicz, and Yong-Su Kim
Phys. Rev. A 104, 023701 (2021) - Published 3 August, 2021
F. Robicheaux and Deepak A. Suresh
Phys. Rev. A 104, 023702 (2021) - Published 4 August, 2021
W. V. Pogosov, A. Yu. Dmitriev, and O. V. Astafiev
Phys. Rev. A 104, 023703 (2021) - Published 5 August, 2021
R. O. Umucalılar, J. Simon, and I. Carusotto
Phys. Rev. A 104, 023704 (2021) - Published 6 August, 2021
Y. A. Fofanov, I. M. Sokolov, R. Kaiser, and W. Guerin
Phys. Rev. A 104, 023705 (2021) - Published 9 August, 2021
Tuguldur Kh. Begzjav and Girish S. Agarwal
Phys. Rev. A 104, 023706 (2021) - Published 11 August, 2021
Kai-Xin Hu, Chao Chen, Lu Qi, Wen-Xue Cui, Shou Zhang, and Hong-Fu Wang
Phys. Rev. A 104, 023707 (2021) - Published 12 August, 2021
R. A. Dourado and M. H. Y. Moussa
Phys. Rev. A 104, 023708 (2021) - Published 17 August, 2021
Kiryl Piasotski and Mikhail Pletyukhov
Phys. Rev. A 104, 023709 (2021) - Published 23 August, 2021
D. Hemmer, E. Montaño, B. Q. Baragiola, L. M. Norris, E. Shojaee, I. H. Deutsch, and P. S. Jessen
Phys. Rev. A 104, 023710 (2021) - Published 25 August, 2021
Wei-Jiang Wu, Yi-Pu Wang, Jin-Ze Wu, Jie Li, and J. Q. You
Phys. Rev. A 104, 023711 (2021) - Published 27 August, 2021
Lei Du and Yong Li
Phys. Rev. A 104, 023712 (2021) - Published 27 August, 2021
Daniel A. Paz and Mohammad F. Maghrebi
Phys. Rev. A 104, 023713 (2021) - Published 30 August, 2021
D. A. Kronberg
Phys. Rev. A 104, 026401 (2021) - Published 3 August, 2021
K. S. Kravtsov and S. N. Molotkov
Phys. Rev. A 104, 026402 (2021) - Published 3 August, 2021
D. S. Rosa, T. Frederico, G. Krein, and M. T. Yamashita
Phys. Rev. A 104, 029901 (2021) - Published 9 August, 2021
Weilei Zeng and Leonid P. Pryadko
Phys. Rev. A 104, 029902 (2021) - Published 13 August, 2021
L. M. Wang and Z.-C. Yan
Phys. Rev. A 104, 029903 (2021) - Published 19 August, 2021
A. I. Nahlawi, Z. L. Ma, M. S. Conradi, and B. Saam
Phys. Rev. A 104, 029904 (2021) - Published 19 August, 2021
Maxim Dzero, Ammar A. Kirmani, and Emil A. Yuzbashyan
Phys. Rev. A 104, 029905 (2021) - Published 20 August, 2021
Tomonari Mizoguchi, Yoshihito Kuno, and Yasuhiro Hatsugai
Phys. Rev. A 104, 029906 (2021) - Published 23 August, 2021
Hai-Bin Liu, W. L. Yang, Jun-Hong An, and Zhen-Yu Xu
Phys. Rev. A 104, 029907 (2021) - Published 31 August, 2021