Localization and delocalization in one-dimensional systems with translation-invariant hopping
Reza Sepehrinia
Phys. Rev. B 103, L020201 (2021) - Published 15 January, 2021
Michael Elbracht and Michael Potthoff
Phys. Rev. B 103, 024301 (2021) - Published 20 January, 2021
The authors compute the dynamical phase diagram for the relaxation of a classical spin, exchange coupled to the local magnetic moment at an edge site of the one-dimensional spinful Su-Schrieffer-Heeger model. The role of the topological edge state and its internal Zeeman splitting for the spin-relaxation process, as well as incomplete spin relaxation on long time scales, can be explained within the framework of a renormalized linear response approach, when explicitly taking retardation effects and nonequilibrium spin-exchange processes into account.
C. Trainer, M. Songvilay, N. Qureshi, A. Stunault, C. M. Yim, E. E. Rodriguez, C. Heil, V. Tsurkan, M. A. Green, A. Loidl, P. Wahl, and C. Stock
Phys. Rev. B 103, 024406 (2021) - Published 6 January, 2021
FeTe is a two-dimensional van der Waals antiferromagnet that becomes superconducting on anion substitution on the Te site. Here, the authors present results from spherical neutron polarimetry and scanning tunneling microscopy probing bulk and surface magnetic structures, respectively. While both surface and bulk structures are collinear, the surface magnetism displays a large canting, not found with spherical neutron polarimetry. The authors demonstrate that FeTe exhibits a surface magnetic reconstruction when the symmetry constraints of the bulk are removed.
Chloe Herrera, Jacob Franklin, Ivan Božović, Xi He, and Ilya Sochnikov
Phys. Rev. B 103, 024528 (2021) - Published 27 January, 2021
When a scanning SQUID susceptometer – a mesoscopic quantum version of a mutual inductance sensor – hovers over a superconductor, it sees its own magnetic image reflected with a strength proportional to the density of the Cooper pairs. Here, a scanning SQUID was used to corroborate previous reports that the superfluid density in an extremely overdoped cuprate behaves unusually compared to conventional superconductors. The results obtained show the superfluid density is homogenous in space and linear with temperature, confirming that these characteristics are intrinsic electronic effects.
Vincenzo Alba and Federico Carollo
Phys. Rev. B 103, L020302 (2021) - Published 20 January, 2021
The spreading of information forms the basis of several quantum nonequilibrium phenomena, such as seen in the emergence of thermodynamics and statistical physics. Recently, much progress has been made in understanding the dynamics of information in isolated integrable systems after a quantum quench, by using a quasiparticle picture predicting ballistic spreading of quantum correlations. This paper shows how to apply these ideas to describe the dissipative dynamics of correlations and of entanglement in open quantum many-body systems.
Yongming Luo, Changjiang Liu, Hilal Saglam, Yi Li, Wei Zhang, Steven S.-L. Zhang, John E. Pearson, Brandon Fisher, Tiejun Zhou, Anand Bhattacharya, and Axel Hoffmann
Phys. Rev. B 103, L020401 (2021) - Published 6 January, 2021
Determining the magnetic structure of antiferromagnets is a fundamental challenge for the basic understanding and development of antiferromagnetic spintronic devices. However, apart from techniques that probe individual spins in antiferromagnets directly (such as spin-polarized scanning tunneling microscopy), there are few techniques that can provide independent information for each antiferromagnetic sublattice. Here, the authors demonstrate that spin Seebeck signals from the antiferromagnetic insulator CrO are controlled by surface spins, and independently detect the orientation of the two different sublattices purely electrically.
Reza Sepehrinia
Phys. Rev. B 103, L020201 (2021) - Published 15 January, 2021
Adam L. Gross, Yasen Hou, Antonio Rossi, Dong Yu, and Inna M. Vishik
Phys. Rev. B 103, L020301 (2021) - Published 13 January, 2021
Vincenzo Alba and Federico Carollo
Phys. Rev. B 103, L020302 (2021) - Published 20 January, 2021
The spreading of information forms the basis of several quantum nonequilibrium phenomena, such as seen in the emergence of thermodynamics and statistical physics. Recently, much progress has been made in understanding the dynamics of information in isolated integrable systems after a quantum quench, by using a quasiparticle picture predicting ballistic spreading of quantum correlations. This paper shows how to apply these ideas to describe the dissipative dynamics of correlations and of entanglement in open quantum many-body systems.
Yongming Luo, Changjiang Liu, Hilal Saglam, Yi Li, Wei Zhang, Steven S.-L. Zhang, John E. Pearson, Brandon Fisher, Tiejun Zhou, Anand Bhattacharya, and Axel Hoffmann
Phys. Rev. B 103, L020401 (2021) - Published 6 January, 2021
Determining the magnetic structure of antiferromagnets is a fundamental challenge for the basic understanding and development of antiferromagnetic spintronic devices. However, apart from techniques that probe individual spins in antiferromagnets directly (such as spin-polarized scanning tunneling microscopy), there are few techniques that can provide independent information for each antiferromagnetic sublattice. Here, the authors demonstrate that spin Seebeck signals from the antiferromagnetic insulator CrO are controlled by surface spins, and independently detect the orientation of the two different sublattices purely electrically.
T. Seki, Y. Sakuraba, K. Masuda, A. Miura, M. Tsujikawa, K. Uchida, T. Kubota, Y. Miura, M. Shirai, and K. Takanashi
Phys. Rev. B 103, L020402 (2021) - Published 6 January, 2021
M. Tomé and H. D. Rosales
Phys. Rev. B 103, L020403 (2021) - Published 6 January, 2021
Avirup De, Anupam K. Singh, Sanjay Singh, and Sunil Nair
Phys. Rev. B 103, L020404 (2021) - Published 8 January, 2021
T. Shang, Y. Xu, D. J. Gawryluk, J. Z. Ma, T. Shiroka, M. Shi, and E. Pomjakushina
Phys. Rev. B 103, L020405 (2021) - Published 11 January, 2021
Lukas Weber and Stefan Wessel
Phys. Rev. B 103, L020406 (2021) - Published 13 January, 2021
Junyeon Kim, Dongwook Go, Hanshen Tsai, Daegeun Jo, Kouta Kondou, Hyun-Woo Lee, and YoshiChika Otani
Phys. Rev. B 103, L020407 (2021) - Published 15 January, 2021
Sh. Yamamoto, H. Suwa, T. Kihara, T. Nomura, Y. Kotani, T. Nakamura, Y. Skourski, S. Zherlitsyn, L. Prodan, V. Tsurkan, H. Nojiri, A. Loidl, and J. Wosnitza
Phys. Rev. B 103, L020408 (2021) - Published 25 January, 2021
Luc Testa, Vinko Šurija, Krunoslav Prša, Paul Steffens, Martin Boehm, Philippe Bourges, Helmuth Berger, Bruce Normand, Henrik M. Rønnow, and Ivica Živković
Phys. Rev. B 103, L020409 (2021) - Published 25 January, 2021
Sae Hwan Chun, P. Peter Stavropoulos, Hae-Young Kee, M. Moretti Sala, Jungho Kim, Jong-Woo Kim, B. J. Kim, J. F. Mitchell, and Young-June Kim
Phys. Rev. B 103, L020410 (2021) - Published 27 January, 2021
K. Hasegawa, T. Koyama, and D. Chiba
Phys. Rev. B 103, L020411 (2021) - Published 28 January, 2021
Nicholas R. Poniatowski, Tarapada Sarkar, Sankar Das Sarma, and Richard L. Greene
Phys. Rev. B 103, L020501 (2021) - Published 5 January, 2021
P. M. Lozano, G. D. Gu, J. M. Tranquada, and Qiang Li
Phys. Rev. B 103, L020502 (2021) - Published 7 January, 2021
I. V. Bobkova, A. M. Bobkov, and Wolfgang Belzig
Phys. Rev. B 103, L020503 (2021) - Published 11 January, 2021
L. A. B. Olde Olthof, J. R. Weggemans, G. Kimbell, J. W. A. Robinson, and X. Montiel
Phys. Rev. B 103, L020504 (2021) - Published 21 January, 2021
Xuefeng Zhang, Qi-Jun Ye, and Xin-Zheng Li
Phys. Rev. B 103, 024101 (2021) - Published 5 January, 2021
Isaac Busayo Ogunniranye, Tersoo Atsue, and Oluwole Emmanuel Oyewande
Phys. Rev. B 103, 024102 (2021) - Published 8 January, 2021
D. Kartoon and G. Makov
Phys. Rev. B 103, 024103 (2021) - Published 12 January, 2021
Vishnu Kumar, Anuradha Bhogra, Manju Bala, S. C. Haw, C. L. Chen, C. L. Dong, K. Asokan, and S. Annapoorni
Phys. Rev. B 103, 024104 (2021) - Published 12 January, 2021
Emin Mijit, Kai Chen, João Elias F. S. Rodrigues, Zhiwei Hu, Lucie Nataf, Angela Trapananti, Andrea Di Cicco, and Francois Baudelet
Phys. Rev. B 103, 024105 (2021) - Published 12 January, 2021
Rajesh Chaunsali, Haitao Xu, Jinkyu Yang, Panayotis G. Kevrekidis, and Georgios Theocharis
Phys. Rev. B 103, 024106 (2021) - Published 15 January, 2021
Shiva P. Poudel and Salvador Barraza-Lopez
Phys. Rev. B 103, 024107 (2021) - Published 29 January, 2021
Jing Wu, Yuzhi Zhang, Linfeng Zhang, and Shi Liu
Phys. Rev. B 103, 024108 (2021) - Published 29 January, 2021
Stefan Boettcher and Mahajabin Rahman
Phys. Rev. B 103, 024201 (2021) - Published 7 January, 2021
Roopayan Ghosh and Arnab Das
Phys. Rev. B 103, 024202 (2021) - Published 12 January, 2021
Maximilian Kiefer-Emmanouilidis, Razmik Unanyan, Michael Fleischhauer, and Jesko Sirker
Phys. Rev. B 103, 024203 (2021) - Published 20 January, 2021
Nicholas W. Lundgren, Giuseppe Barbalinardo, and Davide Donadio
Phys. Rev. B 103, 024204 (2021) - Published 20 January, 2021
Saavanth Velury, Barry Bradlyn, and Taylor L. Hughes
Phys. Rev. B 103, 024205 (2021) - Published 28 January, 2021
Michael Elbracht and Michael Potthoff
Phys. Rev. B 103, 024301 (2021) - Published 20 January, 2021
The authors compute the dynamical phase diagram for the relaxation of a classical spin, exchange coupled to the local magnetic moment at an edge site of the one-dimensional spinful Su-Schrieffer-Heeger model. The role of the topological edge state and its internal Zeeman splitting for the spin-relaxation process, as well as incomplete spin relaxation on long time scales, can be explained within the framework of a renormalized linear response approach, when explicitly taking retardation effects and nonequilibrium spin-exchange processes into account.
Jia Guo, Chenhui Zhang, Weizheng Liang, Xi-Xiang Zhang, and S. N. Luo
Phys. Rev. B 103, 024302 (2021) - Published 21 January, 2021
I.Yu. Sklyadneva, R. Heid, P. M. Echenique, and E. V. Chulkov
Phys. Rev. B 103, 024303 (2021) - Published 25 January, 2021
Pinchen Xie and Weinan E
Phys. Rev. B 103, 024304 (2021) - Published 28 January, 2021
Dmitry Miserev, Jelena Klinovaja, and Daniel Loss
Phys. Rev. B 103, 024401 (2021) - Published 4 January, 2021
Tao Xie, S. E. Nikitin, A. I. Kolesnikov, E. Mamontov, L. M. Anovitz, G. Ehlers, I. Huskić, T. Friščić, and A. Podlesnyak
Phys. Rev. B 103, 024402 (2021) - Published 4 January, 2021
Jun-Han Huang (黄俊翰), Guang-Ming Zhang (张广铭), and Dao-Xin Yao (姚道新)
Phys. Rev. B 103, 024403 (2021) - Published 4 January, 2021
T. Sakurai, B. Rubrecht, L. T. Corredor, R. Takehara, M. Yasutani, J. Zeisner, A. Alfonsov, S. Selter, S. Aswartham, A. U. B. Wolter, B. Büchner, H. Ohta, and V. Kataev
Phys. Rev. B 103, 024404 (2021) - Published 5 January, 2021
Xiaoming Zhang and Feng Liu
Phys. Rev. B 103, 024405 (2021) - Published 6 January, 2021
C. Trainer, M. Songvilay, N. Qureshi, A. Stunault, C. M. Yim, E. E. Rodriguez, C. Heil, V. Tsurkan, M. A. Green, A. Loidl, P. Wahl, and C. Stock
Phys. Rev. B 103, 024406 (2021) - Published 6 January, 2021
FeTe is a two-dimensional van der Waals antiferromagnet that becomes superconducting on anion substitution on the Te site. Here, the authors present results from spherical neutron polarimetry and scanning tunneling microscopy probing bulk and surface magnetic structures, respectively. While both surface and bulk structures are collinear, the surface magnetism displays a large canting, not found with spherical neutron polarimetry. The authors demonstrate that FeTe exhibits a surface magnetic reconstruction when the symmetry constraints of the bulk are removed.
F. J. dos Santos, N. Biniskos, S. Raymond, K. Schmalzl, M. dos Santos Dias, P. Steffens, J. Persson, S. Blügel, S. Lounis, and T. Brückel
Phys. Rev. B 103, 024407 (2021) - Published 7 January, 2021
Santanu Pakhira, Thomas Heitmann, S. X. M. Riberolles, B. G. Ueland, R. J. McQueeney, D. C. Johnston, and David Vaknin
Phys. Rev. B 103, 024408 (2021) - Published 8 January, 2021
Kun Hu and Xintian Wu
Phys. Rev. B 103, 024409 (2021) - Published 8 January, 2021
Eduardo Mendive-Tapia, Manuel dos Santos Dias, Sergii Grytsiuk, Julie B. Staunton, Stefan Blügel, and Samir Lounis
Phys. Rev. B 103, 024410 (2021) - Published 11 January, 2021
Marwan Deb, Elena Popova, Steffen Peer Zeuschner, Michel Hehn, Niels Keller, Stéphane Mangin, Gregory Malinowski, and Matias Bargheer
Phys. Rev. B 103, 024411 (2021) - Published 11 January, 2021
Wenjing Zhu, Chengxiang Ding, Long Zhang, and Wenan Guo
Phys. Rev. B 103, 024412 (2021) - Published 11 January, 2021
S. Lee, C. H. Lee, A. Berlie, A. D. Hillier, Devashibhai T. Adroja, Ruidan Zhong, R. J. Cava, Z. H. Jang, and K.-Y. Choi
Phys. Rev. B 103, 024413 (2021) - Published 11 January, 2021
S. Calder, A. V. Haglund, A. I. Kolesnikov, and D. Mandrus
Phys. Rev. B 103, 024414 (2021) - Published 11 January, 2021
Yongwei Cui, Xiaoyu Feng, Qihan Zhang, Hengan Zhou, Wanjun Jiang, Jiangwei Cao, Desheng Xue, and Xiaolong Fan
Phys. Rev. B 103, 024415 (2021) - Published 11 January, 2021
J. Gosteau, R. Arras, P. Chen, H. J. Zhao, C. Paillard, and L. Bellaiche
Phys. Rev. B 103, 024416 (2021) - Published 12 January, 2021
Chao Shan, Shangjian Jin, Trinanjan Datta, and Dao-Xin Yao
Phys. Rev. B 103, 024417 (2021) - Published 13 January, 2021
Taro Fukazawa, Hisazumi Akai, Yosuke Harashima, and Takashi Miyake
Phys. Rev. B 103, 024418 (2021) - Published 13 January, 2021
F. D. Timkovskii and A. V. Syromyatnikov
Phys. Rev. B 103, 024420 (2021) - Published 14 January, 2021
Anton Schneider, Chu-Chun Fu, Osamu Waseda, Cyrille Barreteau, and Tilmann Hickel
Phys. Rev. B 103, 024421 (2021) - Published 14 January, 2021
S. Becker, A. Ross, R. Lebrun, L. Baldrati, S. Ding, F. Schreiber, F. Maccherozzi, D. Backes, M. Kläui, and G. Jakob
Phys. Rev. B 103, 024423 (2021) - Published 14 January, 2021
A. R. Wildes, S. Okamoto, and D. Xiao
Phys. Rev. B 103, 024424 (2021) - Published 15 January, 2021
Sven Erik Ilse, Felix Groß, Gisela Schütz, Joachim Gräfe, and Eberhard Goering
Phys. Rev. B 103, 024425 (2021) - Published 15 January, 2021
Paresh C. Rout and Udo Schwingenschlögl
Phys. Rev. B 103, 024426 (2021) - Published 15 January, 2021
Daisuke Iizasa, Asuka Aoki, Takahito Saito, Junsaku Nitta, Gian Salis, and Makoto Kohda
Phys. Rev. B 103, 024427 (2021) - Published 15 January, 2021
T. J. Hicken, M. N. Wilson, K. J. A. Franke, B. M. Huddart, Z. Hawkhead, M. Gomilšek, S. J. Clark, F. L. Pratt, A. Štefančič, A. E. Hall, M. Ciomaga Hatnean, G. Balakrishnan, and T. Lancaster
Phys. Rev. B 103, 024428 (2021) - Published 19 January, 2021
Mara Strungaru, Matthew O. A. Ellis, Sergiu Ruta, Oksana Chubykalo-Fesenko, Richard F. L. Evans, and Roy W. Chantrell
Phys. Rev. B 103, 024429 (2021) - Published 19 January, 2021
Mitchell M. Bordelon, Joshua D. Bocarsly, Lorenzo Posthuma, Arnab Banerjee, Qiang Zhang, and Stephen D. Wilson
Phys. Rev. B 103, 024430 (2021) - Published 19 January, 2021
Naveen Sisodia, Pranaba Kishor Muduli, Nikos Papanicolaou, and Stavros Komineas
Phys. Rev. B 103, 024431 (2021) - Published 19 January, 2021
Rongxin Sha, Qinxi Liu, Mengyi Wang, Min Liu, Yibo Peng, Ziyang Zhang, Ailiang Zou, Yuekui Xu, Xue Jiang, and Zhiyong Qiu
Phys. Rev. B 103, 024432 (2021) - Published 19 January, 2021
Ian E. Powell, Steven Durr, Nicholas Rombes, and Sudip Chakravarty
Phys. Rev. B 103, 024433 (2021) - Published 19 January, 2021
Jérôme Hurst, Arnaud De Riz, Michal Staňo, Jean-Christophe Toussaint, Olivier Fruchart, and Daria Gusakova
Phys. Rev. B 103, 024434 (2021) - Published 19 January, 2021
Junwei Tong, Feifei Luo, Liuxia Ruan, Guohuai Liu, Lianqun Zhou, Fubo Tian, Gaowu Qin, and Xianmin Zhang
Phys. Rev. B 103, 024435 (2021) - Published 20 January, 2021
Xiuxian Yang, Xiaodong Zhou, Wanxiang Feng, and Yugui Yao
Phys. Rev. B 103, 024436 (2021) - Published 21 January, 2021
Sebastian Wimmer, Sergiy Mankovsky, and Hubert Ebert
Phys. Rev. B 103, 024437 (2021) - Published 22 January, 2021
Alejandro Ceballos, Akshay Pattabi, Amal El-Ghazaly, Sergiu Ruta, Christian P. Simon, Richard F. L. Evans, Thomas Ostler, Roy W. Chantrell, Ellis Kennedy, Mary Scott, Jeffrey Bokor, and Frances Hellman
Phys. Rev. B 103, 024438 (2021) - Published 25 January, 2021
Satoru Hayami and Yukitoshi Motome
Phys. Rev. B 103, 024439 (2021) - Published 25 January, 2021
V. A. Shklovskij, A. I. Bezuglyj, and I. V. Mironenko
Phys. Rev. B 103, 024440 (2021) - Published 25 January, 2021
H. F. Yazdi, G. Ghasemi, Majid Mohseni, and Morteza Mohseni
Phys. Rev. B 103, 024441 (2021) - Published 25 January, 2021
I. L. Kindiak, P. N. Skirdkov, K. A. Tikhomirova, K. A. Zvezdin, E. G. Ekomasov, and A. K. Zvezdin
Phys. Rev. B 103, 024442 (2021) - Published 26 January, 2021
Youngmin Lim, Behrouz Khodadadi, Jie-Fang Li, Dwight Viehland, Aurelien Manchon, and Satoru Emori
Phys. Rev. B 103, 024443 (2021) - Published 26 January, 2021
Masaki Mito, Yuta Kimura, Kanako Yamakata, Masahiro Ohkuma, Hirotaka Chayamichi, Takayuki Tajiri, Hiroyuki Deguchi, and Mamoru Ishizuka
Phys. Rev. B 103, 024444 (2021) - Published 26 January, 2021
Yu Li, Xin Gui, Mojammel A. Khan, Weiwei Xie, David P. Young, and J. F. DiTusa
Phys. Rev. B 103, 024445 (2021) - Published 27 January, 2021
J. B. Santos-Filho, J. A. Plascak, and D. P. Landau
Phys. Rev. B 103, 024446 (2021) - Published 27 January, 2021
A. A. Kulbakov, R. Sarkar, O. Janson, S. Dengre, T. Weinhold, E. M. Moshkina, P. Y. Portnichenko, H. Luetkens, F. Yokaichiya, A. S. Sukhanov, R. M. Eremina, Ph. Schlender, A. Schneidewind, H.-H. Klauss, and D. S. Inosov
Phys. Rev. B 103, 024447 (2021) - Published 27 January, 2021
M. Shepit, V. K. Paidi, C. A. Roberts, G. K. Reddy, and J. van Lierop
Phys. Rev. B 103, 024448 (2021) - Published 28 January, 2021
Simon Michel and Michael Potthoff
Phys. Rev. B 103, 024449 (2021) - Published 28 January, 2021
Arun Parthasarathy, Egecan Cogulu, Andrew D. Kent, and Shaloo Rakheja
Phys. Rev. B 103, 024450 (2021) - Published 29 January, 2021
G. Senthil Murugan, K. Ramesh Babu, R. Sankar, W. T. Chen, I. Panneer Muthuselvam, Sumanta Chattopadhyay, and K.-Y. Choi
Phys. Rev. B 103, 024451 (2021) - Published 29 January, 2021
Sparsh Mishra, Shun Tamura, Akito Kobayashi, and Yukio Tanaka
Phys. Rev. B 103, 024501 (2021) - Published 5 January, 2021
M. Y. Li, J. Huang, W. T. Guo, R. Yang, T. Hu, A. B. Yu, Y. L. Huang, M. Zhang, W. Zhang, J.-M. Zhang, and H. Xiao
Phys. Rev. B 103, 024502 (2021) - Published 6 January, 2021
A. Wang, Z. Y. Nie, F. Du, G. M. Pang, N. Kase, J. Akimitsu, Y. Chen, M. J. Gutmann, D. T. Adroja, R. S. Perry, C. Cao, M. Smidman, and H. Q. Yuan
Phys. Rev. B 103, 024503 (2021) - Published 6 January, 2021
F. N. Womack, D. P. Young, D. A. Browne, G. Catelani, J. Jiang, E. I. Meletis, and P. W. Adams
Phys. Rev. B 103, 024504 (2021) - Published 8 January, 2021
Qiuping Yang, Jian Lv, Qunchao Tong, Xin Du, Yanchao Wang, Shoutao Zhang, Guochun Yang, Aitor Bergara, and Yanming Ma
Phys. Rev. B 103, 024505 (2021) - Published 8 January, 2021
Yuxuan Wang, Jian Kang, and Rafael M. Fernandes
Phys. Rev. B 103, 024506 (2021) - Published 11 January, 2021
D. A. Mayoh, A. D. Hillier, G. Balakrishnan, and M. R. Lees
Phys. Rev. B 103, 024507 (2021) - Published 11 January, 2021
Kristofer Björnson, Andreas Kreisel, Astrid T. Rømer, and Brian M. Andersen
Phys. Rev. B 103, 024508 (2021) - Published 12 January, 2021
Umberto Giuriato and Giorgio Krstulovic
Phys. Rev. B 103, 024509 (2021) - Published 12 January, 2021
A. A. Bespalov and V. D. Plastovets
Phys. Rev. B 103, 024510 (2021) - Published 12 January, 2021
L. Burlachkov and S. Burov
Phys. Rev. B 103, 024511 (2021) - Published 13 January, 2021
Peter F. Rosen, Jason J. Calvin, Brian F. Woodfield, Vera N. Smolyaninova, Joseph C. Prestigiacomo, Michael S. Osofsky, and Igor I. Smolyaninov
Phys. Rev. B 103, 024512 (2021) - Published 14 January, 2021
V. M. Kovalev, K. Sonowal, and I. G. Savenko
Phys. Rev. B 103, 024513 (2021) - Published 15 January, 2021
Huai-Shuang Zhu, Zhidan Li, Qiang Han, and Z. D. Wang
Phys. Rev. B 103, 024514 (2021) - Published 19 January, 2021
Zachary M. Geballe, Maddury Somayazulu, Nicolas Armanet, Ajay K. Mishra, Muhtar Ahart, and Russell J. Hemley
Phys. Rev. B 103, 024515 (2021) - Published 19 January, 2021
Jared Carlson, Alden Pack, Mark K. Transtrum, Jaeyel Lee, David N. Seidman, Danilo B. Liarte, Nathan S. Sitaraman, Alen Senanian, Michelle M. Kelley, James P. Sethna, Tomas Arias, and Sam Posen
Phys. Rev. B 103, 024516 (2021) - Published 19 January, 2021
Yu-Xuan Li and Tao Zhou
Phys. Rev. B 103, 024517 (2021) - Published 19 January, 2021
Feng-Feng Song and Guang-Ming Zhang
Phys. Rev. B 103, 024518 (2021) - Published 19 January, 2021
Marvin A. Müller, Pavel A. Volkov, Indranil Paul, and Ilya M. Eremin
Phys. Rev. B 103, 024519 (2021) - Published 20 January, 2021
Benjamin Nosarzewski, Michael Schüler, and Thomas P. Devereaux
Phys. Rev. B 103, 024520 (2021) - Published 20 January, 2021
Carsten Timm, P. M. R. Brydon, and Daniel F. Agterberg
Phys. Rev. B 103, 024521 (2021) - Published 21 January, 2021
Yi-Ming Wu, Shang-Shun Zhang, Artem Abanov, and Andrey V. Chubukov
Phys. Rev. B 103, 024522 (2021) - Published 21 January, 2021
Maria Vittoria Mazziotti, Antonio Valletta, Roberto Raimondi, and Antonio Bianconi
Phys. Rev. B 103, 024523 (2021) - Published 22 January, 2021
Haakon T. Simensen, Lina G. Johnsen, Jacob Linder, and Arne Brataas
Phys. Rev. B 103, 024524 (2021) - Published 22 January, 2021
Yiqun Liu, Yu Lan, and Shiping Feng
Phys. Rev. B 103, 024525 (2021) - Published 22 January, 2021
K. Komędera, J. Gatlik, A. Błachowski, J. Żukrowski, T. J. Sato, D. Legut, and U. D. Wdowik
Phys. Rev. B 103, 024526 (2021) - Published 25 January, 2021
Lucila Peralta Gavensky, Gonzalo Usaj, and C. A. Balseiro
Phys. Rev. B 103, 024527 (2021) - Published 25 January, 2021
Chloe Herrera, Jacob Franklin, Ivan Božović, Xi He, and Ilya Sochnikov
Phys. Rev. B 103, 024528 (2021) - Published 27 January, 2021
When a scanning SQUID susceptometer – a mesoscopic quantum version of a mutual inductance sensor – hovers over a superconductor, it sees its own magnetic image reflected with a strength proportional to the density of the Cooper pairs. Here, a scanning SQUID was used to corroborate previous reports that the superfluid density in an extremely overdoped cuprate behaves unusually compared to conventional superconductors. The results obtained show the superfluid density is homogenous in space and linear with temperature, confirming that these characteristics are intrinsic electronic effects.
Kun Yang
Phys. Rev. B 103, 024529 (2021) - Published 29 January, 2021