Interference between dielectronic recombination with two-electron one-photon transitions and radiative recombination
Konstantin N. Lyashchenko, Oleg Yu. Andreev, and Deyang Yu
Phys. Rev. A 101, 040501(R) (2020) - Published 7 April, 2020
Nicole Yunger Halpern and David T. Limmer
Phys. Rev. A 101, 042116 (2020) - Published 17 April, 2020
Quantum information theory is used to investigate molecular switches. A resource-theory model for thermodynamics is applied to upper bound the probability of photoisomerization, or molecular switching, opening the door to a better understanding of the roles played by information, energy, and coherence in natural and artificial materials.
Yufeng Wu, Jianlong Liu, and Christoph Simon
Phys. Rev. A 101, 042301 (2020) - Published 1 April, 2020
Four different quantum repeater schemes built with ensemble-based quantum memories are analyzed in order to guide experimentalists to achieve real-world implementations. The work focuses on repeaters devoid of error correction and suggests that meaningful proof-of-principle demonstrations are within reach of current technology.
Paweł Mazurek, Máté Farkas, Andrzej Grudka, Michał Horodecki, and Michał Studziński
Phys. Rev. A 101, 042305 (2020) - Published 2 April, 2020
The connection between maximally entangled states and quantum error-correcting code is explored to gain insight on the AdS-CFT correspondence, i.e., on the link between gravity and quantum field theories. The study presents corrections to the so-called Ryu-Takayanagi formula.
R. T. Sutherland, R. Srinivas, S. C. Burd, H. M. Knaack, A. C. Wilson, D. J. Wineland, D. Leibfried, D. T. C. Allcock, D. H. Slichter, and S. B. Libby
Phys. Rev. A 101, 042334 (2020) - Published 29 April, 2020
Laser-free entangling gates are a valuable technique for preparing entangled states in a manner that is robust against photon scattering, but with the price of increased vulnerability to qubit and motional decoherence. Building on a recent scheme that employs one rf and two microwave fields to mitigate sensitivity to qubit decoherence, it is now theoretically shown that motional decoherence can be simultaneously reduced by a clever choice of field frequencies and amplitudes.
T.-C. Chien, O. Lanes, C. Liu, X. Cao, P. Lu, S. Motz, G. Liu, D. Pekker, and M. Hatridge
Phys. Rev. A 101, 042336 (2020) - Published 29 April, 2020
Reliably measuring qubits is a necessary step for developing more involved quantum technologies. A method that takes advantage of interference between multiple parametric drives is developed and experimentally tested, showing that a Josephson ring modulator can be operated to provide 21 dB of phase-sensitive transmission gain with high quantum efficiency and enhanced bandwidth.
Thomas Secker, Jesse Amato-Grill, Wolfgang Ketterle, and Servaas Kokkelmans
Phys. Rev. A 101, 042703 (2020) - Published 15 April, 2020
A coupled-channel model is developed to analyze the interaction energy shift of ultracold lithium atoms in a Mott insulator state. This refined treatment shows a better agreement with the experimental data than the standard Hubbard model.
Simon Vendelbo Bylling Jensen, Mads Middelhede Lund, and Lars Bojer Madsen
Phys. Rev. A 101, 043408 (2020) - Published 17 April, 2020
Bringing together classical, perturbative, and Volkov approaches, a nonrelativistic strong-field approximation beyond the dipole approximation is developed. The approach is highly flexible and numerically efficient, and promises a large potential for applications.
Hikaru Tamura, Tomotake Yamakoshi, and Ken'ichi Nakagawa
Phys. Rev. A 101, 043421 (2020) - Published 28 April, 2020
Many-body dynamics of small Rydberg-atom systems in the presence of physical limitations and imperfections are investigated experimentally and compared to numerical results from a dissipative model. This study provides useful information for scaling up a quantum simulator within the Rydberg-atom platform.
D. Baillie and P. B. Blakie
Phys. Rev. A 101, 043606 (2020) - Published 10 April, 2020
The dynamics of a dipolar Bose-Einstein condensate of magnetic atoms under a rotating magnetic field is investigated theoretically. Dynamic instabilities are identified and the results could stimulate future experimental work.
Yongtao Zhang, Yangjian Cai, and Greg Gbur
Phys. Rev. A 101, 043812 (2020) - Published 13 April, 2020
The orbital angular momentum properties of beams having an arbitrary degree of coherence for any radial and azimuthal order are analyzed. A generalized analytic solution is determined and the vortex structure on propagation is found to reconstruct itself, an effect that can be considered as a vortex supplement to the van Cittert–Zernike theorem.
A. Piñeiro Orioli and A. M. Rey
Phys. Rev. A 101, 043816 (2020) - Published 13 April, 2020
A detailed account of the suppression of spontaneous emission in fermionic multilevel atoms is presented. The study is particularly relevant for preparing optical lattices and tweezer arrays with long coherence times.
W. T. Buono, A. Santos, M. R. Maia, L. J. Pereira, D. S. Tasca, K. Dechoum, T. Ruchon, and A. Z. Khoury
Phys. Rev. A 101, 043821 (2020) - Published 16 April, 2020
The origin of radial structures generated in nonlinear vortex interactions is investigated. A theoretical model is developed and an experiment is performed to explain how two main parameters govern the process: the mismatch between the topological charge and the corresponding radial power law of the nonlinearly generated beam.
Kevin K. K. Tam, Tristram J. Alexander, Andrea Blanco-Redondo, and C. Martijn de Sterke
Phys. Rev. A 101, 043822 (2020) - Published 17 April, 2020
A family of solitons in fourth-order dispersive Kerr media is predicted and thoroughly analyzed. The found solutions unify many previously known classes of solitons, and present favorable characteristics for the dispersion engineering of ultrafast soliton lasers.
Konstantin N. Lyashchenko, Oleg Yu. Andreev, and Deyang Yu
Phys. Rev. A 101, 040501(R) (2020) - Published 7 April, 2020
G. S. J. Armstrong, D. D. A. Clarke, J. Benda, A. C. Brown, and H. W. van der Hart
Phys. Rev. A 101, 041401(R) (2020) - Published 17 April, 2020
Xiao-Qiong Wang, Yu-Xuan Wang, Xiang-Pei Liu, Ran Qi, Xing-Can Yao, Yu-Ao Chen, and Jian-Wei Pan
Phys. Rev. A 101, 041601(R) (2020) - Published 2 April, 2020
G. Guijarro, G. E. Astrakharchik, J. Boronat, B. Bazak, and D. S. Petrov
Phys. Rev. A 101, 041602(R) (2020) - Published 7 April, 2020
T-C. Tsui, Y. Wang, S. Subhankar, J. V. Porto, and S. L. Rolston
Phys. Rev. A 101, 041603(R) (2020) - Published 17 April, 2020
V. O. Shkolnikov and Guido Burkard
Phys. Rev. A 101, 042101 (2020) - Published 1 April, 2020
Daniel Finkelstein-Shapiro, David Viennot, Ibrahim Saideh, Thorsten Hansen, Tõnu Pullerits, and Arne Keller
Phys. Rev. A 101, 042102 (2020) - Published 1 April, 2020
Jonas B. Araujo, I. G. da Paz, Helder A. S. Costa, Carlos H. S. Vieira, and Marcos Sampaio
Phys. Rev. A 101, 042103 (2020) - Published 1 April, 2020
Fernando Nieto-Guadarrama and Jorge Villavicencio
Phys. Rev. A 101, 042104 (2020) - Published 6 April, 2020
Saúl J. C. Salazar, Humberto G. Laguna, and Robin P. Sagar
Phys. Rev. A 101, 042105 (2020) - Published 6 April, 2020
Gabriel T. Landi, André L. Fonseca de Oliveira, and Efrain Buksman
Phys. Rev. A 101, 042106 (2020) - Published 9 April, 2020
Xianghong Hu (胡相虹), Shuning Sun (孙舒宁), and Yujun Zheng (郑雨军)
Phys. Rev. A 101, 042107 (2020) - Published 13 April, 2020
Marco Cattaneo, Gian Luca Giorgi, Sabrina Maniscalco, and Roberta Zambrini
Phys. Rev. A 101, 042108 (2020) - Published 13 April, 2020
Jorge Villavicencio and Alberto Hernández-Maldonado
Phys. Rev. A 101, 042109 (2020) - Published 14 April, 2020
R. Bürkle and J. R. Anglin
Phys. Rev. A 101, 042110 (2020) - Published 14 April, 2020
I. L. Paiva, Y. Aharonov, J. Tollaksen, and M. Waegell
Phys. Rev. A 101, 042111 (2020) - Published 14 April, 2020
Zhaofeng Su, Haisheng Tan, and Xiangyang Li
Phys. Rev. A 101, 042112 (2020) - Published 14 April, 2020
Maximilian Schlosshauer
Phys. Rev. A 101, 042113 (2020) - Published 15 April, 2020
J. Roos, J. I. Cirac, and M. C. Bañuls
Phys. Rev. A 101, 042114 (2020) - Published 15 April, 2020
Huan Yang, Zhi-Yong Ding, Dong Wang, Hao Yuan, Xue-Ke Song, Jie Yang, Chang-Jin Zhang, and Liu Ye
Phys. Rev. A 101, 042115 (2020) - Published 16 April, 2020
Nicole Yunger Halpern and David T. Limmer
Phys. Rev. A 101, 042116 (2020) - Published 17 April, 2020
Quantum information theory is used to investigate molecular switches. A resource-theory model for thermodynamics is applied to upper bound the probability of photoisomerization, or molecular switching, opening the door to a better understanding of the roles played by information, energy, and coherence in natural and artificial materials.
Kazuhisa Ogawa, Hirokazu Kobayashi, and Akihisa Tomita
Phys. Rev. A 101, 042117 (2020) - Published 17 April, 2020
Giacomo Mauro D'Ariano, Marco Erba, and Paolo Perinotti
Phys. Rev. A 101, 042118 (2020) - Published 20 April, 2020
Ehtibar N. Dzhafarov, Janne V. Kujala, and Víctor H. Cervantes
Phys. Rev. A 101, 042119 (2020) - Published 20 April, 2020
Thais de Lima Silva, Stephen P. Walborn, Marcelo F. Santos, Gabriel H. Aguilar, and Adrián A. Budini
Phys. Rev. A 101, 042120 (2020) - Published 22 April, 2020
G. Karpat, İ. Yalçınkaya, and B. Çakmak
Phys. Rev. A 101, 042121 (2020) - Published 22 April, 2020
Luting Xu and Xin-Qi Li
Phys. Rev. A 101, 042122 (2020) - Published 23 April, 2020
Gadi Afek, Alexander Cheplev, Arnaud Courvoisier, and Nir Davidson
Phys. Rev. A 101, 042123 (2020) - Published 23 April, 2020
Lucas Teuber and Stefan Scheel
Phys. Rev. A 101, 042124 (2020) - Published 27 April, 2020
H. Chau Nguyen and Otfried Gühne
Phys. Rev. A 101, 042125 (2020) - Published 27 April, 2020
Kazuya Kaneko, Eiki Iyoda, and Takahiro Sagawa
Phys. Rev. A 101, 042126 (2020) - Published 27 April, 2020
Sina Hamedani Raja, K. P. Athulya, Anil Shaji, and Jyrki Piilo
Phys. Rev. A 101, 042127 (2020) - Published 28 April, 2020
Michał Eckstein, Paweł Horodecki, Tomasz Miller, and Ryszard Horodecki
Phys. Rev. A 101, 042128 (2020) - Published 28 April, 2020
Denise Cocchiarella, Stefano Scali, Salvatore Ribisi, Bianca Nardi, Ghofrane Bel-Hadj-Aissa, and Roberto Franzosi
Phys. Rev. A 101, 042129 (2020) - Published 29 April, 2020
Zhao-Ming Wang, Da-Wei Luo, Baowen Li, and Lian-Ao Wu
Phys. Rev. A 101, 042130 (2020) - Published 30 April, 2020
Yufeng Wu, Jianlong Liu, and Christoph Simon
Phys. Rev. A 101, 042301 (2020) - Published 1 April, 2020
Four different quantum repeater schemes built with ensemble-based quantum memories are analyzed in order to guide experimentalists to achieve real-world implementations. The work focuses on repeaters devoid of error correction and suggests that meaningful proof-of-principle demonstrations are within reach of current technology.
Shane Dooley, Graham Kells, Hosho Katsura, and Tony C. Dorlas
Phys. Rev. A 101, 042302 (2020) - Published 1 April, 2020
Michael de Oliveira, Isaac Nape, Jonathan Pinnell, Najmeh TabeBordbar, and Andrew Forbes
Phys. Rev. A 101, 042303 (2020) - Published 1 April, 2020
M. Röntgen, N. E. Palaiodimopoulos, C. V. Morfonios, I. Brouzos, M. Pyzh, F. K. Diakonos, and P. Schmelcher
Phys. Rev. A 101, 042304 (2020) - Published 1 April, 2020
Paweł Mazurek, Máté Farkas, Andrzej Grudka, Michał Horodecki, and Michał Studziński
Phys. Rev. A 101, 042305 (2020) - Published 2 April, 2020
The connection between maximally entangled states and quantum error-correcting code is explored to gain insight on the AdS-CFT correspondence, i.e., on the link between gravity and quantum field theories. The study presents corrections to the so-called Ryu-Takayanagi formula.
Andrii M. Sokolov and Eugene V. Stolyarov
Phys. Rev. A 101, 042306 (2020) - Published 3 April, 2020
Akshaya Jayashankar, Anjala M. Babu, Hui Khoon Ng, and Prabha Mandayam
Phys. Rev. A 101, 042307 (2020) - Published 6 April, 2020
J. W. O. Garmon, R. C. Pooser, and E. F. Dumitrescu
Phys. Rev. A 101, 042308 (2020) - Published 6 April, 2020
Andrei Tănăsescu, Valentina-Florentina Iliescu, and Pantelimon George Popescu
Phys. Rev. A 101, 042309 (2020) - Published 7 April, 2020
Hong-Yi Su
Phys. Rev. A 101, 042310 (2020) - Published 7 April, 2020
S. Alipour, S. Tuohino, A. T. Rezakhani, and T. Ala-Nissila
Phys. Rev. A 101, 042311 (2020) - Published 7 April, 2020
Shilin Huang and Kenneth R. Brown
Phys. Rev. A 101, 042312 (2020) - Published 9 April, 2020
Yi-Fan Qiao, Hong-Zhen Li, Xing-Liang Dong, Jia-Qiang Chen, Yuan Zhou, and Peng-Bo Li
Phys. Rev. A 101, 042313 (2020) - Published 13 April, 2020
Zhi-Cheng Shi, Cheng Zhang, Li-Tuo Shen, Yan Xia, X. X. Yi, and Shi-Biao Zheng
Phys. Rev. A 101, 042314 (2020) - Published 14 April, 2020
Ye-Chao Liu, Jiangwei Shang, Xiao-Dong Yu, and Xiangdong Zhang
Phys. Rev. A 101, 042315 (2020) - Published 15 April, 2020
Huangjun Zhu and Haoyu Zhang
Phys. Rev. A 101, 042316 (2020) - Published 15 April, 2020
David Roberts, Lukasz Cincio, Avadh Saxena, Andre Petukhov, and Sergey Knysh
Phys. Rev. A 101, 042317 (2020) - Published 16 April, 2020
Shufan Lu, Abu Ashik Md. Irfan, Jiazhou Shen, Steve J. Kuhn, W. Michael Snow, David V. Baxter, Roger Pynn, and Gerardo Ortiz
Phys. Rev. A 101, 042318 (2020) - Published 16 April, 2020
Ben Bartlett and Shanhui Fan
Phys. Rev. A 101, 042319 (2020) - Published 20 April, 2020
Cheng Jiang, Spyros Tserkis, Kevin Collins, Sho Onoe, Yong Li, and Lin Tian
Phys. Rev. A 101, 042320 (2020) - Published 20 April, 2020
Xiao-Bin Liang, Bo Li, Shao-Ming Fei, and Heng Fan
Phys. Rev. A 101, 042321 (2020) - Published 20 April, 2020
Mikkel Heuck, Kurt Jacobs, and Dirk R. Englund
Phys. Rev. A 101, 042322 (2020) - Published 20 April, 2020
Chenxu Liu, Tzu-Chiao Chien, Michael Hatridge, and David Pekker
Phys. Rev. A 101, 042323 (2020) - Published 21 April, 2020
Yan Li, Xingli Li, and Jiasen Jin
Phys. Rev. A 101, 042324 (2020) - Published 21 April, 2020
Nikolaos K. Kollas and Kostas Blekos
Phys. Rev. A 101, 042325 (2020) - Published 21 April, 2020
Nilanjana Chanda and Rangeet Bhattacharyya
Phys. Rev. A 101, 042326 (2020) - Published 22 April, 2020
Shikun Zhang, Kun Liu, Daoyi Dong, Xiaoxue Feng, and Feng Pan
Phys. Rev. A 101, 042327 (2020) - Published 22 April, 2020
Rui Li, Dongmin Yu, Shi-Lei Su, and Jing Qian
Phys. Rev. A 101, 042328 (2020) - Published 23 April, 2020
Fattah Sakuldee and Łukasz Cywiński
Phys. Rev. A 101, 042329 (2020) - Published 23 April, 2020
Hai Xu, Zong-Wen Yu, Cong Jiang, Xiao-Long Hu, and Xiang-Bin Wang
Phys. Rev. A 101, 042330 (2020) - Published 24 April, 2020
Ji-kun Xie, Sheng-li Ma, and Fu-li Li
Phys. Rev. A 101, 042331 (2020) - Published 24 April, 2020
Yannick Deville and Alain Deville
Phys. Rev. A 101, 042332 (2020) - Published 27 April, 2020
Jacob H. Davidson, Pascal Lefebvre, Jun Zhang, Daniel Oblak, and Wolfgang Tittel
Phys. Rev. A 101, 042333 (2020) - Published 28 April, 2020
R. T. Sutherland, R. Srinivas, S. C. Burd, H. M. Knaack, A. C. Wilson, D. J. Wineland, D. Leibfried, D. T. C. Allcock, D. H. Slichter, and S. B. Libby
Phys. Rev. A 101, 042334 (2020) - Published 29 April, 2020
Laser-free entangling gates are a valuable technique for preparing entangled states in a manner that is robust against photon scattering, but with the price of increased vulnerability to qubit and motional decoherence. Building on a recent scheme that employs one rf and two microwave fields to mitigate sensitivity to qubit decoherence, it is now theoretically shown that motional decoherence can be simultaneously reduced by a clever choice of field frequencies and amplitudes.
Roman Schutski, Danil Lykov, and Ivan Oseledets
Phys. Rev. A 101, 042335 (2020) - Published 29 April, 2020
T.-C. Chien, O. Lanes, C. Liu, X. Cao, P. Lu, S. Motz, G. Liu, D. Pekker, and M. Hatridge
Phys. Rev. A 101, 042336 (2020) - Published 29 April, 2020
Reliably measuring qubits is a necessary step for developing more involved quantum technologies. A method that takes advantage of interference between multiple parametric drives is developed and experimentally tested, showing that a Josephson ring modulator can be operated to provide 21 dB of phase-sensitive transmission gain with high quantum efficiency and enhanced bandwidth.
Giulio Gianfelici, Hermann Kampermann, and Dagmar Bruß
Phys. Rev. A 101, 042337 (2020) - Published 29 April, 2020
John P. T. Stenger and Roger S. K. Mong
Phys. Rev. A 101, 042338 (2020) - Published 29 April, 2020
Ratul Banerjee, Amit Kumar Pal, and Aditi Sen(De)
Phys. Rev. A 101, 042339 (2020) - Published 30 April, 2020
Ananda G. Maity, Debarshi Das, Arkaprabha Ghosal, Arup Roy, and A. S. Majumdar
Phys. Rev. A 101, 042340 (2020) - Published 30 April, 2020
V. V. Flambaum, V. A. Dzuba, and H. B. Tran Tan
Phys. Rev. A 101, 042501 (2020) - Published 1 April, 2020
N. Petersen, M. Trümper, and P. Windpassinger
Phys. Rev. A 101, 042502 (2020) - Published 2 April, 2020
E. C. Cook, A. D. Vira, and W. D. Williams
Phys. Rev. A 101, 042503 (2020) - Published 6 April, 2020
V. V. Flambaum and V. A. Dzuba
Phys. Rev. A 101, 042504 (2020) - Published 6 April, 2020
S. Kosugi, F. Koike, T. Nagayasu, F. Hosseini, J. Martins, T. Marchenko, O. Travnikova, M. Oura, T. Gejo, J. R. Harries, J. D. Bozek, K. Ito, E. Sokell, S. Fritzsche, M. N. Piancastelli, M. Simon, and Y. Azuma
Phys. Rev. A 101, 042505 (2020) - Published 8 April, 2020
Gerard Meijer and Boris G. Sartakov
Phys. Rev. A 101, 042506 (2020) - Published 9 April, 2020
S. R. Chanu, V. P. W. Koh, K. J. Arnold, R. Kaewuam, T. R. Tan, Zhiqiang Zhang, M. S. Safronova, and M. D. Barrett
Phys. Rev. A 101, 042507 (2020) - Published 22 April, 2020
B. King
Phys. Rev. A 101, 042508 (2020) - Published 27 April, 2020
Xiaobin Ding, Fengling Zhang, Yang Yang, Ling Zhang, Fumihiro Koike, Izumi Murakami, Daiji Kato, Hiroyuki A. Sakaue, Nobuyuki Nakamura, and Chenzhong Dong
Phys. Rev. A 101, 042509 (2020) - Published 27 April, 2020
S. Pucher, P. Schneeweiss, A. Rauschenbeutel, and A. Dareau
Phys. Rev. A 101, 042510 (2020) - Published 27 April, 2020
Gregory S. Adkins, Md Faisal Alam, Conor Larison, and Ruosi Sun
Phys. Rev. A 101, 042511 (2020) - Published 29 April, 2020
R. Schuch, M. Schulz, Y. S. Kozhedub, V. M. Shabaev, I. I. Tupitsyn, G. Plunien, P. H. Mokler, and H. Schmidt-Böcking
Phys. Rev. A 101, 042701 (2020) - Published 2 April, 2020
Tijs Karman
Phys. Rev. A 101, 042702 (2020) - Published 6 April, 2020
Thomas Secker, Jesse Amato-Grill, Wolfgang Ketterle, and Servaas Kokkelmans
Phys. Rev. A 101, 042703 (2020) - Published 15 April, 2020
A coupled-channel model is developed to analyze the interaction energy shift of ultracold lithium atoms in a Mott insulator state. This refined treatment shows a better agreement with the experimental data than the standard Hubbard model.
Kai K. Voges, Philipp Gersema, Torsten Hartmann, Torben A. Schulze, Alessandro Zenesini, and Silke Ospelkaus
Phys. Rev. A 101, 042704 (2020) - Published 20 April, 2020
M.-S. Wu, J.-Y. Zhang, X. Gao, Y. Qian, H.-H. Xie, K. Varga, Z.-C. Yan, and U. Schwingenschlögl
Phys. Rev. A 101, 042705 (2020) - Published 21 April, 2020
Yingying Wang, Xiaohua Shi, Jiaqi Zhou, Shenyue Xu, Dalong Guo, Shuncheng Yan, Xiaolong Zhu, and Xinwen Ma
Phys. Rev. A 101, 042706 (2020) - Published 22 April, 2020
B. Najjari, S. F. Zhang, X. Ma, and A. B. Voitkiv
Phys. Rev. A 101, 042707 (2020) - Published 27 April, 2020
Georg Alexander Holzer, Rebecca Meißner, Anita Ribar, Andreas Bayer, Michael Neustetter, and Stephan Denifl
Phys. Rev. A 101, 042708 (2020) - Published 28 April, 2020
Chi Hong Yuen and Viatcheslav Kokoouline
Phys. Rev. A 101, 042709 (2020) - Published 28 April, 2020
J. Braß, R. Milbradt, S. Villalba-Chávez, G. G. Paulus, and C. Müller
Phys. Rev. A 101, 043401 (2020) - Published 6 April, 2020
Ran He, Ming-Zhong Ai, Jin-Ming Cui, Yun-Feng Huang, Yong-Jian Han, Chuan-Feng Li, Tao Tu, C. E. Creffield, G. Sierra, and Guang-Can Guo
Phys. Rev. A 101, 043402 (2020) - Published 9 April, 2020
Smail Bougouffa and Mohamed Babiker
Phys. Rev. A 101, 043403 (2020) - Published 9 April, 2020
Zhaoxiang Liu, Jinping Yao, Haisu Zhang, Bo Xu, Jinming Chen, Fangbo Zhang, Zhihao Zhang, Yuexin Wan, Wei Chu, Zhenhua Wang, and Ya Cheng
Phys. Rev. A 101, 043404 (2020) - Published 13 April, 2020
Antonia Karamatskou, R. Esteban Goetz, Christiane P. Koch, and Robin Santra
Phys. Rev. A 101, 043405 (2020) - Published 13 April, 2020
Meng Han, Peipei Ge, Yiqi Fang, Xiaoyang Yu, Zhengning Guo, Yongkai Deng, Qihuang Gong, and Yunquan Liu
Phys. Rev. A 101, 043406 (2020) - Published 13 April, 2020
I. A. Ivanov, A. S. Kheifets, and Kyung Taec Kim
Phys. Rev. A 101, 043407 (2020) - Published 15 April, 2020
Simon Vendelbo Bylling Jensen, Mads Middelhede Lund, and Lars Bojer Madsen
Phys. Rev. A 101, 043408 (2020) - Published 17 April, 2020
Bringing together classical, perturbative, and Volkov approaches, a nonrelativistic strong-field approximation beyond the dipole approximation is developed. The approach is highly flexible and numerically efficient, and promises a large potential for applications.
Jonas Wätzel and Jamal Berakdar
Phys. Rev. A 101, 043409 (2020) - Published 20 April, 2020
P. M. Abanador, T. Pauly, and U. Thumm
Phys. Rev. A 101, 043410 (2020) - Published 20 April, 2020
Sourav Banerjee, Pranawa C. Deshmukh, Anatoli S. Kheifets, and Steven T. Manson
Phys. Rev. A 101, 043411 (2020) - Published 20 April, 2020
T. Wolz, C. Malbrunot, M. Vieille-Grosjean, and D. Comparat
Phys. Rev. A 101, 043412 (2020) - Published 21 April, 2020
Phay J. Ho, Christopher Knight, and Linda Young
Phys. Rev. A 101, 043413 (2020) - Published 23 April, 2020
Elke Fasshauer and Lars Bojer Madsen
Phys. Rev. A 101, 043414 (2020) - Published 24 April, 2020
T. Darrah Thomas
Phys. Rev. A 101, 043415 (2020) - Published 27 April, 2020
J. F. Tao, J. Cai, Q. Z. Xia, and J. Liu
Phys. Rev. A 101, 043416 (2020) - Published 27 April, 2020
Junyang Ma, H. Zhang, B. Lavorel, F. Billard, J. Wu, C. Boulet, J.-M. Hartmann, and O. Faucher
Phys. Rev. A 101, 043417 (2020) - Published 27 April, 2020
Juan Polo, Piero Naldesi, Anna Minguzzi, and Luigi Amico
Phys. Rev. A 101, 043418 (2020) - Published 27 April, 2020
Hideki Ohmura and Naoaki Saito
Phys. Rev. A 101, 043419 (2020) - Published 27 April, 2020
Sachin Sharma and Rajesh V. Nair
Phys. Rev. A 101, 043420 (2020) - Published 27 April, 2020
Hikaru Tamura, Tomotake Yamakoshi, and Ken'ichi Nakagawa
Phys. Rev. A 101, 043421 (2020) - Published 28 April, 2020
Many-body dynamics of small Rydberg-atom systems in the presence of physical limitations and imperfections are investigated experimentally and compared to numerical results from a dissipative model. This study provides useful information for scaling up a quantum simulator within the Rydberg-atom platform.
Zhaoyan Zhou, Zhihui lv, Dongwen Zhang, Zengxiu Zhao, and C. D. Lin
Phys. Rev. A 101, 043422 (2020) - Published 28 April, 2020
Xi Chu and Gerrit C. Groenenboom
Phys. Rev. A 101, 043423 (2020) - Published 29 April, 2020
S. Laalitya Uppalapati and Daniel E. Sheehy
Phys. Rev. A 101, 043601 (2020) - Published 1 April, 2020
J. Sánchez-Baena, J. Boronat, and F. Mazzanti
Phys. Rev. A 101, 043602 (2020) - Published 1 April, 2020
Christine Khripkov, Amichay Vardi, and Doron Cohen
Phys. Rev. A 101, 043603 (2020) - Published 2 April, 2020
Aparna Sreedharan, Sarthak Choudhury, Rick Mukherjee, Alexey Streltsov, and Sebastian Wüster
Phys. Rev. A 101, 043604 (2020) - Published 6 April, 2020
Changyuan Lyu and Qi Zhou
Phys. Rev. A 101, 043605 (2020) - Published 9 April, 2020
D. Baillie and P. B. Blakie
Phys. Rev. A 101, 043606 (2020) - Published 10 April, 2020
The dynamics of a dipolar Bose-Einstein condensate of magnetic atoms under a rotating magnetic field is investigated theoretically. Dynamic instabilities are identified and the results could stimulate future experimental work.
Fan Wu, Jianshen Hu, Lianyi He, Xia-Ji Liu, and Hui Hu
Phys. Rev. A 101, 043607 (2020) - Published 10 April, 2020
Mehmet Günay
Phys. Rev. A 101, 043608 (2020) - Published 13 April, 2020
Safoura S. Mirkhalaf, Emilia Witkowska, and Luca Lepori
Phys. Rev. A 101, 043609 (2020) - Published 14 April, 2020
Meung Ho Seo, Sooyoung Park, and D. Cho
Phys. Rev. A 101, 043611 (2020) - Published 15 April, 2020
E. A. Kuznetsov, M. Yu. Kagan, and A. V. Turlapov
Phys. Rev. A 101, 043612 (2020) - Published 16 April, 2020
G. A. Olivares-Rentería, D. A. Lancheros-Naranjo, E. Gomez, and J. A. Franco-Villafañe
Phys. Rev. A 101, 043613 (2020) - Published 20 April, 2020
Qianqian Chen, Jianming Cai, and Shaoliang Zhang
Phys. Rev. A 101, 043614 (2020) - Published 20 April, 2020
R. J. Lewis-Swan and K. V. Kheruntsyan
Phys. Rev. A 101, 043615 (2020) - Published 21 April, 2020
Cai-Xia Zhang, Shi-Guo Peng, and Kaijun Jiang
Phys. Rev. A 101, 043616 (2020) - Published 22 April, 2020
Sascha Vowe, Claus Lämmerzahl, and Markus Krutzik
Phys. Rev. A 101, 043617 (2020) - Published 22 April, 2020
Arianna Montorsi, Serena Fazzini, and Luca Barbiero
Phys. Rev. A 101, 043618 (2020) - Published 24 April, 2020
Pere Mujal, Artur Polls, and Bruno Juliá-Díaz
Phys. Rev. A 101, 043619 (2020) - Published 24 April, 2020
Shujie Cheng, Honghao Yin, Zhanpeng Lu, Chaocheng He, Pei Wang, and Gao Xianlong
Phys. Rev. A 101, 043620 (2020) - Published 27 April, 2020
Li-Chen Zhao, Wenlong Wang, Qinglin Tang, Zhan-Ying Yang, Wen-Li Yang, and Jie Liu
Phys. Rev. A 101, 043621 (2020) - Published 28 April, 2020
R. Karcher, F. Pereira Dos Santos, and S. Merlet
Phys. Rev. A 101, 043622 (2020) - Published 28 April, 2020
Callum L. Grimshaw, Simon A. Gardiner, and Boris A. Malomed
Phys. Rev. A 101, 043623 (2020) - Published 28 April, 2020
Samuel Lellouch, Adam Rançon, Stephan De Bièvre, Dominique Delande, and Jean Claude Garreau
Phys. Rev. A 101, 043624 (2020) - Published 29 April, 2020
Amit Dey and Manas Kulkarni
Phys. Rev. A 101, 043801 (2020) - Published 1 April, 2020
Nikhil Pramanik, K. C. Yellapragada, Suneel Singh, and P. Anantha Lakshmi
Phys. Rev. A 101, 043802 (2020) - Published 1 April, 2020
Hashem Zoubi
Phys. Rev. A 101, 043803 (2020) - Published 3 April, 2020
Jonathan Gratus, Martin W. McCall, and Paul Kinsler
Phys. Rev. A 101, 043804 (2020) - Published 7 April, 2020
Adeel Abbas, Chenni Xu, and Li-Gang Wang
Phys. Rev. A 101, 043805 (2020) - Published 7 April, 2020
I. Allayarov, M. A. Schmidt, and T. Weiss
Phys. Rev. A 101, 043806 (2020) - Published 7 April, 2020
R. Y. Teh, F.-X. Sun, R. E. S. Polkinghorne, Q. Y. He, Q. Gong, P. D. Drummond, and M. D. Reid
Phys. Rev. A 101, 043807 (2020) - Published 7 April, 2020
Hongsheng Shi, Hongxia Zheng, Huajin Chen, Wanli Lu, Shiyang Liu, and Zhifang Lin
Phys. Rev. A 101, 043808 (2020) - Published 7 April, 2020
Saleh Rahimi-Keshari, Sima Baghbanzadeh, and Carlton M. Caves
Phys. Rev. A 101, 043809 (2020) - Published 8 April, 2020
João D. Rodrigues, José T. Mendonça, and Hugo Terças
Phys. Rev. A 101, 043810 (2020) - Published 9 April, 2020
J. C. G. Henriques, T. G. Rappoport, Y. V. Bludov, M. I. Vasilevskiy, and N. M. R. Peres
Phys. Rev. A 101, 043811 (2020) - Published 10 April, 2020
Yongtao Zhang, Yangjian Cai, and Greg Gbur
Phys. Rev. A 101, 043812 (2020) - Published 13 April, 2020
The orbital angular momentum properties of beams having an arbitrary degree of coherence for any radial and azimuthal order are analyzed. A generalized analytic solution is determined and the vortex structure on propagation is found to reconstruct itself, an effect that can be considered as a vortex supplement to the van Cittert–Zernike theorem.
A. A. Voronin and A. M. Zheltikov
Phys. Rev. A 101, 043813 (2020) - Published 13 April, 2020
Vladimir N. Gladilin and Michiel Wouters
Phys. Rev. A 101, 043814 (2020) - Published 13 April, 2020
S. Schwarz, C. Kapahi, R. Xu, A. R. Cameron, D. Sarenac, J. P. W. MacLean, K. B. Kuntz, D. G. Cory, T. Jennewein, K. J. Resch, and D. A. Pushin
Phys. Rev. A 101, 043815 (2020) - Published 13 April, 2020
A. Piñeiro Orioli and A. M. Rey
Phys. Rev. A 101, 043816 (2020) - Published 13 April, 2020
A detailed account of the suppression of spontaneous emission in fermionic multilevel atoms is presented. The study is particularly relevant for preparing optical lattices and tweezer arrays with long coherence times.
Marzye Hoseinzadeh, Ehsan Amooghorban, Ali Mahdifar, and Maryam Aghabozorgi Nafchi
Phys. Rev. A 101, 043817 (2020) - Published 13 April, 2020
C. Mas Arabí, P. Parra-Rivas, C. Ciret, S. P. Gorza, and F. Leo
Phys. Rev. A 101, 043818 (2020) - Published 14 April, 2020
M. Allgaier, V. Ansari, J. M. Donohue, C. Eigner, V. Quiring, R. Ricken, B. Brecht, and C. Silberhorn
Phys. Rev. A 101, 043819 (2020) - Published 15 April, 2020
Xiao-Bo Yan
Phys. Rev. A 101, 043820 (2020) - Published 16 April, 2020
W. T. Buono, A. Santos, M. R. Maia, L. J. Pereira, D. S. Tasca, K. Dechoum, T. Ruchon, and A. Z. Khoury
Phys. Rev. A 101, 043821 (2020) - Published 16 April, 2020
The origin of radial structures generated in nonlinear vortex interactions is investigated. A theoretical model is developed and an experiment is performed to explain how two main parameters govern the process: the mismatch between the topological charge and the corresponding radial power law of the nonlinearly generated beam.
Kevin K. K. Tam, Tristram J. Alexander, Andrea Blanco-Redondo, and C. Martijn de Sterke
Phys. Rev. A 101, 043822 (2020) - Published 17 April, 2020
A family of solitons in fourth-order dispersive Kerr media is predicted and thoroughly analyzed. The found solutions unify many previously known classes of solitons, and present favorable characteristics for the dispersion engineering of ultrafast soliton lasers.
Stepan Boichenko
Phys. Rev. A 101, 043823 (2020) - Published 17 April, 2020
H. Y. Yuan, Weichao Yu (余伟超), and Jiang Xiao (萧江)
Phys. Rev. A 101, 043824 (2020) - Published 17 April, 2020
Zhen Hu, Lijun Yuan, and Ya Yan Lu
Phys. Rev. A 101, 043825 (2020) - Published 20 April, 2020
Wouter Verstraelen and Michiel Wouters
Phys. Rev. A 101, 043826 (2020) - Published 21 April, 2020
Lijun Yuan and Ya Yan Lu
Phys. Rev. A 101, 043827 (2020) - Published 21 April, 2020
Nitzan Habler and Jacob Scheuer
Phys. Rev. A 101, 043828 (2020) - Published 22 April, 2020
Svetlana N. Khonina, Andrey V. Ustinov, Valentin I. Logachev, and Alexey P. Porfirev
Phys. Rev. A 101, 043829 (2020) - Published 22 April, 2020
Daoud Mansour and Khaled Senouci
Phys. Rev. A 101, 043830 (2020) - Published 22 April, 2020
Yao Zhou, Zihao Chen, and Jung-Tsung Shen
Phys. Rev. A 101, 043831 (2020) - Published 23 April, 2020
Rongguo Yang, Jing Zhang, Israel Klich, Carlos González-Arciniegas, and Olivier Pfister
Phys. Rev. A 101, 043832 (2020) - Published 23 April, 2020
Ya-Jie Wu, Chao-Chen Liu, and Junpeng Hou
Phys. Rev. A 101, 043833 (2020) - Published 23 April, 2020
Andrey Novitsky, Dmitry Lyakhov, Dominik Michels, Alexander A. Pavlov, Alexander S. Shalin, and Denis V. Novitsky
Phys. Rev. A 101, 043834 (2020) - Published 23 April, 2020
Jin-Feng Huang, Jie-Qiao Liao, and Le-Man Kuang
Phys. Rev. A 101, 043835 (2020) - Published 27 April, 2020
Victor Fleurov and Anatoly B. Kuklov
Phys. Rev. A 101, 043836 (2020) - Published 27 April, 2020
Marko Toroš, Sara Restuccia, Graham M. Gibson, Marion Cromb, Hendrik Ulbricht, Miles Padgett, and Daniele Faccio
Phys. Rev. A 101, 043837 (2020) - Published 27 April, 2020
R. M. Arkhipov, A. V. Pakhomov, M. V. Arkhipov, A. Demircan, U. Morgner, N. N. Rosanov, and I. Babushkin
Phys. Rev. A 101, 043838 (2020) - Published 27 April, 2020
Abhinandan Bhattacharjee, Shaurya Aarav, Harshawardhan Wanare, and Anand K. Jha
Phys. Rev. A 101, 043839 (2020) - Published 27 April, 2020
S. Rodríguez-Walton, B. Jaramillo Ávila, and B. M. Rodríguez-Lara
Phys. Rev. A 101, 043840 (2020) - Published 27 April, 2020
Jian Huang, Yu-Hong Liu, Jin-Feng Huang, and Jie-Qiao Liao
Phys. Rev. A 101, 043841 (2020) - Published 28 April, 2020
Na Zhu, Xu Han, Chang-Ling Zou, Mingrui Xu, and Hong X. Tang
Phys. Rev. A 101, 043842 (2020) - Published 28 April, 2020
M. Guionie, M. Romanelli, A. Thorette, A. Carré, E. Pinsard, L. Lablonde, B. Cadier, M. Alouini, M. Vallet, and M. Brunel
Phys. Rev. A 101, 043843 (2020) - Published 28 April, 2020
Baghdasar Baghdasaryan, Fabian Steinlechner, and Stephan Fritzsche
Phys. Rev. A 101, 043844 (2020) - Published 29 April, 2020
Alexander N. Poddubny
Phys. Rev. A 101, 043845 (2020) - Published 29 April, 2020
Rosie Hayward and Fabio Biancalana
Phys. Rev. A 101, 043846 (2020) - Published 29 April, 2020
Andreas Kouzelis, Katarzyna Macieszczak, Jiří Minář, and Igor Lesanovsky
Phys. Rev. A 101, 043847 (2020) - Published 29 April, 2020
V. A. Zakharov and A. N. Poddubny
Phys. Rev. A 101, 043848 (2020) - Published 30 April, 2020
B. L. Burrows, A. Dalgarno, and M. Cohen
Phys. Rev. A 101, 049901 (2020) - Published 8 April, 2020
Yi-Hao Kang, Zhi-Cheng Shi, Bi-Hua Huang, Jie Song, and Yan Xia
Phys. Rev. A 101, 049902 (2020) - Published 23 April, 2020