Volume 5, Issue 3 (partial) July - September 2023 | | Advertisement | The first published articles from PRX Life, APS's new interdisciplinary, open-access journal exclusively for quantitative biological research, are now online. Access highly selective research at the intersection of physics and biology every month by signing up for alerts. | | | | | | Advertisement 2024 Committee Nominations are currently open, and will close August 4. Please nominate colleagues (or yourself). Service by APS's diverse, talented, and engaged membership strengthens our community and enhances the leadership skills of committee members. | | | | | Advertisement APS has joined the Physics World Jobs Partner Network, in partnership with IOP Publishing. The platform gives job-seekers and employers a streamlined search experience, tailored to their specific needs. Employers can now access a new tiered pricing structure and volume discounts, post six free 14-day basic job postings per year, free 60-day listings for internships or summer jobs, and better advertise vacancies across and beyond the network. Create an account today! | | | | | Not an APS member? Join today to start connecting with a community of more than 50,000 physicists. | | | | Editors' Suggestion Paul Hamann, Linda Kordts, Alexey Filinov, Michael Bonitz, Tobias Dornheim, and Jan Vorberger Phys. Rev. Research 5, 033039 (2023) – Published 21 July 2023 | This paper provides confirmation that a roton-type correlation effect manifest itself in warm dense hydrogen. | | | | | | Letter Dian Wu, Riccardo Rossi, Filippo Vicentini, and Giuseppe Carleo Phys. Rev. Research 5, L032001 (2023) – Published 5 July 2023 | A recurrent neural network with a linear memory update is proposed to exactly represent any matrix product state (MPS) and is further generalized to 2D lattices using a multilinear memory update. It supports perfect sampling and wave-function evaluation in polynomial time, provides exact representation of an area law of entanglement entropy, and outperforms MPS by orders of magnitude in parameter efficiency. | | | | | | Letter Bitan Roy and Vladimir Juričić Phys. Rev. Research 5, L032002 (2023) – Published 10 July 2023 | Fractional Dirac materials, featuring a fractional energy-momentum relation, can either manifest unconventional quantum critical phenomena driven by local Hubbard-like interactions or harbor a two-fluid quantum system, with a conventional Dirac-liquid component, tuned by the long-range Coulomb interaction. | | | | | | Letter Leon Carl, Rodrigo Rosa-Medina, Sebastian D. Huber, Tilman Esslinger, Nishant Dogra, and Tena Dubcek Phys. Rev. Research 5, L032003 (2023) – Published 11 July 2023 | A comprehensive overview of the phase diagram, transitions, and low-energy excitations in a two-component spin Bose-Hubbard system with photon-mediated interactions is provided. The system features emergent antiferromagnetic ordered phases, stabilized by the interplay of short- and global-range interactions, and spin-exchange excitations with a tunable gap. It can be readily realized in cold-atom experiments with optical cavities. | | | | | | Letter G. R. M. Robb, J. G. M. Walker, G.-L. Oppo, and T. A. Ackemann Phys. Rev. Research 5, L032004 (2023) – Published 11 July 2023 | Bose-Einstein condensate illuminated by an optical pump field and its reflection from a mirror could realize dynamical behavior demonstrated by the quantum Hamiltonian mean-field model, a paradigmatic model of long-range interacting systems. | | | | | | Letter Tao Yuan, Chao Zeng, Yi-Yi Mao, Fei-Fei Wu, Yan-Jun Xie, Wen-Zhuo Zhang, Han-Ning Dai, Yu-Ao Chen, and Jian-Wei Pan Phys. Rev. Research 5, L032005 (2023) – Published 12 July 2023 | An experimental demonstration of efficient and robust edge-to-edge transport of atomic momentum states in a one-dimensional Su-Schrieffer-Heeger model, which is realized in a time-dependent synthetic lattice of ultracold atoms. | | | | | | Letter Nicolas Fabre, Andrei B. Klimov, Romain Murenzi, Jean-Pierre Gazeau, and Luis L. Sánchez-Soto Phys. Rev. Research 5, L032006 (2023) – Published 12 July 2023 | The Majorana stellar visualization of quantum spins in terms of points on the Bloch sphere is extended to quantum states carrying orbital angular momentum in terms of points on the cylinder. | | | | | | Letter Zhi-Cheng Shi, Cheng Zhang, Li-Tuo Shen, Jie Song, Yan Xia, and X. X. Yi Phys. Rev. Research 5, L032008 (2023) – Published 14 July 2023 | A concatenated approach is developed for achieving high-precision quantum control, accessible by using arbitrary time-dependent pulse shapes. The system evolution is robust against all kinds of errors without needing to satisfy adiabatic conditions. | | | | | | Letter Lars Pause, Tilman Preuschoff, Dominik Schäffner, Malte Schlosser, and Gerhard Birkl Phys. Rev. Research 5, L032009 (2023) – Published 17 July 2023 | A demonstrated modular architecture for sustained quantum computing with ultracold atoms makes use of discrete functional modules for efficient preparation and delivery of atomic qubits from an autonomous reservoir that are operated in parallel and spatially separated. The presented results unlock a path to continuous operation of individual-atom tweezer arrays in quantum science. | | | | | | Letter Uttam Singh, Jarosław K. Korbicz, and Nicolas J. Cerf Phys. Rev. Research 5, L032010 (2023) – Published 17 July 2023 | It is shown that work extraction from energy-bounded Gaussian states under Gaussian unitaries is practically impossible, as it comes with an exponentially small probability. This no-go theorem reveals a fundamental limitation on the quantum thermodynamical usefulness of Gaussian components. | | | | | | Letter D. C. W. Foo, N. Swain, P. Sengupta, G. Lemarié, and S. Adam Phys. Rev. Research 5, L032011 (2023) – Published 20 July 2023 | The addition of a confining potential allows a noninteracting disordered system to have superexponentially (Gaussian) localized wave functions and an interacting disordered system to undergo a localization transition. Gaussian localization shifts the quantum avalanche critical dimension from d = 1 to d = 2, allowing the MBL phase to exist in low-dimensional systems. | | | | | | Letter Nicolas Lenzing, David Krüger, and Michael Potthoff Phys. Rev. Research 5, L032012 (2023) – Published 21 July 2023 | The geometrical spin torque is boosted by gapless magnon excitations in a correlated itinerant antiferromagnet. | | | | | | Letter Nadia Bihari Padhan and Rahul Pandit Phys. Rev. Research 5, L032013 (2023) – Published 21 July 2023 | To address the collective motion of swimming organisms encapsulated in a droplet, an active-hydrodynamic framework is constructed for assemblies of contractile swimmers inside a binary-fluid droplet. At low activity, this yields a self-propelling droplet whose center of mass (CM) displays rectilinear motion. With increasing activity, this CM displays Lévy-walk-type super-diffusive motion, and the droplet interface exhibits multifractal fluctuations. | | | | | | Letter Ruixiang Zhou, Xuefeng Zhang, and Gang Li Phys. Rev. Research 5, L032014 (2023) – Published 25 July 2023 | Using advanced many-body techniques, the intricate relationship between Ruderman-Kittel-Kasuya-Yosida and Kondo couplings in Kondo lattice models on square and triangular lattices is elucidated, revealing the significant influence of geometric frustration on the formation of distinct magnetic orders and the evolution of these systems upon doping. | | | | | | Letter Songbo Xie, Daniel Younis, and Joseph H. Eberly Phys. Rev. Research 5, L032015 (2023) – Published 28 July 2023 | Evidence is found that sheds light on the origin of entanglement sudden death (ESD), a phenomenon characterized by anomalously abrupt decay of quantum entanglement. By identifying a trigger state that initiates ESD, this discovery suggests that systems involving multiple parties exhibit increased robustness against this disruptive effect. | | | | | | Christopher Oliver, Aaron Smith, Thomas Easton, Grazia Salerno, Vera Guarrera, Nathan Goldman, Giovanni Barontini, and Hannah M. Price Phys. Rev. Research 5, 033001 (2023) – Published 5 July 2023 | | | Kamran Akbari, Will Salmon, Franco Nori, and Stephen Hughes Phys. Rev. Research 5, 033002 (2023) – Published 5 July 2023 | | | Elisa Da Ros, Simon Kanthak, Erhan Sağlamyürek, Mustafa Gündoğan, and Markus Krutzik Phys. Rev. Research 5, 033003 (2023) – Published 5 July 2023 | | | Ikumi Kobayashi and Shin-ichi Sasa Phys. Rev. Research 5, 033004 (2023) – Published 5 July 2023 | | | Gokul Nalupurackal, Kingshuk Panja, Snigdhadev Chakraborty, Srestha Roy, Jayesh Goswami, Basudev Roy, and Rajesh Singh Phys. Rev. Research 5, 033005 (2023) – Published 5 July 2023 | | | Markus J. Schmidt and Thomas Rösgen Phys. Rev. Research 5, 033006 (2023) – Published 5 July 2023 | | | Dennis Wawrzik and Jeroen van den Brink Phys. Rev. Research 5, 033007 (2023) – Published 5 July 2023 | | | Ashwin Singh, Lothar Maisenbacher, Ziguang Lin, Jeremy J. Axelrod, Cristian D. Panda, and Holger Müller Phys. Rev. Research 5, 033008 (2023) – Published 5 July 2023 | | | Eli Newby, Jorge Gómez Tejeda Zañudo, and Réka Albert Phys. Rev. Research 5, 033009 (2023) – Published 5 July 2023 | | | Dong Hwan Kim, Yonggi Jo, Duk Y. Kim, Taek Jeong, Jihwan Kim, Nam Hun Park, Zaeill Kim, and Su-Yong Lee Phys. Rev. Research 5, 033010 (2023) – Published 6 July 2023 | | | Mauro Cirio, Neill Lambert, Pengfei Liang, Po-Chen Kuo, Yueh-Nan Chen, Paul Menczel, Ken Funo, and Franco Nori Phys. Rev. Research 5, 033011 (2023) – Published 7 July 2023 | | | John J. McCord, Shruti Dogra, and Gheorghe Sorin Paraoanu Phys. Rev. Research 5, 033012 (2023) – Published 7 July 2023 | | | Gunnar F. Lange, Adrien Bouhon, and Robert-Jan Slager Phys. Rev. Research 5, 033013 (2023) – Published 7 July 2023 | | | Ryosuke Yoshii and Hisao Hayakawa Phys. Rev. Research 5, 033014 (2023) – Published 7 July 2023 | | | A. Iorio, A. Crippa, B. Turini, S. Salimian, M. Carrega, L. Chirolli, V. Zannier, L. Sorba, E. Strambini, F. Giazotto, and S. Heun Phys. Rev. Research 5, 033015 (2023) – Published 7 July 2023 | | | Pol Alonso-Cuevillas Ferrer, Oleg M. Yevtushenko, and Andreas Weichselbaum Phys. Rev. Research 5, 033016 (2023) – Published 10 July 2023 | | | Roman Borisyuk, Alexander Khibnik, Arun Neru Balachandar, and Joël Tabak Phys. Rev. Research 5, 033017 (2023) – Published 10 July 2023 | | | Benjamin Yadin, Benjamin Morris, and Kay Brandner Phys. Rev. Research 5, 033018 (2023) – Published 10 July 2023 | | | Jason Gavriel, Daniel Herr, Alexis Shaw, Michael J. Bremner, Alexandru Paler, and Simon J. Devitt Phys. Rev. Research 5, 033019 (2023) – Published 10 July 2023 | | | Megan Stickler, William Ott, Zachary P. Kilpatrick, Krešimir Josić, and Bhargav R. Karamched Phys. Rev. Research 5, 033020 (2023) – Published 10 July 2023 | | | Mathieu Roget, Hachem Kadri, and Giuseppe Di Molfetta Phys. Rev. Research 5, 033021 (2023) – Published 11 July 2023 | | | Stefan Donsa, Fabian Lackner, Joachim Burgdörfer, Michael Bonitz, Benedikt Kloss, Angel Rubio, and Iva Březinová Phys. Rev. Research 5, 033022 (2023) – Published 12 July 2023 | | | Yue Kris Wu and Julijana Gjorgjieva Phys. Rev. Research 5, 033023 (2023) – Published 12 July 2023 | Neuronal nonlinearity and short-term plasticity affect inhibition stabilization, the paradoxical effect, and the relationship between the two. | | | | | | Andrea Di Carli, Robbie Cruickshank, Matthew Mitchell, Arthur La Rooij, Stefan Kuhr, Charles E. Creffield, and Elmar Haller Phys. Rev. Research 5, 033024 (2023) – Published 12 July 2023 | | | Faris Abualnaja, Wenkun He, Aleksey Andreev, Mervyn Jones, and Zahid Durrani Phys. Rev. Research 5, 033025 (2023) – Published 13 July 2023 | | | Yun-Mei Li Phys. Rev. Research 5, 033026 (2023) – Published 13 July 2023 | | | Tzu-Chao Hung, Roberto Robles, Brian Kiraly, Julian H. Strik, Bram A. Rutten, Alexander A. Khajetoorians, Nicolas Lorente, and Daniel Wegner Phys. Rev. Research 5, 033027 (2023) – Published 14 July 2023 | | | Yi-Hsuan Liu, Wei-Lin Tu, Gia-Wei Chern, and Ting-Kuo Lee Phys. Rev. Research 5, 033028 (2023) – Published 14 July 2023 | | | J. Rekier, S. A. Triana, A. Trinh, and B. Buffett Phys. Rev. Research 5, 033029 (2023) – Published 14 July 2023 | | | Abdallah Daddi-Moussa-Ider, Yuto Hosaka, Andrej Vilfan, and Ramin Golestanian Phys. Rev. Research 5, 033030 (2023) – Published 14 July 2023 | | | Tsung-Cheng Lu and Sagar Vijay Phys. Rev. Research 5, 033031 (2023) – Published 17 July 2023 | | | Matthew T. Eiles, Alexander Eisfeld, and Jan M. Rost Phys. Rev. Research 5, 033032 (2023) – Published 17 July 2023 | | | M. Crisanti, A. O. Leonov, R. Cubitt, A. Labh, H. Wilhelm, Marcus P. Schmidt, and C. Pappas Phys. Rev. Research 5, 033033 (2023) – Published 18 July 2023 | | | Yorgo Sawaya, George Issa, and Sarah E. Marzen Phys. Rev. Research 5, 033034 (2023) – Published 18 July 2023 | | | Benjamin Cramer, Markus Kreft, Sebastian Billaudelle, Vitali Karasenko, Aron Leibfried, Eric Müller, Philipp Spilger, Johannes Weis, Johannes Schemmel, Miguel A. Muñoz, Viola Priesemann, and Johannes Zierenberg Phys. Rev. Research 5, 033035 (2023) – Published 19 July 2023 | | | M. Mazzanti, R. Gerritsma, R. J. C. Spreeuw, and A. Safavi-Naini Phys. Rev. Research 5, 033036 (2023) – Published 19 July 2023 | | | Yuuya Chiba and Akira Shimizu Phys. Rev. Research 5, 033037 (2023) – Published 20 July 2023 | | | Oriana K. Diessel, Sebastian Diehl, Nicolò Defenu, Achim Rosch, and Alessio Chiocchetta Phys. Rev. Research 5, 033038 (2023) – Published 20 July 2023 | | | Editors' Suggestion Paul Hamann, Linda Kordts, Alexey Filinov, Michael Bonitz, Tobias Dornheim, and Jan Vorberger Phys. Rev. Research 5, 033039 (2023) – Published 21 July 2023 | This paper provides confirmation that a roton-type correlation effect manifest itself in warm dense hydrogen. | | | | | | Xinlei Zhao, Peng-Jie Guo, Fengjie Ma, and Zhong-Yi Lu Phys. Rev. Research 5, 033040 (2023) – Published 21 July 2023 | | | Shi-Xin Zhang, Zhou-Quan Wan, and Hong Yao Phys. Rev. Research 5, 033041 (2023) – Published 21 July 2023 | | | Jan Wiersig Phys. Rev. Research 5, 033042 (2023) – Published 21 July 2023 | | | Maximilian Kotz and Carsten Timm Phys. Rev. Research 5, 033043 (2023) – Published 24 July 2023 | | | Harshitra Mahalingam, B. A. Olsen, and A. Rodin Phys. Rev. Research 5, 033044 (2023) – Published 25 July 2023 | | | Le Hu and Andrew N. Jordan Phys. Rev. Research 5, 033045 (2023) – Published 25 July 2023 | | | Menghan Song, Jiarui Zhao, Chengkang Zhou, and Zi Yang Meng Phys. Rev. Research 5, 033046 (2023) – Published 25 July 2023 | | | Luca Argenti and Eva Lindroth Phys. Rev. Research 5, 033047 (2023) – Published 25 July 2023 | | | Lukas W. Perner, Gar-Wing Truong, David Follman, Maximilian Prinz, Georg Winkler, Stephan Puchegger, Garrett D. Cole, and Oliver H. Heckl Phys. Rev. Research 5, 033048 (2023) – Published 25 July 2023 | | | Aditya Jain, Pavithran Iyer, Stephen D. Bartlett, and Joseph Emerson Phys. Rev. Research 5, 033049 (2023) – Published 25 July 2023 | | | John W. Villanova, Allen O. Scheie, D. Alan Tennant, Satoshi Okamoto, and Tom Berlijn Phys. Rev. Research 5, 033050 (2023) – Published 25 July 2023 | | | K. Kawasaki, G. Cristoforetti, T. Idesaka, Y. Hironaka, D. Tanaka, D. Batani, S. Fujioka, L. A. Gizzi, M. Hata, T. Johzaki, K. Katagiri, R. Kodama, S. Matsuo, H. Nagatomo, Ph. Nicolai, N. Ozaki, Y. Sentoku, R. Takizawa, A. Yogo, H. Yamada, and K. Shigemori Phys. Rev. Research 5, 033051 (2023) – Published 25 July 2023 | | | Madhav Mohan, Robert de Keijzer, and Servaas Kokkelmans Phys. Rev. Research 5, 033052 (2023) – Published 25 July 2023 | | | Nicholas S. Nye Phys. Rev. Research 5, 033053 (2023) – Published 26 July 2023 | | | Priyanka Iyer, Roland G. Winkler, Dmitry A. Fedosov, and Gerhard Gompper Phys. Rev. Research 5, 033054 (2023) – Published 26 July 2023 | | | Josu Etxezarreta Martinez, Patricio Fuentes, Antonio deMarti iOlius, Javier Garcia-Frias, Javier Rodríguez Fonollosa, and Pedro M. Crespo Phys. Rev. Research 5, 033055 (2023) – Published 26 July 2023 | | | A. Saharyan, B. Rousseaux, Z. Kis, S. Stryzhenko, and S. Guérin Phys. Rev. Research 5, 033056 (2023) – Published 26 July 2023 | | | Peter Kling and Enno Giese Phys. Rev. Research 5, 033057 (2023) – Published 27 July 2023 | | | Paolo Molignini, Oscar Arandes, and Emil J. Bergholtz Phys. Rev. Research 5, 033058 (2023) – Published 27 July 2023 | | | Koichi Miyamoto Phys. Rev. Research 5, 033059 (2023) – Published 28 July 2023 | | | Arkopal Dutt, Edwin Pednault, Chai Wah Wu, Sarah Sheldon, John Smolin, Lev Bishop, and Isaac L. Chuang Phys. Rev. Research 5, 033060 (2023) – Published 28 July 2023 | | | Priyanka Maity, Andreas Bittracher, Péter Koltai, and Jörg Schumacher Phys. Rev. Research 5, 033061 (2023) – Published 28 July 2023 | | | Bryce Fore, Jane M. Kim, Giuseppe Carleo, Morten Hjorth-Jensen, Alessandro Lovato, and Maria Piarulli Phys. Rev. Research 5, 033062 (2023) – Published 31 July 2023 | | | Natalia E. Koval, Fabiana Da Pieve, Bin Gu, Daniel Muñoz-Santiburcio, Jorge Kohanoff, and Emilio Artacho Phys. Rev. Research 5, 033063 (2023) – Published 31 July 2023 | | | Tomonori Matsushita and Holger F. Hofmann Phys. Rev. Research 5, 033064 (2023) – Published 31 July 2023 | | | Jie Chen, Maobin Hu, and Jinde Cao Phys. Rev. Research 5, 033065 (2023) – Published 31 July 2023 | | | Xiao-yu Chen, Maoke Miao, Rui Yin, and Jiantao Yuan Phys. Rev. Research 5, 033066 (2023) – Published 31 July 2023 | | | Kaoru Mizuta Phys. Rev. Research 5, 033067 (2023) – Published 31 July 2023 | | | Hajime Yoshino Phys. Rev. Research 5, 033068 (2023) – Published 31 July 2023 | | | Ipsita Mandal Phys. Rev. Research 5, 039001 (2023) – Published 31 July 2023 | | | | |
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