Acoustic Klein bottle insulator
Zhenhang Pu, Hailong He, Weiyin Deng, Xueqin Huang, Liping Ye, Jiuyang Lu, Manzhu Ke, and Zhengyou Liu
Phys. Rev. B 108, L220101 (2023) - Published 7 December, 2023
T. U. Ito, W. Higemoto, and K. Shimomura
Phys. Rev. B 108, 224301 (2023) - Published 4 December, 2023
In certain perovskite oxides, positive muon () diffusion occurs with a small activation energy of 0.1 eV, contrary to the conventional assumption in spin spectroscopy for oxides that is tightly bound to an oxygen atom and immobile below room temperature. Here, the authors analyze the over-barrier diffusion of observed in KTaO using harmonic transition state theory and show that zero-point vibrations may significantly lower the activation barrier to facilitate fast diffusion below room temperature.
Marios Kounalakis, Silvia Viola Kusminskiy, and Yaroslav M. Blanter
Phys. Rev. B 108, 224416 (2023) - Published 11 December, 2023
Entangled coherent states exhibit a special form of entanglement between two or more bosonic modes, which is useful for several tasks in quantum information and fundamental studies of quantum mechanics. Here, the authors propose a scheme for generating and controlling such states between distant magnets or mechanical resonators, using a superconducting qubit that couples via its inductance to the quanta of the collective magnetic excitations (magnons) or the vibrational excitations in mechanical beams (phonons). The results establish a promising platform for quantum information using magnonic and mechanical hybrid quantum devices.
Tzu-Chi Hsieh and Leo Radzihovsky
Phys. Rev. B 108, 224423 (2023) - Published 18 December, 2023
A smectic liquid crystal is known to display quasi-long-range positional order in three dimensions due to its “soft” elasticity and corresponding strong thermal fluctuations. This work extends such uniaxial scalar density-wave order to -component magnetic spin-density wave orders, and thereby derives a new class of () smectic sigma model. The model provides a unifying description of the universal low-energy properties of a variety of physical systems, ranging from quantum striped states to helimagnets in frustrated spin systems.
Menghu Zhou, Yadong Gu, Shunli Ni, Binbin Ruan, Qiaoyu Liu, Qingsong Yang, Lewei Chen, Junkun Yi, Yunqing Shi, Genfu Chen, and Zhian Ren
Phys. Rev. B 108, 224518 (2023) - Published 27 December, 2023
Here, the authors report the charge density wave and superconductivity of noncentrosymmetric 4-NbSe. In particular, it exhibits a large upper critical field (0) well beyond the Pauli paramagnetic limit. () could be described by a two-band scenario that is also revealed via lower critical field and specific heat. The high is expected to motivate the search of high-field superconductors in noncentrosymmetric materials.
Yaohua Li, Cuicui Lu, Shuang Zhang, and Yong-Chun Liu
Phys. Rev. B 108, L220301 (2023) - Published 12 December, 2023
A mechanism for a loss-induced Floquet non-Hermitian skin effect (NHSE) is proposed, where gain/loss combined with Floquet engineering leads to the NHSE. This mechanism utilizes periodic coupling, which is a well-established experimental method, to realize the NHSE through loss instead of nonreciprocal coupling. The key to this mechanism is the Floquet-induced next-nearest neighbor coupling. This proposal is also applicable to high-dimensional systems and can be realized in photonic waveguides and other related systems.
Rostyslav O. Serha, Vitaliy I. Vasyuchka, Alexander A. Serga, and Burkard Hillebrands
Phys. Rev. B 108, L220404 (2023) - Published 29 December, 2023
The Aharonov-Casher effect is the accumulation of the wave function phase when a particle with magnetic moment passes through an electric field. This phenomenon is observed for real particles and predicted for quasiparticles such as magnons. Here, the authors investigate the impact of a strong electric field on the phase of dipolar spin waves exited in a ferromagnetic yttrium iron garnet (YIG) film and report the experimental results in favor of the magnonic Aharonov-Casher effect.
J. Sous, C. Zhang, M. Berciu, D. R. Reichman, B. V. Svistunov, N. V. Prokof'ev, and A. J. Millis
Phys. Rev. B 108, L220502 (2023) - Published 13 December, 2023
Bipolaronic superconductivity induced by bond phonons survives even in the presence of very strong long-ranged Coulomb repulsion leading to transition temperatures in line with values found in 3D materials at low densities, providing a robust way to obtain superconductivity in the low-density limit.
Zhenhang Pu, Hailong He, Weiyin Deng, Xueqin Huang, Liping Ye, Jiuyang Lu, Manzhu Ke, and Zhengyou Liu
Phys. Rev. B 108, L220101 (2023) - Published 7 December, 2023
Saikat Mondal, Subrata Pachhal, and Adhip Agarwala
Phys. Rev. B 108, L220201 (2023) - Published 11 December, 2023
Saverio Rossi, Giulio Biroli, Misaki Ozawa, and Gilles Tarjus
Phys. Rev. B 108, L220202 (2023) - Published 19 December, 2023
Z. Ovadyahu
Phys. Rev. B 108, L220203 (2023) - Published 27 December, 2023
Yaohua Li, Cuicui Lu, Shuang Zhang, and Yong-Chun Liu
Phys. Rev. B 108, L220301 (2023) - Published 12 December, 2023
A mechanism for a loss-induced Floquet non-Hermitian skin effect (NHSE) is proposed, where gain/loss combined with Floquet engineering leads to the NHSE. This mechanism utilizes periodic coupling, which is a well-established experimental method, to realize the NHSE through loss instead of nonreciprocal coupling. The key to this mechanism is the Floquet-induced next-nearest neighbor coupling. This proposal is also applicable to high-dimensional systems and can be realized in photonic waveguides and other related systems.
Matteo M. Wauters, Chia-Min Chung, Lorenzo Maffi, and Michele Burrello
Phys. Rev. B 108, L220302 (2023) - Published 18 December, 2023
Li-Yang Zheng, Yu-Fan Li, Jin Zhang, and Yongsheng Huang
Phys. Rev. B 108, L220303 (2023) - Published 20 December, 2023
Xuezhi Bian, Zhen Tao, Yanze Wu, Jonathan Rawlinson, Robert G. Littlejohn, and Joseph E. Subotnik
Phys. Rev. B 108, L220304 (2023) - Published 21 December, 2023
Tomer Amit and Sivan Refaely-Abramson
Phys. Rev. B 108, L220305 (2023) - Published 29 December, 2023
Markus Drescher, Laurens Vanderstraeten, Roderich Moessner, and Frank Pollmann
Phys. Rev. B 108, L220401 (2023) - Published 5 December, 2023
Chris R. Laumann and Roderich Moessner
Phys. Rev. B 108, L220402 (2023) - Published 11 December, 2023
Jun-Xiao Lin, Michel Hehn, Thomas Hauet, Yi Peng, Junta Igarashi, Yann Le Guen, Quentin Remy, Jon Gorchon, Gregory Malinowski, Stéphane Mangin, and Julius Hohlfeld
Phys. Rev. B 108, L220403 (2023) - Published 21 December, 2023
Rostyslav O. Serha, Vitaliy I. Vasyuchka, Alexander A. Serga, and Burkard Hillebrands
Phys. Rev. B 108, L220404 (2023) - Published 29 December, 2023
The Aharonov-Casher effect is the accumulation of the wave function phase when a particle with magnetic moment passes through an electric field. This phenomenon is observed for real particles and predicted for quasiparticles such as magnons. Here, the authors investigate the impact of a strong electric field on the phase of dipolar spin waves exited in a ferromagnetic yttrium iron garnet (YIG) film and report the experimental results in favor of the magnonic Aharonov-Casher effect.
Tomas Samuely, Darshana Wickramaratne, Martin Gmitra, Thomas Jaouen, Ondrej Šofranko, Dominik Volavka, Marek Kuzmiak, Jozef Haniš, Pavol Szabó, Claude Monney, Geoffroy Kremer, Patrick Le Fèvre, François Bertran, Tristan Cren, Shunsuke Sasaki, Laurent Cario, Matteo Calandra, Igor I. Mazin, and Peter Samuely
Phys. Rev. B 108, L220501 (2023) - Published 4 December, 2023
J. Sous, C. Zhang, M. Berciu, D. R. Reichman, B. V. Svistunov, N. V. Prokof'ev, and A. J. Millis
Phys. Rev. B 108, L220502 (2023) - Published 13 December, 2023
Bipolaronic superconductivity induced by bond phonons survives even in the presence of very strong long-ranged Coulomb repulsion leading to transition temperatures in line with values found in 3D materials at low densities, providing a robust way to obtain superconductivity in the low-density limit.
Changming Yue and Philipp Werner
Phys. Rev. B 108, L220503 (2023) - Published 14 December, 2023
Yi-Hui Xing, Lin Zhuang, E. C. Marino, and Wu-Ming Liu
Phys. Rev. B 108, L220504 (2023) - Published 15 December, 2023
Nico A. Hackner and P. M. R. Brydon
Phys. Rev. B 108, L220505 (2023) - Published 18 December, 2023
Virgil V. Baran, Emil J. P. Frost, and Jens Paaske
Phys. Rev. B 108, L220506 (2023) - Published 20 December, 2023
Narayan Mohanta
Phys. Rev. B 108, L220507 (2023) - Published 22 December, 2023
Changming Yue, Yusuke Nomura, Kosmas Prassides, and Philipp Werner
Phys. Rev. B 108, L220508 (2023) - Published 26 December, 2023
Veronica Goian, Fedir Borodavka, Dalibor Repček, Maxim Savinov, Martin Míšek, Jiří Kaštil, Volodymyr Skoromets, Petr Ondrejkovič, Jan Petzelt, Jiří Hlinka, Petr Kužel, and Stanislav Kamba
Phys. Rev. B 108, 224101 (2023) - Published 1 December, 2023
Daniel N. Blaschke, Ta Duong, and Michael J. Demkowicz
Phys. Rev. B 108, 224102 (2023) - Published 4 December, 2023
Huan Lu and Wanlin Guo
Phys. Rev. B 108, 224103 (2023) - Published 5 December, 2023
Bryan L. Chavez, Govinda Kharal, Lingyi Xing, Scott Crittenden, Thomas M. Crawford, Yanwen Wu, and Rongying Jin
Phys. Rev. B 108, 224104 (2023) - Published 6 December, 2023
Gobinda Das Adhikary, Gudeta Jafo Muleta, and Rajeev Ranjan
Phys. Rev. B 108, 224105 (2023) - Published 7 December, 2023
Oscar Bulancea-Lindvall, Joel Davidsson, Rickard Armiento, and Igor A. Abrikosov
Phys. Rev. B 108, 224106 (2023) - Published 7 December, 2023
Jin-Bing Wu, Sai-Bo Wu, and Wei Hu
Phys. Rev. B 108, 224107 (2023) - Published 11 December, 2023
Shivani Rastogi, Nisha Shahi, Vishal Kumar, Gaurav K. Shukla, Satadeep Bhattacharjee, and Sanjay Singh
Phys. Rev. B 108, 224108 (2023) - Published 11 December, 2023
Joshua E. S. Socolar
Phys. Rev. B 108, 224109 (2023) - Published 11 December, 2023
V. Petkov, R. Baumbach, M. Jakhar, V. Barone, A. Zafar, L. Gallington, S. Shastri, and B. Aoun
Phys. Rev. B 108, 224110 (2023) - Published 14 December, 2023
James G. McHugh, Vladimir V. Enaldiev, and Vladimir I. Fal'ko
Phys. Rev. B 108, 224111 (2023) - Published 26 December, 2023
Charlie M. Zoller, Muhtar Ahart, Sakun Duwal, Raymond C. Clay, III, Christopher T. Seagle, Young Jay Ryu, Sergey Tkachev, Stella Chariton, Vitali Prakapenka, and Russell J. Hemley
Phys. Rev. B 108, 224112 (2023) - Published 26 December, 2023
Pengxian You, Junhong Yu, Jing Yang, Hang Zhang, Min Liao, and Jianbo Hu
Phys. Rev. B 108, 224113 (2023) - Published 26 December, 2023
Ri He, Hongyu Wu, Xuejian Qin, Xuejiao Chen, and Zhicheng Zhong
Phys. Rev. B 108, 224114 (2023) - Published 26 December, 2023
Tom Lacmann, Amir-Abbas Haghighirad, Sofia-Michaela Souliou, Michael Merz, Gaston Garbarino, Konstantin Glazyrin, Rolf Heid, and Matthieu Le Tacon
Phys. Rev. B 108, 224115 (2023) - Published 29 December, 2023
Hao Zhang and Alex Kamenev
Phys. Rev. B 108, 224201 (2023) - Published 12 December, 2023
Alaa Fahs, Philippe Jarry, and Noël Jakse
Phys. Rev. B 108, 224202 (2023) - Published 14 December, 2023
Róbert Juhász and Gergő Roósz
Phys. Rev. B 108, 224203 (2023) - Published 14 December, 2023
Maria Kopcha, Taras Bryk, Jean-François Wax, and Noël Jakse
Phys. Rev. B 108, 224204 (2023) - Published 15 December, 2023
T. U. Ito, W. Higemoto, and K. Shimomura
Phys. Rev. B 108, 224301 (2023) - Published 4 December, 2023
In certain perovskite oxides, positive muon () diffusion occurs with a small activation energy of 0.1 eV, contrary to the conventional assumption in spin spectroscopy for oxides that is tightly bound to an oxygen atom and immobile below room temperature. Here, the authors analyze the over-barrier diffusion of observed in KTaO using harmonic transition state theory and show that zero-point vibrations may significantly lower the activation barrier to facilitate fast diffusion below room temperature.
Jingyu Li, Liuming Wei, Zhuoyang Ti, Le Ma, Yuli Yan, Guangbiao Zhang, and Peng-Fei Liu
Phys. Rev. B 108, 224302 (2023) - Published 4 December, 2023
John E. Sader, Stefano Stassi, Carlo Ricciardi, and Michael L. Roukes
Phys. Rev. B 108, 224303 (2023) - Published 5 December, 2023
Raúl Morral-Yepes, Frank Pollmann, and Izabella Lovas
Phys. Rev. B 108, 224304 (2023) - Published 6 December, 2023
Zhengyan Darius Shi, Shreya Vardhan, and Hong Liu
Phys. Rev. B 108, 224305 (2023) - Published 13 December, 2023
Abinash Sahu, Naga Dileep Varikuti, Bishal Kumar Das, and Vaibhav Madhok
Phys. Rev. B 108, 224306 (2023) - Published 13 December, 2023
Md Roknuzzaman, Sathwik Bharadwaj, Yifan Wang, Chinmay Khandekar, Dan Jiao, Rajib Rahman, and Zubin Jacob
Phys. Rev. B 108, 224307 (2023) - Published 14 December, 2023
Alon Ron, Kaveh Ahadi, Daniel Hickox-Young, Danilo Puggioni, Omar Mehio, James M. Rondinelli, Susanne Stemmer, and David Hsieh
Phys. Rev. B 108, 224308 (2023) - Published 22 December, 2023
A. A. Melnikov, Yu. G. Selivanov, and S. V. Chekalin
Phys. Rev. B 108, 224309 (2023) - Published 27 December, 2023
Maria D. Amel'chenko, Sergei V. Grishin, Feodor Yu. Ogrin, and Sergei A. Nikitov
Phys. Rev. B 108, 224401 (2023) - Published 1 December, 2023
M. Gamino, A. B. Oliveira, D. S. Maior, P. R. T. Ribeiro, F. L. A. Machado, T. J. A. Mori, M. A. Correa, F. Bohn, R. L. Rodríguez-Suárez, J. Fontcuberta, and S. M. Rezende
Phys. Rev. B 108, 224402 (2023) - Published 1 December, 2023
N. Yuan, A. Elghandour, W. Hergett, R. Ohlendorf, L. Gries, and R. Klingeler
Phys. Rev. B 108, 224403 (2023) - Published 1 December, 2023
Feng-Feng Song, Tong-Yu Lin, and Guang-Ming Zhang
Phys. Rev. B 108, 224404 (2023) - Published 4 December, 2023
R. Chen, H. J. Hu, Q. K. Lei, C. B. Liu, C. Dong, X. Y. Yue, Z. Qu, H. W. Wang, Y. Qiu, D. Chen, X. L. Yi, Z. W. Ouyang, and J. F. Wang
Phys. Rev. B 108, 224405 (2023) - Published 4 December, 2023
J. J. Liu, K. K. Meng, J. Q. Guo, Y. Wu, J. K. Chen, X. G. Xu, L. P. Sun, Y. Y. Han, and Y. Jiang
Phys. Rev. B 108, 224406 (2023) - Published 5 December, 2023
Zezhong Li, Jieqiong Cheng, Qiangqiang Zhang, Enke Liu, and Zhuhong Liu
Phys. Rev. B 108, 224407 (2023) - Published 5 December, 2023
Ramon Cardias, Jhonatan dos Santos Silva, Anders Bergman, Attila Szilva, Yaroslav O. Kvashnin, Jonas Fransson, Angela B. Klautau, Olle Eriksson, Anna Delin, and Lars Nordström
Phys. Rev. B 108, 224408 (2023) - Published 5 December, 2023
Haodong Fan, Ziji Shao, Jiale Wang, Menghao Jin, Birui Wu, Zhongshu Feng, Mingzhang Wei, Changqiu Yu, Jiahong Wen, Hai Li, Tingwei Chen, Bo Liu, Wenjun Li, and Tiejun Zhou
Phys. Rev. B 108, 224409 (2023) - Published 6 December, 2023
Amelia Panther, Alexander A. Tsirlin, and Ioannis Rousochatzakis
Phys. Rev. B 108, 224410 (2023) - Published 6 December, 2023
R. Ohlendorf, S. Spachmann, L. Fischer, F. L. Carstens, D. Brunt, G. Balakrishnan, O. A. Petrenko, and R. Klingeler
Phys. Rev. B 108, 224411 (2023) - Published 7 December, 2023
David Gallina and G. M. Pastor
Phys. Rev. B 108, 224412 (2023) - Published 11 December, 2023
Ajay Jha, Simon Lenne, Gwenaël Atcheson, Karsten Rode, J. M. D. Coey, and Plamen Stamenov
Phys. Rev. B 108, 224413 (2023) - Published 11 December, 2023
T. Li, H. W. Wang, Y. R. Song, C. Dong, R. Chen, M. Yang, and J. F. Wang
Phys. Rev. B 108, 224414 (2023) - Published 11 December, 2023
U. Arjun, K. M. Ranjith, A. Jesche, F. Hirschberger, D. D. Sarma, and P. Gegenwart
Phys. Rev. B 108, 224415 (2023) - Published 11 December, 2023
Marios Kounalakis, Silvia Viola Kusminskiy, and Yaroslav M. Blanter
Phys. Rev. B 108, 224416 (2023) - Published 11 December, 2023
Entangled coherent states exhibit a special form of entanglement between two or more bosonic modes, which is useful for several tasks in quantum information and fundamental studies of quantum mechanics. Here, the authors propose a scheme for generating and controlling such states between distant magnets or mechanical resonators, using a superconducting qubit that couples via its inductance to the quanta of the collective magnetic excitations (magnons) or the vibrational excitations in mechanical beams (phonons). The results establish a promising platform for quantum information using magnonic and mechanical hybrid quantum devices.
Weiyi Pan, Xueyang Li, and Junsheng Feng
Phys. Rev. B 108, 224417 (2023) - Published 11 December, 2023
Cheng Gu, Zhao-Long Gu, Shun-Li Yu, and Jian-Xin Li
Phys. Rev. B 108, 224418 (2023) - Published 13 December, 2023
Xiaoqin Ke, Chao Zhou, Ben Tian, Yoshitaka Matsushita, Xiaobing Ren, Sen Yang, and Yunzhi Wang
Phys. Rev. B 108, 224419 (2023) - Published 13 December, 2023
M. Xochitl Aguilar-Pujol, Sara Catalano, Carmen González-Orellana, Witold Skowroński, Juan M. Gomez-Perez, Maxim Ilyn, Celia Rogero, Marco Gobbi, Luis E. Hueso, and Fèlix Casanova
Phys. Rev. B 108, 224420 (2023) - Published 14 December, 2023
Bjørnulf Brekke, Arne Brataas, and Asle Sudbø
Phys. Rev. B 108, 224421 (2023) - Published 14 December, 2023
Shilei Ji, Ruijia Yao, Chuye Quan, Yile Wang, Jianping Yang, and Xing'ao Li
Phys. Rev. B 108, 224422 (2023) - Published 18 December, 2023
Tzu-Chi Hsieh and Leo Radzihovsky
Phys. Rev. B 108, 224423 (2023) - Published 18 December, 2023
A smectic liquid crystal is known to display quasi-long-range positional order in three dimensions due to its “soft” elasticity and corresponding strong thermal fluctuations. This work extends such uniaxial scalar density-wave order to -component magnetic spin-density wave orders, and thereby derives a new class of () smectic sigma model. The model provides a unifying description of the universal low-energy properties of a variety of physical systems, ranging from quantum striped states to helimagnets in frustrated spin systems.
Jostein N. Kløgetvedt and Alireza Qaiumzadeh
Phys. Rev. B 108, 224424 (2023) - Published 18 December, 2023
A. Balodhi, J.-W. Kim, D. Evans, A. Seepersad, J. M. Grummer, E. D. Mun, and M. G. Kim
Phys. Rev. B 108, 224425 (2023) - Published 19 December, 2023
Muhammad Akram, Emilian Marius Nica, Yuan-Ming Lu, and Onur Erten
Phys. Rev. B 108, 224427 (2023) - Published 20 December, 2023
K. Katsumata and S. W. Lovesey
Phys. Rev. B 108, 224428 (2023) - Published 21 December, 2023
Catalin-Mihai Halati, Zhe Wang, Thomas Lorenz, Corinna Kollath, and Jean-Sébastien Bernier
Phys. Rev. B 108, 224429 (2023) - Published 21 December, 2023
Maruthi R, Sobhit Singh, Sayandeep Ghosh, Mohindar S. Seehra, Bruno Weise, Wilfrid Prellier, and Subhash Thota
Phys. Rev. B 108, 224430 (2023) - Published 26 December, 2023
M. J. Coak, S. P. M. Curley, Z. Hawkhead, J. P. Tidey, D. Graf, S. J. Clark, P. Sengupta, Z. E. Manson, T. Lancaster, P. A. Goddard, and J. L. Manson
Phys. Rev. B 108, 224431 (2023) - Published 26 December, 2023
Andrei I. Nikitchenko and Nikolay A. Pertsev
Phys. Rev. B 108, 224432 (2023) - Published 26 December, 2023
D. S. Almeida and R. R. Montenegro-Filho
Phys. Rev. B 108, 224433 (2023) - Published 27 December, 2023
Pablo Domenichini, Gabriela Pasquini, and María Gabriela Capeluto
Phys. Rev. B 108, 224434 (2023) - Published 29 December, 2023
Gabriel Kuderowicz and Bartlomiej Wiendlocha
Phys. Rev. B 108, 224501 (2023) - Published 1 December, 2023
Benjamin Geisler
Phys. Rev. B 108, 224502 (2023) - Published 1 December, 2023
Zhenfei Wu and Yuxuan Wang
Phys. Rev. B 108, 224503 (2023) - Published 6 December, 2023
Yang Zhang, Xiupeng Sun, Chunhui Ye, Hongze Zhao, Rucheng Dai, Zhongping Wang, Junfeng He, and Zengming Zhang
Phys. Rev. B 108, 224504 (2023) - Published 6 December, 2023
Kinga Jasiewicz, Janusz Tobola, and Bartlomiej Wiendlocha
Phys. Rev. B 108, 224505 (2023) - Published 7 December, 2023
Yifu Cao, Chandan Setty, Laura Fanfarillo, Andreas Kreisel, and P. J. Hirschfeld
Phys. Rev. B 108, 224506 (2023) - Published 8 December, 2023
Juan Carlos Estrada Saldaña, Luka Pavešič, Alexandros Vekris, Kasper Grove-Rasmussen, Jesper Nygård, and Rok Žitko
Phys. Rev. B 108, 224507 (2023) - Published 8 December, 2023
D. A. Papaconstantopoulos, M. J. Mehl, and E. N. Economou
Phys. Rev. B 108, 224508 (2023) - Published 8 December, 2023
Maciej Fidrysiak, Bartłomiej Rzeszotarski, and Józef Spałek
Phys. Rev. B 108, 224509 (2023) - Published 12 December, 2023
Weizheng Cao, Haifeng Yang, Yongkai Li, Cuiying Pei, Qi Wang, Yi Zhao, Changhua Li, Mingxin Zhang, Shihao Zhu, Juefei Wu, Lili Zhang, Zhiwei Wang, Yugui Yao, Zhongkai Liu, Yulin Chen, and Yanpeng Qi
Phys. Rev. B 108, 224510 (2023) - Published 15 December, 2023
A. A. Kopasov, Zh. Devizorova, H. Meng, S. V. Mironov, A. S. Mel'nikov, and A. I. Buzdin
Phys. Rev. B 108, 224511 (2023) - Published 15 December, 2023
Anil Kumar, Om Prakash, Rajendra Loke, Arindam Pramanik, Rajdeep Sensarma, Sitaram Ramakrishnan, Biplab Bag, Arumugam Thamizhavel, and Srinivasan Ramakrishnan
Phys. Rev. B 108, 224512 (2023) - Published 18 December, 2023
Yingwen Zhang, Dao-Xin Yao, and Zhi Wang
Phys. Rev. B 108, 224513 (2023) - Published 18 December, 2023
Majid Kheirkhah and Igor F. Herbut
Phys. Rev. B 108, 224514 (2023) - Published 19 December, 2023
Kristian Mæland, Sara Abnar, Jacob Benestad, and Asle Sudbø
Phys. Rev. B 108, 224515 (2023) - Published 19 December, 2023
Linghao Huang and Jing Wang
Phys. Rev. B 108, 224516 (2023) - Published 21 December, 2023
Yao Lu, Stefan Ilić, Risto Ojajärvi, Tero T. Heikkilä, and F. Sebastian Bergeret
Phys. Rev. B 108, 224517 (2023) - Published 26 December, 2023
Menghu Zhou, Yadong Gu, Shunli Ni, Binbin Ruan, Qiaoyu Liu, Qingsong Yang, Lewei Chen, Junkun Yi, Yunqing Shi, Genfu Chen, and Zhian Ren
Phys. Rev. B 108, 224518 (2023) - Published 27 December, 2023
Here, the authors report the charge density wave and superconductivity of noncentrosymmetric 4-NbSe. In particular, it exhibits a large upper critical field (0) well beyond the Pauli paramagnetic limit. () could be described by a two-band scenario that is also revealed via lower critical field and specific heat. The high is expected to motivate the search of high-field superconductors in noncentrosymmetric materials.
V. K. Anand, A. Bhattacharyya, D. T. Adroja, K. Panda, P. K. Biswas, A. D. Hillier, and B. Lake
Phys. Rev. B 108, 224519 (2023) - Published 28 December, 2023