Spatially resolved roughness exponent in polymer fracture
M. Thuy, A. Spyrantis, M. Böhning, U. Niebergall, and R. Maaß
Phys. Rev. Materials 6, L090601 (2022) - Published 20 September, 2022
Yu Liu (刘育), M. M. Bordelon, A. Weiland, P. F. S. Rosa, S. M. Thomas, J. D. Thompson, F. Ronning, and E. D. Bauer
Phys. Rev. Materials 6, 094407 (2022) - Published 16 September, 2022
Layered van der Waals (vdW) magnetic materials have attracted widespread attention as new platforms for understanding and controlling magnetism in the two-dimensional limit for spintronic devices. In contrast to -electron vdW magnets, very few f-electron vdW magnets have been studied. Here, the authors report the physical properties of CeTe single crystals, a layered -electron vdW magnet. Four consecutive (magnetic) phase transitions at ∼ 5.2, 2.1, 0.9, and 0.4 K are observed, suggesting competing antiferromagnetic and ferromagnetic exchange interactions. The Hall effect indicates that CeTe is a multiband system with a relatively high electron mobility, providing opportunities for future device applications.
Patrick Quarterman, Yabin Fan, Zhijie Chen, Christopher J. Jensen, Rajesh V. Chopdekar, Dustin A. Gilbert, Megan E. Holtz, Mark D. Stiles, Julie A. Borchers, Kai Liu, Luqiao Liu, and Alexander J. Grutter
Phys. Rev. Materials 6, 094418 (2022) - Published 30 September, 2022
The recent emergence of antiparallel interface coupling in hybrid ferromagnet metal/ferromagnetic insulator bilayers based on YFeO and NiFe raises questions about magnetic exchange coupling at this technologically important interface. A systematic study of heterostructures incorporating alternative ferromagnetic metals and a variety of substrates reveals that the antiparallel magnetic interaction is unique to heterostructures grown on amorphous SiO, while multilayers on GdGaO or GdGaO/Pt exhibit the traditional parallel exchange. X-ray diffraction implicates changes in the crystal order and orientation, which in a ferrimagnet such as YFeO may expose the minority spin lattice at the reconstructed interface for films on SiO.
Lyu Zhou, Jacob Rada, Yanpei Tian, Yu Han, Zhiping Lai, Matthew F. McCabe, and Qiaoqiang Gan
Phys. Rev. Materials 6, 090201 (2022) - Published 20 September, 2022
Radiative cooling is a passive cooling technique that can send thermal energy into the frigid outer space. Recent research has demonstrated that it is possible to achieve an electricity-free subambient cooling effect during the daytime, which is attracting emerging interest within the field of energy sustainability. Here the authors provide a review of the state-of-art research in this topic. The fundamental principles and the general criteria of radiative cooling are discussed. Additionally, the research progress in developing high performance radiative cooling materials, system design, and applications is also summarized, providing the most up-to-date perspective on this active research area.
R. Jackson Spurling, Eric A. Lass, Xin Wang, and Katharine Page
Phys. Rev. Materials 6, 090301 (2022) - Published 9 September, 2022
The development of high-entropy materials has, by virtue of the inherent complexity and sublattice disorder in such systems, unlocked a plethora of unique and tunable property spaces of interest across a wide range of applications. As a result, understanding structure-property relationships in these systems has become an area of interest within materials research, with particular emphasis on the transition to the unique disordered single-phase structure. This work reviews recent progress on studies of phase transition behavior in high-entropy oxides, with a particular focus on the role of entropy-stabilization in these complex systems.
M. Thuy, A. Spyrantis, M. Böhning, U. Niebergall, and R. Maaß
Phys. Rev. Materials 6, L090601 (2022) - Published 20 September, 2022
Seongjin Ahn and Sankar Das Sarma
Phys. Rev. Materials 6, L091001 (2022) - Published 8 September, 2022
Jihao Yu, Weiwei Wu, Huaping Zhang, Ruiwen Shao, Fan Zhang, Hong Wang, Zian Li, Junhua Luan, Zengbao Jiao, Chain Tsuan Liu, Baoan Sun, Haiyang Bai, and Weihua Wang
Phys. Rev. Materials 6, L091401 (2022) - Published 1 September, 2022
Ivan Kurniawan, Yoshio Miura, and Kazuhiro Hono
Phys. Rev. Materials 6, L091402 (2022) - Published 14 September, 2022
Pranab Parimal Biswas, Cosme Milesi-Brault, Alfredo Blázquez Martínez, Naveen Aruchamy, Longfei Song, Veronika Kovacova, Sebastjan Glinšek, Torsten Granzow, Emmanuel Defay, and Mael Guennou
Phys. Rev. Materials 6, L091403 (2022) - Published 20 September, 2022
Homayoun Jafari, Arunesh Roy, and Jagoda Sławińska
Phys. Rev. Materials 6, L091404 (2022) - Published 23 September, 2022
Paul Worm, Liang Si, Motoharu Kitatani, Ryotaro Arita, Jan M. Tomczak, and Karsten Held
Phys. Rev. Materials 6, L091801 (2022) - Published 6 September, 2022
Alla Chikina, Gargee Bhattacharyya, Davide Curcio, Charlotte E. Sanders, Marco Bianchi, Nicola Lanatà, Matthew Watson, Cephise Cacho, Martin Bremholm, and Philip Hofmann
Phys. Rev. Materials 6, L092001 (2022) - Published 28 September, 2022
Celesta S. Chang, Jiaxin Sun, Seunghyun Khim, Andrew P. Mackenzie, Darrell G. Schlom, and David A. Muller
Phys. Rev. Materials 6, 093401 (2022) - Published 2 September, 2022
Andy Paul Chen, Arthur H. Heuer, Michael W. Finnis, and W. M. C. Foulkes
Phys. Rev. Materials 6, 093402 (2022) - Published 19 September, 2022
Mauro Boero, Fumihiro Imoto, and Atsushi Oshiyama
Phys. Rev. Materials 6, 093403 (2022) - Published 30 September, 2022
Eric Rothchild, Max Poschmann, M. Asta, and D. C. Chrzan
Phys. Rev. Materials 6, 093601 (2022) - Published 2 September, 2022
Jiayuwen Qi, Christian Oberdorfer, Wolfgang Windl, and Emmanuelle A. Marquis
Phys. Rev. Materials 6, 093602 (2022) - Published 19 September, 2022
Kazuma Ito, Takuya Mitsunobu, Yuya Ishiguro, Yusuke Kohigashi, and Kazumasa Tsutsui
Phys. Rev. Materials 6, 093603 (2022) - Published 21 September, 2022
Jiongzhi Zheng, Dongliang Shi, Sijing Liu, Yuewang Yang, Chongjia Lin, Zheng Chang, Ruiqiang Guo, and Baoling Huang
Phys. Rev. Materials 6, 093801 (2022) - Published 13 September, 2022
Satoshi Hagiwara, Satomichi Nishihara, Fumiaki Kuroda, and Minoru Otani
Phys. Rev. Materials 6, 093802 (2022) - Published 19 September, 2022
Longhai Lai, Pierre-Antoine Geslin, and Alain Karma
Phys. Rev. Materials 6, 093803 (2022) - Published 21 September, 2022
Christopher Lane and Jian-Xin Zhu
Phys. Rev. Materials 6, 094001 (2022) - Published 6 September, 2022
Bibhu Prasad Sahu, Wenqian Wu, Jian Wang, and Amit Misra
Phys. Rev. Materials 6, 094002 (2022) - Published 7 September, 2022
Minsung Kim, Myron Hupalo, Michael C. Tringides, Patricia A. Thiel, Kai-Ming Ho, and Cai-Zhuang Wang
Phys. Rev. Materials 6, 094003 (2022) - Published 8 September, 2022
M. Amiri, F. Bagherpour, and H. Hadipour
Phys. Rev. Materials 6, 094004 (2022) - Published 12 September, 2022
Abhishek Sharan, Muhammad Sajjad, David J. Singh, and Nirpendra Singh
Phys. Rev. Materials 6, 094005 (2022) - Published 12 September, 2022
Daniel Erkensten, Samuel Brem, Raül Perea-Causín, and Ermin Malic
Phys. Rev. Materials 6, 094006 (2022) - Published 13 September, 2022
Pankaj Kumar, Vinit Sharma, Sharmila N. Shirodkar, and Pratibha Dev
Phys. Rev. Materials 6, 094007 (2022) - Published 19 September, 2022
Dapeng Jing, Yong Han, James W. Evans, Marek Kolmer, Zhe Fei, and Michael C. Tringides
Phys. Rev. Materials 6, 094008 (2022) - Published 20 September, 2022
A. Rousseau, P. Valvin, C. Elias, L. Xue, J. Li, J. H. Edgar, B. Gil, and G. Cassabois
Phys. Rev. Materials 6, 094009 (2022) - Published 20 September, 2022
Maryam Khosravian and Jose L. Lado
Phys. Rev. Materials 6, 094010 (2022) - Published 23 September, 2022
Rui Yang, Xiao-Huan Lv, Yin-Ti Ren, Yue-Jiao Zhang, Hu Zhang, Chen-Dong Jin, Ru-Qian Lian, Rui-Ning Wang, Peng-Lai Gong, Xing-Qiang Shi, and Jiang-Long Wang
Phys. Rev. Materials 6, 094011 (2022) - Published 27 September, 2022
Cunquan Li and Yukai An
Phys. Rev. Materials 6, 094012 (2022) - Published 29 September, 2022
Jiale Huang, Bingxian Shi, Feihao Pan, Jinchen Wang, Juanjuan Liu, Daye Xu, Hongxia Zhang, Tianlong Xia, and Peng Cheng
Phys. Rev. Materials 6, 094013 (2022) - Published 30 September, 2022
Lin-Lin Wang
Phys. Rev. Materials 6, 094201 (2022) - Published 20 September, 2022
M. Onose, H. Takahashi, T. Saito, T. Kamiyama, R. Takahashi, H. Wadati, S. Kitao, M. Seto, H. Sagayama, Y. Yamasaki, T. Sato, F. Kagawa, and S. Ishiwata
Phys. Rev. Materials 6, 094401 (2022) - Published 6 September, 2022
Yuki K. Wakabayashi, Masaki Kobayashi, Yukiharu Takeda, Miho Kitamura, Takahito Takeda, Ryo Okano, Yoshiharu Krockenberger, Yoshitaka Taniyasu, and Hideki Yamamoto
Phys. Rev. Materials 6, 094402 (2022) - Published 7 September, 2022
Brenden R. Ortiz, Paul M. Sarte, Ganesh Pokharel, Michael Garcia, Marcos Marmolejo, and Stephen D. Wilson
Phys. Rev. Materials 6, 094403 (2022) - Published 12 September, 2022
Xiang Chen, Enrico Schierle, Yu He, Mayia Vranas, John William Freeland, Jessica L. McChesney, Ramamoorthy Ramesh, Robert J. Birgeneau, and Alex Frano
Phys. Rev. Materials 6, 094404 (2022) - Published 12 September, 2022
Manohar H. Karigerasi, Kisung Kang, Jeffrey Huang, Vanessa K. Peterson, Kirrily C. Rule, Andrew J. Studer, André Schleife, Pinshane Y. Huang, and Daniel P. Shoemaker
Phys. Rev. Materials 6, 094405 (2022) - Published 14 September, 2022
Chengwu Xie, Hongkuan Yuan, Zeying Zhang, and Xiaotian Wang
Phys. Rev. Materials 6, 094406 (2022) - Published 15 September, 2022
Yu Liu (刘育), M. M. Bordelon, A. Weiland, P. F. S. Rosa, S. M. Thomas, J. D. Thompson, F. Ronning, and E. D. Bauer
Phys. Rev. Materials 6, 094407 (2022) - Published 16 September, 2022
Layered van der Waals (vdW) magnetic materials have attracted widespread attention as new platforms for understanding and controlling magnetism in the two-dimensional limit for spintronic devices. In contrast to -electron vdW magnets, very few f-electron vdW magnets have been studied. Here, the authors report the physical properties of CeTe single crystals, a layered -electron vdW magnet. Four consecutive (magnetic) phase transitions at ∼ 5.2, 2.1, 0.9, and 0.4 K are observed, suggesting competing antiferromagnetic and ferromagnetic exchange interactions. The Hall effect indicates that CeTe is a multiband system with a relatively high electron mobility, providing opportunities for future device applications.
A. Tröster, C. Verdi, C. Dellago, I. Rychetsky, G. Kresse, and W. Schranz
Phys. Rev. Materials 6, 094408 (2022) - Published 16 September, 2022
A. A. Aczel, Q. Chen, J. P. Clancy, C. dela Cruz, D. Reig-i-Plessis, G. J. MacDougall, C. J. Pollock, M. H. Upton, T. J. Williams, N. LaManna, J. P. Carlo, J. Beare, G. M. Luke, and H. D. Zhou
Phys. Rev. Materials 6, 094409 (2022) - Published 19 September, 2022
Takashi Kurumaji, Masaki Gen, Shunsuke Kitou, Hajime Sagayama, Akihiko Ikeda, and Taka-hisa Arima
Phys. Rev. Materials 6, 094410 (2022) - Published 22 September, 2022
Saheli Samanta, Sudipta Chatterjee, Subrata Ghosh, and Kalyan Mandal
Phys. Rev. Materials 6, 094411 (2022) - Published 22 September, 2022
Ajay Tiwari, D. Chandrasekhar Kakarla, M.-J. Hsieh, J.-Y Lin, C. W. Wang, L. K. Tseng, C. E. Lu, Arkadeb Pal, T. W. Kuo, Mitch M. C. Chou, and H. D. Yang
Phys. Rev. Materials 6, 094412 (2022) - Published 28 September, 2022
M. Iakovleva, T. Petersen, A. Alfonsov, Y. Skourski, H.-J. Grafe, E. Vavilova, R. Nath, L. Hozoi, and V. Kataev
Phys. Rev. Materials 6, 094413 (2022) - Published 28 September, 2022
P. F. Chen, D. Lan, Y. Y. Li, P. Yang, X. J. Yu, K. Han, L. Q. Xu, J. W. Huang, J. S. Chen, G. M. Chow, W. B. Wu, and Z. Huang
Phys. Rev. Materials 6, 094414 (2022) - Published 28 September, 2022
Peng-Bo Song (宋鹏博), Zhiwei Hu, Su-Yang Hsu, Jin-Ming Chen, Jyh-Fu Lee, Shan-Shan Miao (苗杉杉), You-Guo Shi (石友国), and Hai L. Feng (冯海)
Phys. Rev. Materials 6, 094415 (2022) - Published 29 September, 2022
Liangbin Zhang, Zhiguo Wang, Shengwen Shu, Yongming Hu, Chunchun Li, Shanming Ke, Fei Li, and Longlong Shu
Phys. Rev. Materials 6, 094416 (2022) - Published 29 September, 2022
H. Tsukiyama, S. Morota, S. Shimono, Y. Iwasaki, M. Hagiwara, Y. Hosokoshi, and H. Yamaguchi
Phys. Rev. Materials 6, 094417 (2022) - Published 30 September, 2022
Patrick Quarterman, Yabin Fan, Zhijie Chen, Christopher J. Jensen, Rajesh V. Chopdekar, Dustin A. Gilbert, Megan E. Holtz, Mark D. Stiles, Julie A. Borchers, Kai Liu, Luqiao Liu, and Alexander J. Grutter
Phys. Rev. Materials 6, 094418 (2022) - Published 30 September, 2022
The recent emergence of antiparallel interface coupling in hybrid ferromagnet metal/ferromagnetic insulator bilayers based on YFeO and NiFe raises questions about magnetic exchange coupling at this technologically important interface. A systematic study of heterostructures incorporating alternative ferromagnetic metals and a variety of substrates reveals that the antiparallel magnetic interaction is unique to heterostructures grown on amorphous SiO, while multilayers on GdGaO or GdGaO/Pt exhibit the traditional parallel exchange. X-ray diffraction implicates changes in the crystal order and orientation, which in a ferrimagnet such as YFeO may expose the minority spin lattice at the reconstructed interface for films on SiO.
Sandip Thakur, Connor Jaymes Dionne, Pravin Karna, Sean W. King, William Lanford, Han Li, Shouvik Banerjee, Devin Merrill, Patrick E. Hopkins, and Ashutosh Giri
Phys. Rev. Materials 6, 094601 (2022) - Published 2 September, 2022
Sajjan Sheoran, Preeti Bhumla, and Saswata Bhattacharya
Phys. Rev. Materials 6, 094602 (2022) - Published 6 September, 2022
Yuri Osetsky, Mao-Hua Du, German Samolyuk, Steven J. Zinkle, and Eva Zarkadoula
Phys. Rev. Materials 6, 094603 (2022) - Published 15 September, 2022
Juha-Pekka Lehtiö, Zahra Jahanshah Rad, Marko Punkkinen, Risto Punkkinen, Mikhail Kuzmin, Pekka Laukkanen, and Kalevi Kokko
Phys. Rev. Materials 6, 094604 (2022) - Published 19 September, 2022
V. S. Krivobok, E. A. Ekimov, M. V. Kondrin, S. N. Nikolaev, M. A. Chernopitssky, A. A. Deeva, D. A. Litvinov, and I. I. Minaev
Phys. Rev. Materials 6, 094605 (2022) - Published 26 September, 2022
Chongze Wang, Shuyuan Liu, Hyunsoo Jeon, Yu Jia, and Jun-Hyung Cho
Phys. Rev. Materials 6, 094801 (2022) - Published 20 September, 2022
Leandro Salemi and Peter M. Oppeneer
Phys. Rev. Materials 6, 095001 (2022) - Published 6 September, 2022
Alexander Gutsche, Sebastian Hambsch, Nuno Casa Branca, Regina Dittmann, Stefan Scholz, and Joachim Knoch
Phys. Rev. Materials 6, 095002 (2022) - Published 21 September, 2022
Zijian Jiang, V. Soghomonian, and J. J. Heremans
Phys. Rev. Materials 6, 095003 (2022) - Published 23 September, 2022
Marc Reynaud, Zuoming Dong, Hyoju Park, Wente Li, Agham B. Posadas, Jamie H. Warner, Daniel Wasserman, and Alexander A. Demkov
Phys. Rev. Materials 6, 095201 (2022) - Published 2 September, 2022
Sylvain Chevalier, Filippo Fabbri, Khalid Lahlil, Yves Lassailly, Lucio Martinelli, Thierry Gacoin, and Jacques Peretti
Phys. Rev. Materials 6, 095202 (2022) - Published 12 September, 2022
Wente Li, Chad M. Landis, and Alexander A. Demkov
Phys. Rev. Materials 6, 095203 (2022) - Published 20 September, 2022
Mark E. Ziffer, Lucas Huber, Feifan Wang, Victoria A. Posey, Jake C. Russell, Taketo Handa, Xavier Roy, and X.-Y. Zhu
Phys. Rev. Materials 6, 095401 (2022) - Published 2 September, 2022
Lorena Alzate-Vargas, K. S. N. Vikrant, Srikanth Allu, and Jean-Luc Fattebert
Phys. Rev. Materials 6, 095402 (2022) - Published 9 September, 2022
Jialiang Wei, Leon Shaw, and Wei Chen
Phys. Rev. Materials 6, 095403 (2022) - Published 28 September, 2022
Constantinos Nicolaides, Eliana Nicolaidou, Paris Papagiorgis, Grigorios Itskos, Sophia C. Hayes, and Theodossis Trypiniotis
Phys. Rev. Materials 6, 095601 (2022) - Published 7 September, 2022
Anshul Chawla, Frank S. Bates, Kevin D. Dorfman, and David C. Morse
Phys. Rev. Materials 6, 095602 (2022) - Published 13 September, 2022
Hicham Jabraoui, Mehdi Djafari Rouhani, Carole Rossi, and Alain Esteve
Phys. Rev. Materials 6, 096001 (2022) - Published 27 September, 2022
Angela Cleri, John Tomko, Kathleen Quiambao-Tomko, Mario V. Imperatore, Yanglin Zhu, J. Ryan Nolen, Joshua Nordlander, Joshua D. Caldwell, Zhiqiang Mao, Noel C. Giebink, Kyle P. Kelley, Evan Runnerstrom, Patrick Hopkins, and Jon-Paul Maria
Phys. Rev. Materials 6, 099901 (2022) - Published 14 September, 2022