Signaling and scrambling with strongly long-range interactions
Andrew Y. Guo, Minh C. Tran, Andrew M. Childs, Alexey V. Gorshkov, and Zhe-Xuan Gong
Phys. Rev. A 102, 010401(R) (2020) - Published 8 July, 2020
Phys. Rev. A 102, 010001 (2020) - Published 1 July, 2020
Mustapha Laatiaoui, Alexei A. Buchachenko, and Larry A. Viehland
Phys. Rev. A 102, 013106 (2020) - Published 10 July, 2020
A kinetic model for optical pumping in lutetium and lawrencium ions is developed. The theoretical results provide a basis for the development of a new spectroscopic technique for superheavy elements, based on state-dependent ion mobilities.
J. J. Halliwell and C. Mawby
Phys. Rev. A 102, 012209 (2020) - Published 8 July, 2020
Macrorealism has been traditionally tested for systems described at each time by a single dichotomic variable. In this work, the authors develop a set of conditions which characterize macrorealism for many-valued variables, helping to shed light on certain experimental investigations based on three-level systems.
Roy Shaham, Or Katz, and Ofer Firstenberg
Phys. Rev. A 102, 012822 (2020) - Published 30 July, 2020
The authors develop a quantum description of the spatial diffusion of a spin gas with a full account of the associated decay and quantum noise processes. The presented model is shown to agree with existing models in their respective applicable regimes while extending them by describing quantum correlations and the quantum noise of the Brownian motion.
T. Bayer, Ch. Philipp, K. Eickhoff, and M. Wollenhaupt
Phys. Rev. A 102, 013104 (2020) - Published 6 July, 2020
Theoretical analysis and numerical simulations of electron vortices generated by ultrafast multiphoton ionization of alkali-metal atoms are performed. The results show excellent agreement with previous experiments while providing insights into regimes not accessible in current experimental setups.
Chen Avinadav, Dimitry Yankelev, Moshe Shuker, Ofer Firstenberg, and Nir Davidson
Phys. Rev. A 102, 013326 (2020) - Published 29 July, 2020
Two methods to stabilize the ratio between the interferometer signal and the actual rotation rate in point-source atom interferometry are introduced and experimentally verified. These methods could improve the stability of rotation measurements while maintaining sensitivity in point-source interferometry.
Marcin Płodzień, Maciej Kościelski, Emilia Witkowska, and Alice Sinatra
Phys. Rev. A 102, 013328 (2020) - Published 31 July, 2020
Dynamical generation and storage of spin-squeezed states in few-body cold-atom systems within one-dimensional optical lattices are investigated theoretically through an exact diagonalization approach. The structure of the Mott-squeezed states is revealed by correlation functions on-site and between different sites.
Ruoyu Liao, Chao Mei, Youjian Song, Ayhan Demircan, and Günter Steinmeyer
Phys. Rev. A 102, 013506 (2020) - Published 7 July, 2020
The problem of amplified spontaneous emission (ASE) noise in mode-locked lasers is revisited. Such lasers represent the foundation for optical frequency metrology, and the analytic formalism developed here will be an important guide on how one can probe and estimate this fundamental noise floor.
G. P. Fedorov, V. B. Yursa, A. E. Efimov, K. I. Shiianov, A. Yu. Dmitriev, I. A. Rodionov, A. A. Dobronosova, D. O. Moskalev, A. A. Pishchimova, E. I. Malevannaya, and O. V. Astafiev
Phys. Rev. A 102, 013707 (2020) - Published 7 July, 2020
An artificial molecule comprised of two artificial atoms made of strongly coupled superconducting transmons is investigated under irradiation by intense light. The measured spectral features are very complex, but the authors show that they can be modeled and well explained in terms of dressed states of qubits.
Aleksei Konovalov and Giovanna Morigi
Phys. Rev. A 102, 013724 (2020) - Published 24 July, 2020
A comprehensive study of light-matter interaction in the limit of dense atomic clouds is performed. The investigation includes the quantum interference between many complex channels and the validity of the approach is tested on hydrogen transitions.
Eduardo Sánchez-Burillo, Alejandro González-Tudela, and Carlos Gonzalez-Ballestero
Phys. Rev. A 102, 013726 (2020) - Published 28 July, 2020
A quantum description of the motional degrees of freedom of a single quantum emitter in waveguide QED is presented. The study is relevant for experiments in the low-kinetic-energy regime, opening the way to using the motional degrees of freedom as a resource for quantum technologies.
Andrew Y. Guo, Minh C. Tran, Andrew M. Childs, Alexey V. Gorshkov, and Zhe-Xuan Gong
Phys. Rev. A 102, 010401(R) (2020) - Published 8 July, 2020
Yi-Xiang Liu (刘仪襄), Jordan Hines, Zhi Li (李智), Ashok Ajoy, and Paola Cappellaro
Phys. Rev. A 102, 010601(R) (2020) - Published 14 July, 2020
Yang-Yang Chen, Pengfei Zhang, Wei Zheng, Zhigang Wu, and Hui Zhai
Phys. Rev. A 102, 011301(R) (2020) - Published 8 July, 2020
E. T. Davletov, V. V. Tsyganok, V. A. Khlebnikov, D. A. Pershin, D. V. Shaykin, and A. V. Akimov
Phys. Rev. A 102, 011302(R) (2020) - Published 14 July, 2020
Matthew Edmonds and Muneto Nitta
Phys. Rev. A 102, 011303(R) (2020) - Published 27 July, 2020
N. Takemura, M. Takiguchi, H. Sumikura, E. Kuramochi, A. Shinya, and M. Notomi
Phys. Rev. A 102, 011501(R) (2020) - Published 6 July, 2020
Deng-Gao Lai, Jin-Feng Huang, Xian-Li Yin, Bang-Pin Hou, Wenlin Li, David Vitali, Franco Nori, and Jie-Qiao Liao
Phys. Rev. A 102, 011502(R) (2020) - Published 13 July, 2020
Bing He, Qing Lin, Miguel Orszag, and Min Xiao
Phys. Rev. A 102, 011503(R) (2020) - Published 20 July, 2020
Valentina Gualtieri, Claudia Benedetti, and Matteo G. A. Paris
Phys. Rev. A 102, 012201 (2020) - Published 1 July, 2020
Xiaohua Wu and Tao Zhou
Phys. Rev. A 102, 012202 (2020) - Published 6 July, 2020
Ya Meng, Gang Chen, and Suotang Jia
Phys. Rev. A 102, 012203 (2020) - Published 7 July, 2020
Arun Kumar Pati, Chiranjib Mukhopadhyay, Sagnik Chakraborty, and Sibasish Ghosh
Phys. Rev. A 102, 012204 (2020) - Published 6 July, 2020
Agung Budiyono and Hermawan K. Dipojono
Phys. Rev. A 102, 012205 (2020) - Published 6 July, 2020
Fei Ming, Dong Wang, Xiao-Gang Fan, Wei-Nan Shi, Liu Ye, and Jing-Ling Chen
Phys. Rev. A 102, 012206 (2020) - Published 7 July, 2020
B. Kollár, A. Gilyén, I. Tkáčová, T. Kiss, I. Jex, and M. Štefaňák
Phys. Rev. A 102, 012207 (2020) - Published 7 July, 2020
Liqiang Liu and Haidong Yuan
Phys. Rev. A 102, 012208 (2020) - Published 8 July, 2020
J. J. Halliwell and C. Mawby
Phys. Rev. A 102, 012209 (2020) - Published 8 July, 2020
Macrorealism has been traditionally tested for systems described at each time by a single dichotomic variable. In this work, the authors develop a set of conditions which characterize macrorealism for many-valued variables, helping to shed light on certain experimental investigations based on three-level systems.
Xianzhi Huang, Xiaolong Ouyang, Wenqian Lian, Wengang Zhang, Xin Wang, Huili Zhang, Yefei Yu, Li He, Yanqing Liu, Xiuying Chang, Dong-Ling Deng, and Luming Duan
Phys. Rev. A 102, 012210 (2020) - Published 9 July, 2020
Mike Reppert, Deborah Reppert, Leonardo A. Pachon, and Paul Brumer
Phys. Rev. A 102, 012211 (2020) - Published 9 July, 2020
Phillip C. Burke, Jan Wiersig, and Masudul Haque
Phys. Rev. A 102, 012212 (2020) - Published 10 July, 2020
Juzar Thingna and Peter Talkner
Phys. Rev. A 102, 012213 (2020) - Published 13 July, 2020
Dario De Santis, Markus Johansson, Bogna Bylicka, Nadja K. Bernardes, and Antonio Acín
Phys. Rev. A 102, 012214 (2020) - Published 13 July, 2020
A. Ricottone, M. S. Rudner, and W. A. Coish
Phys. Rev. A 102, 012215 (2020) - Published 14 July, 2020
Takuya Hatomura and Go Kato
Phys. Rev. A 102, 012216 (2020) - Published 15 July, 2020
Patrice A. Camati, Jonas F. G. Santos, and Roberto M. Serra
Phys. Rev. A 102, 012217 (2020) - Published 20 July, 2020
Felix Thiel and David A. Kessler
Phys. Rev. A 102, 012218 (2020) - Published 21 July, 2020
Julian Huber, Peter Kirton, and Peter Rabl
Phys. Rev. A 102, 012219 (2020) - Published 27 July, 2020
Garreth Kemp, Ilya Sinayskiy, and Francesco Petruccione
Phys. Rev. A 102, 012220 (2020) - Published 27 July, 2020
Zhao-Yun Zeng, Lei Li, Baiyuan Yang, Jinpeng Xiao, and Xiaobing Luo
Phys. Rev. A 102, 012221 (2020) - Published 28 July, 2020
Kun Yang
Phys. Rev. A 102, 012222 (2020) - Published 29 July, 2020
Patrick Binder and Daniel Braun
Phys. Rev. A 102, 012223 (2020) - Published 29 July, 2020
Yunfan Wu, Rajiv Krishnakumar, Julián Martínez-Rincón, Benjamin K. Malia, Onur Hosten, and Mark A. Kasevich
Phys. Rev. A 102, 012224 (2020) - Published 30 July, 2020
Sumeet Khatri, Kunal Sharma, and Mark M. Wilde
Phys. Rev. A 102, 012401 (2020) - Published 6 July, 2020
Ying Li and Guyan Ni
Phys. Rev. A 102, 012402 (2020) - Published 6 July, 2020
Huan Cao, Chandrashekar Radhakrishnan, Ming Su, Md. Manirul Ali, Chao Zhang, Yun-Feng Huang, Tim Byrnes, Chuan-Feng Li, and Guang-Can Guo
Phys. Rev. A 102, 012403 (2020) - Published 6 July, 2020
Chithrabhanu Perumangatt, Alexander Lohrmann, and Alexander Ling
Phys. Rev. A 102, 012404 (2020) - Published 6 July, 2020
Santosh Kumar
Phys. Rev. A 102, 012405 (2020) - Published 6 July, 2020
Vimalesh Kumar Vimal and V. Subrahmanyam
Phys. Rev. A 102, 012406 (2020) - Published 7 July, 2020
Yasamin Mardani, Ali Shafiei, Milad Ghadimi, and Mehdi Abdi
Phys. Rev. A 102, 012407 (2020) - Published 7 July, 2020
Seung-Woo Lee, Jaewan Kim, and Wonmin Son
Phys. Rev. A 102, 012408 (2020) - Published 7 July, 2020
Palash Pandya, Omer Sakarya, and Marcin Wieśniak
Phys. Rev. A 102, 012409 (2020) - Published 7 July, 2020
Marco Chiani, Andrea Conti, and Moe Z. Win
Phys. Rev. A 102, 012410 (2020) - Published 9 July, 2020
Jianwei Xu, Lian-He Shao, and Shao-Ming Fei
Phys. Rev. A 102, 012411 (2020) - Published 16 July, 2020
Matteo Fadel and Manuel Gessner
Phys. Rev. A 102, 012412 (2020) - Published 10 July, 2020
Fernando Parisio
Phys. Rev. A 102, 012413 (2020) - Published 10 July, 2020
Kabgyun Jeong, Jaewan Kim, and Soojoon Lee
Phys. Rev. A 102, 012414 (2020) - Published 10 July, 2020
A. V. Uvarov, A. S. Kardashin, and J. D. Biamonte
Phys. Rev. A 102, 012415 (2020) - Published 15 July, 2020
Morteza Nikaeen, Mehdi Ramezani, and Alireza Bahrampour
Phys. Rev. A 102, 012416 (2020) - Published 15 July, 2020
Leonardo Banchi, Nicolás Quesada, and Juan Miguel Arrazola
Phys. Rev. A 102, 012417 (2020) - Published 15 July, 2020
Rozhin Yousefjani and Abolfazl Bayat
Phys. Rev. A 102, 012418 (2020) - Published 15 July, 2020
Shilin Huang, Michael Newman, and Kenneth R. Brown
Phys. Rev. A 102, 012419 (2020) - Published 16 July, 2020
Cornelia Spee
Phys. Rev. A 102, 012420 (2020) - Published 17 July, 2020
Saptarshi Roy, Tamoghna Das, and Aditi Sen(De)
Phys. Rev. A 102, 012421 (2020) - Published 20 July, 2020
Weinan Huang, Yichen Zhang, Ziyong Zheng, Yang Li, Bingjie Xu, and Song Yu
Phys. Rev. A 102, 012422 (2020) - Published 21 July, 2020
Patricio Fuentes, Josu Etxezarreta Martinez, Pedro M. Crespo, and Javier Garcia-Frias
Phys. Rev. A 102, 012423 (2020) - Published 22 July, 2020
Seongjeon Choi, Seok-Hyung Lee, and Hyunseok Jeong
Phys. Rev. A 102, 012424 (2020) - Published 24 July, 2020
Joseph X. Lin, Joseph A. Formaggio, Aram W. Harrow, and Anand V. Natarajan
Phys. Rev. A 102, 012425 (2020) - Published 28 July, 2020
Andre He, Benjamin Nachman, Wibe A. de Jong, and Christian W. Bauer
Phys. Rev. A 102, 012426 (2020) - Published 29 July, 2020
Mehregan Doroudiani and Vahid Karimipour
Phys. Rev. A 102, 012427 (2020) - Published 29 July, 2020
Saptarshi Roy and Arkaprabha Ghosal
Phys. Rev. A 102, 012428 (2020) - Published 30 July, 2020
Diego Paiva Pires, Augusto Smerzi, and Tommaso Macrì
Phys. Rev. A 102, 012429 (2020) - Published 30 July, 2020
S. Daraeizadeh, S. P. Premaratne, N. Khammassi, X. Song, M. Perkowski, and A. Y. Matsuura
Phys. Rev. A 102, 012601 (2020) - Published 2 July, 2020
Qin Feng, Tianfeng Feng, Yuling Tian, Maolin Luo, and Xiaoqi Zhou
Phys. Rev. A 102, 012602 (2020) - Published 2 July, 2020
Élie Gouzien, Floriane Brunel, Sébastien Tanzilli, and Virginia D'Auria
Phys. Rev. A 102, 012603 (2020) - Published 2 July, 2020
F. V. Gubarev, I. V. Dyakonov, M. Yu. Saygin, G. I. Struchalin, S. S. Straupe, and S. P. Kulik
Phys. Rev. A 102, 012604 (2020) - Published 2 July, 2020
Xiang Zhan, Kunkun Wang, Lei Xiao, Zhihao Bian, and Peng Xue
Phys. Rev. A 102, 012605 (2020) - Published 6 July, 2020
Li-Na Zheng, Lu Qi, Liu-Yong Cheng, Hong-Fu Wang, and Shou Zhang
Phys. Rev. A 102, 012606 (2020) - Published 6 July, 2020
N. Fabre, G. Maltese, F. Appas, S. Felicetti, A. Ketterer, A. Keller, T. Coudreau, F. Baboux, M. I. Amanti, S. Ducci, and P. Milman
Phys. Rev. A 102, 012607 (2020) - Published 6 July, 2020
Liyun Hu, M. Al-amri, Zeyang Liao, and M. S. Zubairy
Phys. Rev. A 102, 012608 (2020) - Published 6 July, 2020
Ri-Hua Zheng, Yi-Hao Kang, S.-L. Su, Jie Song, and Yan Xia
Phys. Rev. A 102, 012609 (2020) - Published 6 July, 2020
Hengyan Wang, Shijie Wei, Chao Zheng, Xiangyu Kong, Jingwei Wen, Xinfang Nie, Jun Li, Dawei Lu, and Tao Xin
Phys. Rev. A 102, 012610 (2020) - Published 10 July, 2020
H. F. Chau
Phys. Rev. A 102, 012611 (2020) - Published 13 July, 2020
Natalie Klco and Martin J. Savage
Phys. Rev. A 102, 012612 (2020) - Published 17 July, 2020
H. Jirari
Phys. Rev. A 102, 012613 (2020) - Published 16 July, 2020
Xiaodong Yang, Ran Liu, Jun Li, and Xinhua Peng
Phys. Rev. A 102, 012614 (2020) - Published 16 July, 2020
Karol Horodecki, Ryszard P. Kostecki, Roberto Salazar, and Michał Studziński
Phys. Rev. A 102, 012615 (2020) - Published 16 July, 2020
Chandan Kumar, Ritabrata Sengupta, and Arvind
Phys. Rev. A 102, 012616 (2020) - Published 16 July, 2020
S. Camalet
Phys. Rev. A 102, 012617 (2020) - Published 20 July, 2020
Zain Mehdi, Alexander K. Ratcliffe, and Joseph J. Hope
Phys. Rev. A 102, 012618 (2020) - Published 21 July, 2020
Natalie Klco and Martin J. Savage
Phys. Rev. A 102, 012619 (2020) - Published 22 July, 2020
Arghya Das, Anal Bhowmik, Narendra Nath Dutta, and Sonjoy Majumder
Phys. Rev. A 102, 012801 (2020) - Published 2 July, 2020
S. G. Porsev, U. I. Safronova, M. S. Safronova, P. O. Schmidt, A. I. Bondarev, M. G. Kozlov, I. I. Tupitsyn, and C. Cheung
Phys. Rev. A 102, 012802 (2020) - Published 6 July, 2020
Yan-Long Fu, Chang-Kai Li, Hai-Bo Sang, Wei Cheng, and Feng-Shou Zhang
Phys. Rev. A 102, 012803 (2020) - Published 7 July, 2020
Conny Glaser, Florian Karlewski, Julien Kluge, Jens Grimmel, Manuel Kaiser, Andreas Günther, Helge Hattermann, Markus Krutzik, and József Fortágh
Phys. Rev. A 102, 012804 (2020) - Published 7 July, 2020
Jijin Wang, Bin Ding, Xiaoxun Song, Yuanqing Shi, Xinyue Guo, Xuan Liu, Lei Wang, Mingxuan Wei, Pinyang Liu, Yuefeng Liu, Bitao Hu, Jorge E. Valdés, Vladimir A. Esaulov, Lin Chen, Yanling Guo, and Ximeng Chen
Phys. Rev. A 102, 012805 (2020) - Published 8 July, 2020
François Lique
Phys. Rev. A 102, 012806 (2020) - Published 9 July, 2020
Vladimir A. Yerokhin, Vojtěch Patkóš, Mariusz Puchalski, and Krzysztof Pachucki
Phys. Rev. A 102, 012807 (2020) - Published 13 July, 2020
Alba Jorge, Marko Horbatsch, and Tom Kirchner
Phys. Rev. A 102, 012808 (2020) - Published 15 July, 2020
Olga Lakhmanskaya, Malcolm Simpson, and Roland Wester
Phys. Rev. A 102, 012809 (2020) - Published 16 July, 2020
Grégoire Guillon, Maxence Lepers, and Pascal Honvault
Phys. Rev. A 102, 012810 (2020) - Published 16 July, 2020
S. G. Porsev and M. S. Safronova
Phys. Rev. A 102, 012811 (2020) - Published 20 July, 2020
S. A.-L. Schulz, A. A. Peshkov, R. A. Müller, R. Lange, N. Huntemann, Chr. Tamm, E. Peik, and A. Surzhykov
Phys. Rev. A 102, 012812 (2020) - Published 21 July, 2020
Russell B. Thompson
Phys. Rev. A 102, 012813 (2020) - Published 22 July, 2020
Jacek Komasa, Mariusz Puchalski, and Krzysztof Pachucki
Phys. Rev. A 102, 012814 (2020) - Published 23 July, 2020
Carlos A. Marante, Loren Greenman, Cynthia S. Trevisan, Thomas N. Rescigno, C. William McCurdy, and Robert R. Lucchese
Phys. Rev. A 102, 012815 (2020) - Published 24 July, 2020
Nenad Milojević, Ivan Mančev, Danilo Delibašić, and Dževad Belkić
Phys. Rev. A 102, 012816 (2020) - Published 27 July, 2020
Alejo Carreras, Gustavo Castellano, Silvina Segui, and Jorge Trincavelli
Phys. Rev. A 102, 012817 (2020) - Published 27 July, 2020
F. Grüll, A. B. Voitkiv, and C. Müller
Phys. Rev. A 102, 012818 (2020) - Published 27 July, 2020
Madhusree Roy Chowdhury, A. Mandal, A. Bhogale, H. Bansal, C. Bagdia, S. Bhattacharjee, J. M. Monti, R. D. Rivarola, and Lokesh C. Tribedi
Phys. Rev. A 102, 012819 (2020) - Published 28 July, 2020
M. Saito, H. Kubota, K. Yamasa, K. Suzuki, T. Majima, and H. Tsuchida
Phys. Rev. A 102, 012820 (2020) - Published 28 July, 2020
Grzegorz Kowzan, Hubert Cybulski, Piotr Wcisło, Michał Słowiński, Alexandra Viel, Piotr Masłowski, and Franck Thibault
Phys. Rev. A 102, 012821 (2020) - Published 28 July, 2020
Roy Shaham, Or Katz, and Ofer Firstenberg
Phys. Rev. A 102, 012822 (2020) - Published 30 July, 2020
The authors develop a quantum description of the spatial diffusion of a spin gas with a full account of the associated decay and quantum noise processes. The presented model is shown to agree with existing models in their respective applicable regimes while extending them by describing quantum correlations and the quantum noise of the Brownian motion.
Gustav Eklund, Jon Grumer, Stefan Rosén, MingChao Ji, Najeeb Punnakayathil, Anders Källberg, Ansgar Simonsson, Richard D. Thomas, Mark H. Stockett, Peter Reinhed, Patrik Löfgren, Mikael Björkhage, Mikael Blom, Paul S. Barklem, Henrik Cederquist, Henning Zettergren, and Henning T. Schmidt
Phys. Rev. A 102, 012823 (2020) - Published 30 July, 2020
Yongjun Cheng, Shi Liu, Song Bin Zhang, and Yong-Bo Tang
Phys. Rev. A 102, 012824 (2020) - Published 30 July, 2020
Yi Zhang, Meng-Shan Wu, Ying Qian, Kálmán Varga, Hui-Li Han, and Jun-Yi Zhang
Phys. Rev. A 102, 012825 (2020) - Published 31 July, 2020
M. Antonello et al. (AEgIS Collaboration)
Phys. Rev. A 102, 013101 (2020) - Published 2 July, 2020
Š. Krušič, A. Mihelič, K. Bučar, and M. Žitnik
Phys. Rev. A 102, 013102 (2020) - Published 2 July, 2020
J. M. Ngoko Djiokap and Anthony F. Starace
Phys. Rev. A 102, 013103 (2020) - Published 6 July, 2020
T. Bayer, Ch. Philipp, K. Eickhoff, and M. Wollenhaupt
Phys. Rev. A 102, 013104 (2020) - Published 6 July, 2020
Theoretical analysis and numerical simulations of electron vortices generated by ultrafast multiphoton ionization of alkali-metal atoms are performed. The results show excellent agreement with previous experiments while providing insights into regimes not accessible in current experimental setups.
Boyan T. Torosov, Svetoslav S. Ivanov, and Nikolay V. Vitanov
Phys. Rev. A 102, 013105 (2020) - Published 9 July, 2020
Mustapha Laatiaoui, Alexei A. Buchachenko, and Larry A. Viehland
Phys. Rev. A 102, 013106 (2020) - Published 10 July, 2020
A kinetic model for optical pumping in lutetium and lawrencium ions is developed. The theoretical results provide a basis for the development of a new spectroscopic technique for superheavy elements, based on state-dependent ion mobilities.
Murali Krishna Ganesa Subramanian, Robin Santra, and Ralph Welsch
Phys. Rev. A 102, 013107 (2020) - Published 16 July, 2020
Cheng Jin, Su-Ju Wang, Song-Feng Zhao, Anh-Thu Le, and C. D. Lin
Phys. Rev. A 102, 013108 (2020) - Published 20 July, 2020
HuiPeng Kang, Andrew S. Maxwell, Daniel Trabert, XuanYang Lai, Sebastian Eckart, Maksim Kunitski, Markus Schöffler, Till Jahnke, XueBin Bian, Reinhard Dörner, and Carla Figueira de Morisson Faria
Phys. Rev. A 102, 013109 (2020) - Published 20 July, 2020
Dmitri A. Romanov and Robert J. Levis
Phys. Rev. A 102, 013110 (2020) - Published 20 July, 2020
Marianna Lytova, Maria Richter, Felipe Morales, Olga Smirnova, Misha Ivanov, and Michael Spanner
Phys. Rev. A 102, 013111 (2020) - Published 22 July, 2020
Erik Lötstedt, Marcelo F. Ciappina, and Kaoru Yamanouchi
Phys. Rev. A 102, 013112 (2020) - Published 27 July, 2020
Rong Wang and Ying-Yu Niu
Phys. Rev. A 102, 013113 (2020) - Published 28 July, 2020
Akio Kawasaki, Boris Braverman, Edwin Pedrozo-Peñafiel, Chi Shu, Simone Colombo, Zeyang Li, and Vladan Vuletić
Phys. Rev. A 102, 013114 (2020) - Published 29 July, 2020
Andrew Ma, Alicia B. Magann, Tak-San Ho, and Herschel Rabitz
Phys. Rev. A 102, 013115 (2020) - Published 30 July, 2020
Thomas Pauly, Aaron Bondy, Kathryn R. Hamilton, Nicolas Douguet, Xiao-Min Tong, Dashavir Chetty, and Klaus Bartschat
Phys. Rev. A 102, 013116 (2020) - Published 30 July, 2020
Jiaqing Yan, Wenhai Xie, Min Li, Kun Liu, Siqiang Luo, Chuanpeng Cao, Keyu Guo, Wei Cao, Pengfei Lan, Qingbin Zhang, Yueming Zhou, and Peixiang Lu
Phys. Rev. A 102, 013117 (2020) - Published 31 July, 2020
Zhoutao Lei, Yuangang Deng, and Chaohong Lee
Phys. Rev. A 102, 013301 (2020) - Published 2 July, 2020
K. M. Mittal, S. I. Mistakidis, P. G. Kevrekidis, and P. Schmelcher
Phys. Rev. A 102, 013302 (2020) - Published 6 July, 2020
Jakub Janarek, Dominique Delande, Nicolas Cherroret, and Jakub Zakrzewski
Phys. Rev. A 102, 013303 (2020) - Published 6 July, 2020
Jieli Qin and Lu Zhou
Phys. Rev. A 102, 013304 (2020) - Published 6 July, 2020
Sheng-Xiong Deng, Tao Shi, and Su Yi
Phys. Rev. A 102, 013305 (2020) - Published 6 July, 2020
P. Bienias, S. Subhankar, Y. Wang, T-C. Tsui, F. Jendrzejewski, T. Tiecke, G. Juzeliūnas, L. Jiang, S. L. Rolston, J. V. Porto, and A. V. Gorshkov
Phys. Rev. A 102, 013306 (2020) - Published 7 July, 2020
V. Pastukhov
Phys. Rev. A 102, 013307 (2020) - Published 9 July, 2020
Atushi Tanaka, Takaaki Nakamura, and Taksu Cheon
Phys. Rev. A 102, 013308 (2020) - Published 10 July, 2020
Donghao Li, Lianghui Huang, Peng Peng, Guoqi Bian, Pengjun Wang, Zengming Meng, Liangchao Chen, and Jing Zhang
Phys. Rev. A 102, 013309 (2020) - Published 10 July, 2020
Gene Polovy, Erik Frieling, Denis Uhland, Julian Schmidt, and Kirk W. Madison
Phys. Rev. A 102, 013310 (2020) - Published 13 July, 2020
Vincent Mancois, Julien Barré, Chang Chi Kwong, Alain Olivetti, Pascal Viot, and David Wilkowski
Phys. Rev. A 102, 013311 (2020) - Published 14 July, 2020
Angel T. Gisbert, Nicola Piovella, and Romain Bachelard
Phys. Rev. A 102, 013312 (2020) - Published 14 July, 2020
Brendan C. Mulkerin, Xia-Ji Liu, and Hui Hu
Phys. Rev. A 102, 013313 (2020) - Published 15 July, 2020
G. Bougas, S. I. Mistakidis, G. M. Alshalan, and P. Schmelcher
Phys. Rev. A 102, 013314 (2020) - Published 15 July, 2020
Seong-Ho Shinn, Daniel Braun, and Uwe R. Fischer
Phys. Rev. A 102, 013315 (2020) - Published 16 July, 2020
Ke-Ji Chen, Fan Wu, Jianshen Hu, and Lianyi He
Phys. Rev. A 102, 013316 (2020) - Published 16 July, 2020
P. Bataille, A. Litvinov, I. Manai, J. Huckans, F. Wiotte, A. Kaladjian, O. Gorceix, E. Maréchal, B. Laburthe-Tolra, and M. Robert-de-Saint-Vincent
Phys. Rev. A 102, 013317 (2020) - Published 17 July, 2020
Johann Gan and Kaden R. A. Hazzard
Phys. Rev. A 102, 013318 (2020) - Published 17 July, 2020
Bojeong Seo, Peng Chen, Ziting Chen, Weijun Yuan, Mingchen Huang, Shengwang Du, and Gyu-Boong Jo
Phys. Rev. A 102, 013319 (2020) - Published 17 July, 2020
K. Suthar, Hrushikesh Sable, Rukmani Bai, Soumik Bandyopadhyay, Sukla Pal, and D. Angom
Phys. Rev. A 102, 013320 (2020) - Published 20 July, 2020
Philip Bleicker, Joachim Stolze, and Götz S. Uhrig
Phys. Rev. A 102, 013321 (2020) - Published 22 July, 2020
Marija Todorić, Bruno Klajn, Dario Jukić, and Hrvoje Buljan
Phys. Rev. A 102, 013322 (2020) - Published 23 July, 2020
M. Ögren and G. M. Kavoulakis
Phys. Rev. A 102, 013323 (2020) - Published 27 July, 2020
Maciej Łebek and Paweł Jakubczyk
Phys. Rev. A 102, 013324 (2020) - Published 29 July, 2020
F. Pascucci and L. Salasnich
Phys. Rev. A 102, 013325 (2020) - Published 29 July, 2020
Chen Avinadav, Dimitry Yankelev, Moshe Shuker, Ofer Firstenberg, and Nir Davidson
Phys. Rev. A 102, 013326 (2020) - Published 29 July, 2020
Two methods to stabilize the ratio between the interferometer signal and the actual rotation rate in point-source atom interferometry are introduced and experimentally verified. These methods could improve the stability of rotation measurements while maintaining sensitivity in point-source interferometry.
Chenggong Liang, Yuexin Huang, Feihong Liu, Yunbo Zhang, Guangcan Guo, and Ming Gong
Phys. Rev. A 102, 013327 (2020) - Published 30 July, 2020
Marcin Płodzień, Maciej Kościelski, Emilia Witkowska, and Alice Sinatra
Phys. Rev. A 102, 013328 (2020) - Published 31 July, 2020
Dynamical generation and storage of spin-squeezed states in few-body cold-atom systems within one-dimensional optical lattices are investigated theoretically through an exact diagonalization approach. The structure of the Mott-squeezed states is revealed by correlation functions on-site and between different sites.
Yufei Wang, Lei Su, Shuai Wang, Limin Hua, Lei Li, Deyuan Shen, Dingyuan Tang, Andrey Komarov, Mariusz Klimczak, Songnian Fu, Ming Tang, Xiahui Tang, and Luming Zhao
Phys. Rev. A 102, 013501 (2020) - Published 6 July, 2020
Megha Khokhar, Priya, and Rajesh V. Nair
Phys. Rev. A 102, 013502 (2020) - Published 6 July, 2020
M. S. Mirmoosa, G. A. Ptitcyn, R. Fleury, and S. A. Tretyakov
Phys. Rev. A 102, 013503 (2020) - Published 6 July, 2020
Lénárd Gulyás Oldal, Tamás Csizmadia, Peng Ye, Nandiga Gopalakrishna Harshitha, Amelle Zaïr, Subhendu Kahaly, Katalin Varjú, Miklós Füle, and Balázs Major
Phys. Rev. A 102, 013504 (2020) - Published 6 July, 2020
Fons van der Laan, René Reimann, Andrei Militaru, Felix Tebbenjohanns, Dominik Windey, Martin Frimmer, and Lukas Novotny
Phys. Rev. A 102, 013505 (2020) - Published 6 July, 2020
Ruoyu Liao, Chao Mei, Youjian Song, Ayhan Demircan, and Günter Steinmeyer
Phys. Rev. A 102, 013506 (2020) - Published 7 July, 2020
The problem of amplified spontaneous emission (ASE) noise in mode-locked lasers is revisited. Such lasers represent the foundation for optical frequency metrology, and the analytic formalism developed here will be an important guide on how one can probe and estimate this fundamental noise floor.
Yue Chang, Shuang-Ai Wan, and Jie Qin
Phys. Rev. A 102, 013507 (2020) - Published 9 July, 2020
Claudio Sanavio, József Zsolt Bernád, and André Xuereb
Phys. Rev. A 102, 013508 (2020) - Published 9 July, 2020
Ruchi and P. Senthilkumaran
Phys. Rev. A 102, 013509 (2020) - Published 10 July, 2020
Andrei A. Stepanenko and Maxim A. Gorlach
Phys. Rev. A 102, 013510 (2020) - Published 14 July, 2020
M. Yu. Basalaev, V. I. Yudin, D. V. Kovalenko, T. Zanon-Willette, and A. V. Taichenachev
Phys. Rev. A 102, 013511 (2020) - Published 14 July, 2020
Pablo Yanes-Thomas, Pablo Barberis-Blostein, and Marc Bienert
Phys. Rev. A 102, 013512 (2020) - Published 15 July, 2020
Ferenc Bodog, Matyas Mechler, Matyas Koniorczyk, and Peter Adam
Phys. Rev. A 102, 013513 (2020) - Published 23 July, 2020
Christian Koke, Changsuk Noh, and Dimitris G. Angelakis
Phys. Rev. A 102, 013514 (2020) - Published 27 July, 2020
S. Vignesh Raja, A. Govindarajan, A. Mahalingam, and M. Lakshmanan
Phys. Rev. A 102, 013515 (2020) - Published 29 July, 2020
A. A. Balakin, D. S. Levin, and S. A. Skobelev
Phys. Rev. A 102, 013516 (2020) - Published 29 July, 2020
P. Y. Wang, R. Herrero, M. Botey, Y. C. Cheng, and K. Staliunas
Phys. Rev. A 102, 013517 (2020) - Published 30 July, 2020
Valery E. Lobanov
Phys. Rev. A 102, 013518 (2020) - Published 30 July, 2020
Yongrui Wang and Alexey Belyanin
Phys. Rev. A 102, 013519 (2020) - Published 30 July, 2020
Aysan Bahari, Alexandra A. Zhdanova, Mariia Shutova, and Alexei V. Sokolov
Phys. Rev. A 102, 013520 (2020) - Published 31 July, 2020
Asha Devi, Sarath D. Gunapala, Mark I. Stockman, and Malin Premaratne
Phys. Rev. A 102, 013701 (2020) - Published 6 July, 2020
Çağın Ekici and Mehmet Salih Dinleyici
Phys. Rev. A 102, 013702 (2020) - Published 6 July, 2020
F. Kimiaee Asadi, S. C. Wein, and C. Simon
Phys. Rev. A 102, 013703 (2020) - Published 6 July, 2020
Stefan Ataman
Phys. Rev. A 102, 013704 (2020) - Published 6 July, 2020
ShengLi Zhang
Phys. Rev. A 102, 013705 (2020) - Published 6 July, 2020
Ming-Ti Zhou, Jian-Long Liu, Peng-Fei Sun, Zi-Ye An, Jun Li, Xiao-Hui Bao, and Jian-Wei Pan
Phys. Rev. A 102, 013706 (2020) - Published 6 July, 2020
G. P. Fedorov, V. B. Yursa, A. E. Efimov, K. I. Shiianov, A. Yu. Dmitriev, I. A. Rodionov, A. A. Dobronosova, D. O. Moskalev, A. A. Pishchimova, E. I. Malevannaya, and O. V. Astafiev
Phys. Rev. A 102, 013707 (2020) - Published 7 July, 2020
An artificial molecule comprised of two artificial atoms made of strongly coupled superconducting transmons is investigated under irradiation by intense light. The measured spectral features are very complex, but the authors show that they can be modeled and well explained in terms of dressed states of qubits.
Mahi R. Singh
Phys. Rev. A 102, 013708 (2020) - Published 7 July, 2020
Eduardo Sánchez-Burillo, Diego Porras, and Alejandro González-Tudela
Phys. Rev. A 102, 013709 (2020) - Published 8 July, 2020
Yan Zhang, Tiantian Huan, Ri-gui Zhou, and Hou Ian
Phys. Rev. A 102, 013710 (2020) - Published 9 July, 2020
Dong-Yeop Na, Jie Zhu, Weng C. Chew, and Fernando L. Teixeira
Phys. Rev. A 102, 013711 (2020) - Published 13 July, 2020
Walker Larson and Bahaa E. A. Saleh
Phys. Rev. A 102, 013712 (2020) - Published 13 July, 2020
I. C. Nodurft, S. U. Shringarpure, B. T. Kirby, T. B. Pittman, and J. D. Franson
Phys. Rev. A 102, 013713 (2020) - Published 14 July, 2020
D. Hagenmüller, S. Schütz, G. Pupillo, and J. Schachenmayer
Phys. Rev. A 102, 013714 (2020) - Published 14 July, 2020
Dionisis Stefanatos and Emmanuel Paspalakis
Phys. Rev. A 102, 013716 (2020) - Published 15 July, 2020
Rituraj, Meir Orenstein, and Shanhui Fan
Phys. Rev. A 102, 013717 (2020) - Published 15 July, 2020
Mihai Macovei, Jörg Evers, and Christoph H. Keitel
Phys. Rev. A 102, 013718 (2020) - Published 16 July, 2020
Emil Viñas Boström, Andrea D'Andrea, Michele Cini, and Claudio Verdozzi
Phys. Rev. A 102, 013719 (2020) - Published 17 July, 2020
L. A. Castro-Enriquez, L. F. Quezada, and A. Martín-Ruiz
Phys. Rev. A 102, 013720 (2020) - Published 17 July, 2020
Anette Messinger, Niclas Westerberg, and Stephen M. Barnett
Phys. Rev. A 102, 013721 (2020) - Published 21 July, 2020
Hongbin Liang, Yuguo Su, Xiao Xiao, Yanming Che, Barry C. Sanders, and Xiaoguang Wang
Phys. Rev. A 102, 013722 (2020) - Published 22 July, 2020
C. A. Downing, J. C. López Carreño, A. I. Fernández-Domínguez, and E. del Valle
Phys. Rev. A 102, 013723 (2020) - Published 23 July, 2020
Aleksei Konovalov and Giovanna Morigi
Phys. Rev. A 102, 013724 (2020) - Published 24 July, 2020
A comprehensive study of light-matter interaction in the limit of dense atomic clouds is performed. The investigation includes the quantum interference between many complex channels and the validity of the approach is tested on hydrogen transitions.
Maxime J. Jacquet and Friedrich König
Phys. Rev. A 102, 013725 (2020) - Published 27 July, 2020
Eduardo Sánchez-Burillo, Alejandro González-Tudela, and Carlos Gonzalez-Ballestero
Phys. Rev. A 102, 013726 (2020) - Published 28 July, 2020
A quantum description of the motional degrees of freedom of a single quantum emitter in waveguide QED is presented. The study is relevant for experiments in the low-kinetic-energy regime, opening the way to using the motional degrees of freedom as a resource for quantum technologies.
Fatih Dinc
Phys. Rev. A 102, 013727 (2020) - Published 31 July, 2020
Parveen Kumar and Kyrylo Snizhko
Phys. Rev. A 102, 016401 (2020) - Published 23 July, 2020
Matthew A. Hunt, Igor V. Lerner, Igor V. Yurkevich, and Yuval Gefen
Phys. Rev. A 102, 016402 (2020) - Published 23 July, 2020
Y. Komninos, Th. Mercouris, and C. A. Nicolaides
Phys. Rev. A 102, 019901 (2020) - Published 2 July, 2020
Du Ran, Wu-Jiang Shan, Zhi-Cheng Shi, Zhen-Biao Yang, Jie Song, and Yan Xia
Phys. Rev. A 102, 019902 (2020) - Published 17 July, 2020
Hamid Reza Hamedi, Emmanuel Paspalakis, Giedrius Žlabys, Gediminas Juzeliūnas, and Julius Ruseckas
Phys. Rev. A 102, 019903 (2020) - Published 22 July, 2020
G. P. Teja, Christoph Simon, and Sandeep K. Goyal
Phys. Rev. A 102, 019904 (2020) - Published 27 July, 2020