Logical and thermodynamical reversibility: Optimized experimental implementation of the not operation
Salambô Dago and Ludovic Bellon
Phys. Rev. E 108, L022101 (2023) - Published 2 August, 2023
Yasuhiro Yamada and Kensuke Inaba
Phys. Rev. E 108, 024307 (2023) - Published 17 August, 2023
The dynamics of a collection of coupled neurons resemble that of vortices in a commonly studied two-dimensional lattice model, a finding that could help in understanding brain function and dysfunction.
Rafael A. Bittencourt, H. B. de B. Pereira, M. A. Moret, S. Galam, and I. C. da Cunha Lima
Phys. Rev. E 108, 024314 (2023) - Published 29 August, 2023
A new model could predict the impacts of policy changes on career progression prior to their implementation.
Satyaki Kundu, Ranjan Kumar Patel, Srimanta Middey, and Bhavtosh Bansal
Phys. Rev. E 108, 024101 (2023) - Published 2 August, 2023
Dynamic hysteresis is a delay in the response of a bistable system because it cannot keep up with the rate of change of a driving field. The authors study this phenomenon experimentally for a metal-insulator transition in a thin film, and show theoretically that the system exhibits power-law scaling with a nonuniversal exponent.
Zhiyi Li, Zongzheng Zhou, Sheng Fang, and Youjin Deng
Phys. Rev. E 108, 024129 (2023) - Published 15 August, 2023
In this article, a worm algorithm is used to study the problem of the Ising model on a complete graph. The approach shows connections between different representations of the model and leads to a better understanding of its scaling properties and critical behavior.
A. K. Hartmann and A. P. Young
Phys. Rev. E 108, 024142 (2023) - Published 28 August, 2023
The authors numerically investigate the Ising spin glass state at zero temperature in two dimensions. They find a single ground state, in accordance with the droplet model, and also show that a single power law describes corrections to this result down to the smallest sizes.
Christina L. Hueschen, Alexander R. Dunn, and Rob Phillips
Phys. Rev. E 108, 024610 (2023) - Published 24 August, 2023
The collective motion of animal herds and other biological systems sometimes takes place in an environment with a complex geometrical structure. In this paper, the authors study such active matter systems on arbitrary curved surfaces and work towards a better understanding of various real-life systems.
Salambô Dago and Ludovic Bellon
Phys. Rev. E 108, L022101 (2023) - Published 2 August, 2023
Md Nahid Hasan, Taylor E. Greenwood, Robert G. Parker, Yong Lin Kong, and Pai Wang
Phys. Rev. E 108, L022201 (2023) - Published 3 August, 2023
P. A. Glendinning and D. J. W. Simpson
Phys. Rev. E 108, L022202 (2023) - Published 3 August, 2023
Maximilian F. I. Kieler and Arnd Bäcker
Phys. Rev. E 108, L022203 (2023) - Published 8 August, 2023
Jinjie Zhu and Marius E. Yamakou
Phys. Rev. E 108, L022204 (2023) - Published 10 August, 2023
Wei Zhu, Hong-Kun Zhang, and P. G. Kevrekidis
Phys. Rev. E 108, L022301 (2023) - Published 18 August, 2023
Max Staats, Matthias Thamm, and Bernd Rosenow
Phys. Rev. E 108, L022302 (2023) - Published 24 August, 2023
Ramu Kumar Yadav, M. Suman Kalyan, Rajeev Kapri, and Abhishek Chaudhuri
Phys. Rev. E 108, L022401 (2023) - Published 17 August, 2023
Anoop Mutneja and Smarajit Karmakar
Phys. Rev. E 108, L022601 (2023) - Published 7 August, 2023
Naftali R. Smith
Phys. Rev. E 108, L022602 (2023) - Published 18 August, 2023
Luis G. MacDowell
Phys. Rev. E 108, L022801 (2023) - Published 22 August, 2023
Arnold Bachrach and Yaniv Edery
Phys. Rev. E 108, L022901 (2023) - Published 4 August, 2023
Ruben Lier, Charlie Duclut, Stefano Bo, Jay Armas, Frank Jülicher, and Piotr Surówka
Phys. Rev. E 108, L023101 (2023) - Published 2 August, 2023
Vincenzo Maria Schimmenti, Federico Lanza, Alex Hansen, Silvio Franz, Alberto Rosso, Laurent Talon, and Andrea De Luca
Phys. Rev. E 108, L023102 (2023) - Published 9 August, 2023
Vidushi Sharma, Lee A. Collins, and Alexander J. White
Phys. Rev. E 108, L023201 (2023) - Published 1 August, 2023
C. R. Weber, D. S. Clark, D. T. Casey, G. N. Hall, O. Jones, O. Landen, A. Pak, and V. A. Smalyuk
Phys. Rev. E 108, L023202 (2023) - Published 16 August, 2023
Satyaki Kundu, Ranjan Kumar Patel, Srimanta Middey, and Bhavtosh Bansal
Phys. Rev. E 108, 024101 (2023) - Published 2 August, 2023
Dynamic hysteresis is a delay in the response of a bistable system because it cannot keep up with the rate of change of a driving field. The authors study this phenomenon experimentally for a metal-insulator transition in a thin film, and show theoretically that the system exhibits power-law scaling with a nonuniversal exponent.
Tjark Heitmann, Jonas Richter, Jacek Herbrych, Jochen Gemmer, and Robin Steinigeweg
Phys. Rev. E 108, 024102 (2023) - Published 3 August, 2023
Yoshihiko Nishikawa, Werner Krauth, and A. C. Maggs
Phys. Rev. E 108, 024103 (2023) - Published 3 August, 2023
Hong Tao, Yuguo Su, Xingyu Zhang, Jing Liu, and Xiaoguang Wang
Phys. Rev. E 108, 024104 (2023) - Published 3 August, 2023
Alhun Aydin and Altug Sisman
Phys. Rev. E 108, 024105 (2023) - Published 4 August, 2023
Zhihu Yang
Phys. Rev. E 108, 024106 (2023) - Published 4 August, 2023
Alberto Mayorgas, Julio Guerrero, and Manuel Calixto
Phys. Rev. E 108, 024107 (2023) - Published 4 August, 2023
Taichi Haruna and Tomohiro Shirakawa
Phys. Rev. E 108, 024108 (2023) - Published 7 August, 2023
Nikolai Lebovka, Mykhaylo Petryk, Mykhailo O. Tatochenko, and Nikolai V. Vygornitskii
Phys. Rev. E 108, 024109 (2023) - Published 7 August, 2023
Fan Zhang, Jiayin Gu, and H. T. Quan
Phys. Rev. E 108, 024110 (2023) - Published 7 August, 2023
Lucas S. Flores, Mendeli H. Vainstein, Heitor C. M. Fernandes, and Marco A. Amaral
Phys. Rev. E 108, 024111 (2023) - Published 7 August, 2023
Takahiro Fukui, Tsuneya Yoshida, and Yasuhiro Hatsugai
Phys. Rev. E 108, 024112 (2023) - Published 7 August, 2023
Monika Richter-Laskowska, Marcin Kurpas, and Maciej M. Maśka
Phys. Rev. E 108, 024113 (2023) - Published 7 August, 2023
Samantha Linn and Sean D. Lawley
Phys. Rev. E 108, 024114 (2023) - Published 8 August, 2023
Francesco Andreucci, Stefano Lepri, Stefano Ruffo, and Andrea Trombettoni
Phys. Rev. E 108, 024115 (2023) - Published 8 August, 2023
E. Can Artun and A. Nihat Berker
Phys. Rev. E 108, 024116 (2023) - Published 8 August, 2023
Deepak Gupta, Sabine H. L. Klapp, and David A. Sivak
Phys. Rev. E 108, 024117 (2023) - Published 9 August, 2023
Sasiri Juliana Vargas Urbano, Diego Luis González, and Gabriel Téllez
Phys. Rev. E 108, 024118 (2023) - Published 10 August, 2023
Takaaki Monnai
Phys. Rev. E 108, 024119 (2023) - Published 11 August, 2023
André Neves Ribeiro
Phys. Rev. E 108, 024120 (2023) - Published 11 August, 2023
Urvashi Nakul and Manoj Gopalakrishnan
Phys. Rev. E 108, 024121 (2023) - Published 11 August, 2023
Daniel Silva, Gloria M. Buendía, and Per Arne Rikvold
Phys. Rev. E 108, 024122 (2023) - Published 11 August, 2023
Changwei Huang, Yuqin Li, and Luoluo Jiang
Phys. Rev. E 108, 024123 (2023) - Published 14 August, 2023
Nir Schreiber, Reuven Cohen, and Simi Haber
Phys. Rev. E 108, 024124 (2023) - Published 14 August, 2023
Qing Wei, Wei Wang, Hongwei Zhou, Ralf Metzler, and Aleksei Chechkin
Phys. Rev. E 108, 024125 (2023) - Published 14 August, 2023
Daniel Alonso and Antonia Ruiz García
Phys. Rev. E 108, 024126 (2023) - Published 15 August, 2023
Niklas Küchler and Jürgen Horbach
Phys. Rev. E 108, 024127 (2023) - Published 15 August, 2023
Yunfeng Jiang, Rui Wen, and Yang Zhang
Phys. Rev. E 108, 024128 (2023) - Published 15 August, 2023
Zhiyi Li, Zongzheng Zhou, Sheng Fang, and Youjin Deng
Phys. Rev. E 108, 024129 (2023) - Published 15 August, 2023
In this article, a worm algorithm is used to study the problem of the Ising model on a complete graph. The approach shows connections between different representations of the model and leads to a better understanding of its scaling properties and critical behavior.
P. M. Thibado, J. C. Neu, Pradeep Kumar, Surendra Singh, and L. L. Bonilla
Phys. Rev. E 108, 024130 (2023) - Published 16 August, 2023
Apurba Biswas and R. Rajesh
Phys. Rev. E 108, 024131 (2023) - Published 17 August, 2023
Carl Fredrik Berg and Muhammad Sahimi
Phys. Rev. E 108, 024132 (2023) - Published 21 August, 2023
Lucianno Defaveri, Maike A. F. dos Santos, David A. Kessler, Eli Barkai, and Celia Anteneodo
Phys. Rev. E 108, 024133 (2023) - Published 22 August, 2023
A. Antonov, A. Leonidov, and A. Semenov
Phys. Rev. E 108, 024134 (2023) - Published 22 August, 2023
Matthew Gerry and Dvira Segal
Phys. Rev. E 108, 024135 (2023) - Published 22 August, 2023
V. S. Filinov, R. A. Syrovatka, and P. R. Levashov
Phys. Rev. E 108, 024136 (2023) - Published 23 August, 2023
Felipe Amorim, Joey Wisely, Nathan Buckley, Christiana DiNardo, and Daniel Sadasivan
Phys. Rev. E 108, 024137 (2023) - Published 24 August, 2023
Ekaterina Izotova
Phys. Rev. E 108, 024138 (2023) - Published 24 August, 2023
Louie Hong Yao and Sascha Wald
Phys. Rev. E 108, 024139 (2023) - Published 24 August, 2023
A. R. S. Macêdo, A. Vasilopoulos, M. Akritidis, J. A. Plascak, N. G. Fytas, and M. Weigel
Phys. Rev. E 108, 024140 (2023) - Published 25 August, 2023
Eugenio Mauri, Simona Cocco, and Rémi Monasson
Phys. Rev. E 108, 024141 (2023) - Published 28 August, 2023
A. K. Hartmann and A. P. Young
Phys. Rev. E 108, 024142 (2023) - Published 28 August, 2023
The authors numerically investigate the Ising spin glass state at zero temperature in two dimensions. They find a single ground state, in accordance with the droplet model, and also show that a single power law describes corrections to this result down to the smallest sizes.
Yingjie Liang, Wei Wang, and Ralf Metzler
Phys. Rev. E 108, 024143 (2023) - Published 29 August, 2023
Alessandro Pacco and Valentina Ros
Phys. Rev. E 108, 024145 (2023) - Published 30 August, 2023
Nathann T. Rodrigues, Tiago J. Oliveira, and Thomas Prellberg
Phys. Rev. E 108, 024146 (2023) - Published 30 August, 2023
Chiara Pezzotti and Massimiliano Giona
Phys. Rev. E 108, 024147 (2023) - Published 31 August, 2023
Renai Chen, Tammie Gibson, and Galen T. Craven
Phys. Rev. E 108, 024148 (2023) - Published 31 August, 2023
S. N. Patitsas
Phys. Rev. E 108, 024201 (2023) - Published 1 August, 2023
Shatrughna Kumar, Pengfei Li, and Boris A. Malomed
Phys. Rev. E 108, 024202 (2023) - Published 2 August, 2023
Julia Cantisán, Serhiy Yanchuk, Jesús M. Seoane, Miguel A. F. Sanjuán, and Jürgen Kurths
Phys. Rev. E 108, 024203 (2023) - Published 3 August, 2023
Yuan Shen, Hong Yi Soh, Weijun Fan, and Leong-Chuan Kwek
Phys. Rev. E 108, 024204 (2023) - Published 4 August, 2023
Todd K. Timberlake and Kya Wiggins
Phys. Rev. E 108, 024205 (2023) - Published 4 August, 2023
Frank Thomas Ndjomatchoua, Carlos Lawrence Gninzanlong, Thierry Landry Michel Mbong Djomo, Maxime Fabrice Kepnang Pebeu, and Clément Tchawoua
Phys. Rev. E 108, 024206 (2023) - Published 7 August, 2023
Dixian Ruan, Junjie Liu, and Changqin Wu
Phys. Rev. E 108, 024207 (2023) - Published 7 August, 2023
Pablo D. Bergamasco, Gabriel G. Carlo, and Alejandro M. F. Rivas
Phys. Rev. E 108, 024208 (2023) - Published 8 August, 2023
Jie Luo, Guo-Kang Er, Vai Pan Iu, and Chi Chiu Lam
Phys. Rev. E 108, 024209 (2023) - Published 8 August, 2023
Rebeka Sarkar, Krishna Kumar, and Sugata Pratik Khastgir
Phys. Rev. E 108, 024210 (2023) - Published 9 August, 2023
Malcolm Hillebrand, Matthaios Katsanikas, Stephen Wiggins, and Charalampos Skokos
Phys. Rev. E 108, 024211 (2023) - Published 10 August, 2023
Joao U. F. Lizárraga and Marcus A. M. de Aguiar
Phys. Rev. E 108, 024212 (2023) - Published 11 August, 2023
F. Demontis, G. Ortenzi, G. Roberti, and M. Sommacal
Phys. Rev. E 108, 024213 (2023) - Published 11 August, 2023
Ross Parker, Alejandro Aceves, Jesús Cuevas-Maraver, and P. G. Kevrekidis
Phys. Rev. E 108, 024214 (2023) - Published 16 August, 2023
Patrycja Jaros, Subrata Ghosh, Dawid Dudkowski, Syamal K. Dana, and Tomasz Kapitaniak
Phys. Rev. E 108, 024215 (2023) - Published 17 August, 2023
Mathias Steinhuber, Peter Schlagheck, Juan Diego Urbina, and Klaus Richter
Phys. Rev. E 108, 024216 (2023) - Published 18 August, 2023
Rishabh Jain, Jyoti Sharma, Ishant Tiwari, Sangeeta D. Gadre, Suresh Kumarasamy, P. Parmananda, and Awadhesh Prasad
Phys. Rev. E 108, 024217 (2023) - Published 21 August, 2023
Gregory Kozyreff and Thomas Erneux
Phys. Rev. E 108, 024218 (2023) - Published 22 August, 2023
Sudip Mukherjee
Phys. Rev. E 108, 024219 (2023) - Published 22 August, 2023
M. Paul Asir
Phys. Rev. E 108, 024220 (2023) - Published 22 August, 2023
C. Adam, D. Ciurla, K. Oles, T. Romanczukiewicz, and A. Wereszczynski
Phys. Rev. E 108, 024221 (2023) - Published 25 August, 2023
Huan Gao and Deng-Shan Wang
Phys. Rev. E 108, 024222 (2023) - Published 25 August, 2023
Oleksiy O. Vakhnenko and Vyacheslav O. Vakhnenko
Phys. Rev. E 108, 024223 (2023) - Published 30 August, 2023
Subhendu Bhandary, Tanmoy Banerjee, and Partha Sharathi Dutta
Phys. Rev. E 108, 024301 (2023) - Published 2 August, 2023
Jun Yamamoto and Kousuke Yakubo
Phys. Rev. E 108, 024302 (2023) - Published 7 August, 2023
Wout Merbis, Clélia de Mulatier, and Philippe Corboz
Phys. Rev. E 108, 024303 (2023) - Published 8 August, 2023
Sangita Dutta, Prosenjit Kundu, Pitambar Khanra, Chittaranjan Hens, and Pinaki Pal
Phys. Rev. E 108, 024304 (2023) - Published 8 August, 2023
Santiago Lamata-Otín, Adriana Reyna-Lara, David Soriano-Paños, Vito Latora, and Jesús Gómez-Gardeñes
Phys. Rev. E 108, 024305 (2023) - Published 11 August, 2023
Julian Kates-Harbeck and Michael M. Desai
Phys. Rev. E 108, 024306 (2023) - Published 15 August, 2023
Yasuhiro Yamada and Kensuke Inaba
Phys. Rev. E 108, 024307 (2023) - Published 17 August, 2023
The dynamics of a collection of coupled neurons resemble that of vortices in a commonly studied two-dimensional lattice model, a finding that could help in understanding brain function and dysfunction.
Jonathan Larson and Jukka-Pekka Onnela
Phys. Rev. E 108, 024308 (2023) - Published 21 August, 2023
Tiago P. Peixoto and Alec Kirkley
Phys. Rev. E 108, 024309 (2023) - Published 23 August, 2023
Carlo Baldassi, Enrico M. Malatesta, Gabriele Perugini, and Riccardo Zecchina
Phys. Rev. E 108, 024310 (2023) - Published 23 August, 2023
Austin Polanco and M. E. J. Newman
Phys. Rev. E 108, 024311 (2023) - Published 24 August, 2023
Mohadeseh Feshanjerdi, Amir Ali Masoudi, Peter Grassberger, and Mahdieh Ebrahimi
Phys. Rev. E 108, 024312 (2023) - Published 24 August, 2023
Miguel Ibáñez-Berganza, Carlo Lucibello, Francesca Santucci, Tommaso Gili, and Andrea Gabrielli
Phys. Rev. E 108, 024313 (2023) - Published 28 August, 2023
Rafael A. Bittencourt, H. B. de B. Pereira, M. A. Moret, S. Galam, and I. C. da Cunha Lima
Phys. Rev. E 108, 024314 (2023) - Published 29 August, 2023
A new model could predict the impacts of policy changes on career progression prior to their implementation.
Gustavo Menesse and Osame Kinouchi
Phys. Rev. E 108, 024315 (2023) - Published 29 August, 2023
Andrea Piras, Elisa Floris, Luca Dall'Asta, and Andrea Gamba
Phys. Rev. E 108, 024401 (2023) - Published 3 August, 2023
Petch Khunpetch, Arghya Majee, Hu Ruixuan, and Rudolf Podgornik
Phys. Rev. E 108, 024402 (2023) - Published 7 August, 2023
Jianfeng He, Jing Li, and Kingsley Leung
Phys. Rev. E 108, 024403 (2023) - Published 18 August, 2023
Daria S. Roshal, Karim Azzag, Kirill K. Fedorenko, Sergei B. Rochal, and Stephen Baghdiguian
Phys. Rev. E 108, 024404 (2023) - Published 21 August, 2023
Jakub Jędrak, Marcin Rubin, and Anna Ochab-Marcinek
Phys. Rev. E 108, 024405 (2023) - Published 23 August, 2023
Gabriel Mahuas, Olivier Marre, Thierry Mora, and Ulisse Ferrari
Phys. Rev. E 108, 024406 (2023) - Published 28 August, 2023
M. Brics, V. Šints, G. Kitenbergs, and A. Cēbers
Phys. Rev. E 108, 024601 (2023) - Published 2 August, 2023
Yongjae Oh and Yongjoo Baek
Phys. Rev. E 108, 024602 (2023) - Published 2 August, 2023
Joanna Grelska, Karolina Jurkiewicz, Andrzej Nowok, and Sebastian Pawlus
Phys. Rev. E 108, 024603 (2023) - Published 4 August, 2023
Pradipto and Hisao Hayakawa
Phys. Rev. E 108, 024604 (2023) - Published 9 August, 2023
Victor Teboul
Phys. Rev. E 108, 024605 (2023) - Published 10 August, 2023
Mohammad Fazelzadeh, Ehsan Irani, Zahra Mokhtari, and Sara Jabbari-Farouji
Phys. Rev. E 108, 024606 (2023) - Published 11 August, 2023
Michael S. Rusanov, Michael A. Kuznetsov, Vladimir S. Zverev, and Ekaterina A. Elfimova
Phys. Rev. E 108, 024607 (2023) - Published 17 August, 2023
N. Vanesse, E. Opsomer, G. Lumay, and N. Vandewalle
Phys. Rev. E 108, 024608 (2023) - Published 18 August, 2023
Florian Dittrich, Jiarul Midya, Peter Virnau, and Subir K. Das
Phys. Rev. E 108, 024609 (2023) - Published 21 August, 2023
Christina L. Hueschen, Alexander R. Dunn, and Rob Phillips
Phys. Rev. E 108, 024610 (2023) - Published 24 August, 2023
The collective motion of animal herds and other biological systems sometimes takes place in an environment with a complex geometrical structure. In this paper, the authors study such active matter systems on arbitrary curved surfaces and work towards a better understanding of various real-life systems.
Hansol Jeon, Youchuang Chao, and Stefan Karpitschka
Phys. Rev. E 108, 024611 (2023) - Published 24 August, 2023
Aditya Vats, Pradeep Kumar Yadav, Varsha Banerjee, and Sanjay Puri
Phys. Rev. E 108, 024701 (2023) - Published 2 August, 2023
C. Chamignon, M. Lelli, J. W. Emsley, G. R. Luckhurst, and H. Zimmermann
Phys. Rev. E 108, 024702 (2023) - Published 14 August, 2023
A. H. Gevorgyan
Phys. Rev. E 108, 024703 (2023) - Published 15 August, 2023
Sophie Ettinger, Charlotte G. Slaughter, Sebastian Hurtado Parra, James M. Kikkawa, Peter J. Collings, and A. G. Yodh
Phys. Rev. E 108, 024704 (2023) - Published 21 August, 2023
I. M. Tambovtsev, I. S. Lobanov, Alexei D. Kiselev, and V. M. Uzdin
Phys. Rev. E 108, 024705 (2023) - Published 31 August, 2023
Khá-Î Tô
Phys. Rev. E 108, 024801 (2023) - Published 2 August, 2023
Jason Ogbebor, John J. Valenza, Peter I. Ravikovitch, Ashoka Karunarathne, Giovanni Muraro, Maxim Lebedev, Boris Gurevich, Alexei F. Khalizov, and Gennady Y. Gor
Phys. Rev. E 108, 024802 (2023) - Published 9 August, 2023
Antoine Dop, Valérie Vidal, and Nicolas Taberlet
Phys. Rev. E 108, 024901 (2023) - Published 9 August, 2023
Apurba Biswas, V. V. Prasad, and R. Rajesh
Phys. Rev. E 108, 024902 (2023) - Published 14 August, 2023
Rubén Gómez González, Enrique Abad, Santos Bravo Yuste, and Vicente Garzó
Phys. Rev. E 108, 024903 (2023) - Published 21 August, 2023
Peter Olsson
Phys. Rev. E 108, 024904 (2023) - Published 23 August, 2023
Honghui Sun and Zhenwei Yao
Phys. Rev. E 108, 025001 (2023) - Published 9 August, 2023
Saúl Piedra, Josue Flores, Guillermo Ramírez, Aldo Figueroa, Miguel Piñeirua, and Sergio Cuevas
Phys. Rev. E 108, 025101 (2023) - Published 11 August, 2023
Y. Xiao, J. J. Tao, and F. H. Busse
Phys. Rev. E 108, 025102 (2023) - Published 15 August, 2023
T. J. J. M. van Overveld, H. J. H. Clercx, and M. Duran-Matute
Phys. Rev. E 108, 025103 (2023) - Published 15 August, 2023
Írio M. Coutinho and José A. Miranda
Phys. Rev. E 108, 025104 (2023) - Published 22 August, 2023
Hiroya Mamori, Yusuke Nabae, Shingo Fukuda, and Hiroshi Gotoda
Phys. Rev. E 108, 025105 (2023) - Published 29 August, 2023
E. V. Parkevich, A. I. Khirianova, T. F. Khirianov, I. S. Baidin, K. V. Shpakov, D. V. Tolbukhin, A. A. Rodionov, Ya. K. Bolotov, V. A. Ryabov, S. A. Ambrozevich, and A. V. Oginov
Phys. Rev. E 108, 025201 (2023) - Published 8 August, 2023
J. C. Valenzuela, M. Escalona, O. Loch, F. Veloso, and J. P. Díaz
Phys. Rev. E 108, 025202 (2023) - Published 9 August, 2023
B. S. Paradkar
Phys. Rev. E 108, 025203 (2023) - Published 9 August, 2023
Keisuke Fujii
Phys. Rev. E 108, 025204 (2023) - Published 11 August, 2023
László P. Csernai, Igor N. Mishustin, Leonid M. Satarov, Horst Stöcker, Larissa Bravina, Mária Csete, Judit Kámán, Archana Kumari, Anton Motornenko, István Papp, Péter Rácz, Daniel D. Strottman, András Szenes, Ágnes Szokol, Dávid Vass, Miklós Veres, Tamás S. Biró, and Norbert Kroó (NAPLIFE Collaboration)
Phys. Rev. E 108, 025205 (2023) - Published 11 August, 2023
D. J. Liu, Qing Wang, X. M. Li, S. T. Zhang, R. J. Cheng, X. X. Li, S. Y. Lv, Z. M. Huang, Qiang Wang, Z. J. Liu, L. H. Cao, and C. Y. Zheng
Phys. Rev. E 108, 025206 (2023) - Published 18 August, 2023
A. G. Shalashov and E. D. Gospodchikov
Phys. Rev. E 108, 025207 (2023) - Published 25 August, 2023
Minh Nhat Ly, Takayoshi Sano, Youichi Sakawa, and Yasuhiko Sentoku
Phys. Rev. E 108, 025208 (2023) - Published 25 August, 2023
Timileyin David Oyedeji, Yangyiwei Yang, Herbert Egger, and Bai-Xiang Xu
Phys. Rev. E 108, 025301 (2023) - Published 4 August, 2023
Xinshuo Zhang and Xiufeng Yang
Phys. Rev. E 108, 025302 (2023) - Published 7 August, 2023
Shengyuan Zhang, Jun Tang, and Huiying Wu
Phys. Rev. E 108, 025303 (2023) - Published 7 August, 2023
Lin Zheng, Song Zheng, and Qinglan Zhai
Phys. Rev. E 108, 025304 (2023) - Published 7 August, 2023
Ming Zhang, Qi Meng, Deng Zhang, Yue Wang, Guanghui Wang, Zhiming Ma, Li Chen, and Tie-Yan Liu
Phys. Rev. E 108, 025305 (2023) - Published 14 August, 2023
Paul Brehmer, Michael F. Herbst, Stefan Wessel, Matteo Rizzi, and Benjamin Stamm
Phys. Rev. E 108, 025306 (2023) - Published 18 August, 2023
Tommi Höynälänmaa and Tapio T. Rantala
Phys. Rev. E 108, 025307 (2023) - Published 22 August, 2023
S. A. Hosseini and I. V. Karlin
Phys. Rev. E 108, 025308 (2023) - Published 25 August, 2023