Mass-transport properties of ternary Fe(C,O) alloys revealed by multicomponent cluster synergies
Thomas Schuler, Maylise Nastar, and Luca Messina
Phys. Rev. Materials 4, 020401(R) (2020) - Published 18 February, 2020
Elbruz Murat Baba, Jose Montero, Evgenii Strugovshchikov, Esra Özkan Zayim, and Smagul Karazhanov
Phys. Rev. Materials 4, 025201 (2020) - Published 14 February, 2020
When exposed to air, opaque yttrium dihydride YH turns into transparent and photochromic yttrium oxyhydride YHO. YHO darkens reversibly when illuminated with light of adequate energy and intensity. The darkening is produced by light-induced oxygen release and diffusion. Therefore, the complete bleaching of the darkened films, and hence the reversibility of the process, only takes place if a source of oxygen is provided, e.g. in air.
Lance Kavalsky, Sankha Mukherjee, and Chandra Veer Singh
Phys. Rev. Materials 4, 021001(R) (2020) - Published 24 February, 2020
Owing to its unique material properties, monolayer phosphorene has been previously predicted to be useful in advancing rechargeable battery technology forward. However, practical applications of phosphorene are currently hindered due to its weak ambient stability stemming from oxygen dissociation. In this paper, using density functional theory-based calculations, the authors identified lattice compression as a promising approach towards inhibiting singlet O dissociation on phosphorene. This approach has the potential to significantly improve the ambient stability of phosphorene, and realize it as a material for developing green technologies.
P. M. Derlet and S. L. Dudarev
Phys. Rev. Materials 4, 023605 (2020) - Published 24 February, 2020
New generation nuclear fission and future fusion reactors provide one approach to address the world’s increasing energy requirements. The irradiation of fission/fusion components can lead to fundamental changes in material properties that affect the stability and performance of not only the material component but that of the entire reactor. How does the material state evolve with respect to the irradiation dose, and can there exist a microstructure resistant to further irradiation? The present work develops a new computationally efficient approach to answer these questions.
Thomas Schuler, Maylise Nastar, and Luca Messina
Phys. Rev. Materials 4, 020401(R) (2020) - Published 18 February, 2020
Bin Wu, Zhitong Bai, Amit Misra, and Yue Fan
Phys. Rev. Materials 4, 020601(R) (2020) - Published 18 February, 2020
Jens Niederhausen, Antoni Franco-Cañellas, Simon Erker, Thorsten Schultz, Katharina Broch, Alexander Hinderhofer, Steffen Duhm, Pardeep K. Thakur, David A. Duncan, Alexander Gerlach, Tien-Lin Lee, Oliver T. Hofmann, Frank Schreiber, and Norbert Koch
Phys. Rev. Materials 4, 020602(R) (2020) - Published 28 February, 2020
Lance Kavalsky, Sankha Mukherjee, and Chandra Veer Singh
Phys. Rev. Materials 4, 021001(R) (2020) - Published 24 February, 2020
Owing to its unique material properties, monolayer phosphorene has been previously predicted to be useful in advancing rechargeable battery technology forward. However, practical applications of phosphorene are currently hindered due to its weak ambient stability stemming from oxygen dissociation. In this paper, using density functional theory-based calculations, the authors identified lattice compression as a promising approach towards inhibiting singlet O dissociation on phosphorene. This approach has the potential to significantly improve the ambient stability of phosphorene, and realize it as a material for developing green technologies.
D. Santos-Cottin, E. Martino, F. Le Mardelé, C. Witteveen, F. O. von Rohr, C. C. Homes, Z. Rukelj, and Ana Akrap
Phys. Rev. Materials 4, 021201(R) (2020) - Published 10 February, 2020
S. Keshavarz, I. Di Marco, D. Thonig, L. Chioncel, O. Eriksson, and Y. O. Kvashnin
Phys. Rev. Materials 4, 021401(R) (2020) - Published 28 February, 2020
Sida Ma, Rui Yan, Nanfu Zong, Ruslan L. Davidchack, Tao Jing, and Hongbiao Dong
Phys. Rev. Materials 4, 023401 (2020) - Published 4 February, 2020
Srivatsa Chakravarthi, Chris Moore, April Opsvig, Christian Pederson, Emma Hunt, Andrew Ivanov, Ian Christen, Scott Dunham, and Kai-Mei C. Fu
Phys. Rev. Materials 4, 023402 (2020) - Published 25 February, 2020
Zhencheng Jiang, Silong Quan, Ning Xu, Linghui He, and Yong Ni
Phys. Rev. Materials 4, 023403 (2020) - Published 26 February, 2020
R. Backofen and A. Voigt
Phys. Rev. Materials 4, 023404 (2020) - Published 28 February, 2020
V. M. Pereira, C. N. Wu, C. E. Liu, S.-C. Liao, C. F. Chang, C.-Y. Kuo, C. Koz, U. Schwarz, H.-J. Lin, C. T. Chen, L. H. Tjeng, and S. G. Altendorf
Phys. Rev. Materials 4, 023405 (2020) - Published 28 February, 2020
Petr Grigorev, Thomas D. Swinburne, and James R. Kermode
Phys. Rev. Materials 4, 023601 (2020) - Published 12 February, 2020
Gilberto Rodrigues-Junior, Lucas Atila Bernardes Marçal, Guilherme A. S. Ribeiro, Paulo Henrique de Oliveira Rappl, Eduardo Abramof, Paulo Vitor Sciammarella, Luciano de Moura Guimarães, Carlos Alberto Pérez, and Ângelo Malachias
Phys. Rev. Materials 4, 023602 (2020) - Published 12 February, 2020
Sheng Yin, Guangming Cheng, Yong Zhu, and Huajian Gao
Phys. Rev. Materials 4, 023603 (2020) - Published 24 February, 2020
Tom Vincent-Dospital, Renaud Toussaint, Alain Cochard, Knut Jørgen Måløy, and Eirik G. Flekkøy
Phys. Rev. Materials 4, 023604 (2020) - Published 24 February, 2020
P. M. Derlet and S. L. Dudarev
Phys. Rev. Materials 4, 023605 (2020) - Published 24 February, 2020
New generation nuclear fission and future fusion reactors provide one approach to address the world’s increasing energy requirements. The irradiation of fission/fusion components can lead to fundamental changes in material properties that affect the stability and performance of not only the material component but that of the entire reactor. How does the material state evolve with respect to the irradiation dose, and can there exist a microstructure resistant to further irradiation? The present work develops a new computationally efficient approach to answer these questions.
Kangming Li and Chu-Chun Fu
Phys. Rev. Materials 4, 023606 (2020) - Published 25 February, 2020
Pieter Vlugter and Yves Bellouard
Phys. Rev. Materials 4, 023607 (2020) - Published 27 February, 2020
Shoji Ishibashi, Yuji Ikeda, Fritz Körmann, Blazej Grabowski, and Jörg Neugebauer
Phys. Rev. Materials 4, 023608 (2020) - Published 27 February, 2020
Gaoxue Wang, Ping Yang, and Enrique R. Batista
Phys. Rev. Materials 4, 024001 (2020) - Published 26 February, 2020
Adam M. Pfeifle and Marcelo A. Kuroda
Phys. Rev. Materials 4, 024002 (2020) - Published 27 February, 2020
T. Yilmaz, G. D. Gu, E. Vescovo, K. Kaznatcheev, and B. Sinkovic
Phys. Rev. Materials 4, 024201 (2020) - Published 5 February, 2020
Haiyang Yang, Wei You, Jialu Wang, Junwu Huang, Chuanying Xi, Xiaofeng Xu, Chao Cao, Mingliang Tian, Zhu-An Xu, Jianhui Dai, and Yuke Li
Phys. Rev. Materials 4, 024202 (2020) - Published 10 February, 2020
Jisoo Moon, Zengle Huang, Weida Wu, and Seongshik Oh
Phys. Rev. Materials 4, 024203 (2020) - Published 10 February, 2020
A. V. Ponomareva, B. O. Mukhamedov, and I. A. Abrikosov
Phys. Rev. Materials 4, 024401 (2020) - Published 4 February, 2020
Christina A. C. Garcia, Joshua D. Bocarsly, and Ram Seshadri
Phys. Rev. Materials 4, 024402 (2020) - Published 4 February, 2020
J. R. Massey, K. Matsumoto, M. Strungaru, R. C. Temple, T. Higo, K. Kondou, R. F. L. Evans, G. Burnell, R. W. Chantrell, Y. Otani, and C. H. Marrows
Phys. Rev. Materials 4, 024403 (2020) - Published 6 February, 2020
Sascha Brinker, Manuel dos Santos Dias, and Samir Lounis
Phys. Rev. Materials 4, 024404 (2020) - Published 10 February, 2020
Hongying Jia, Bernd Zimmermann, Gregor Michalicek, Gustav Bihlmayer, and Stefan Blügel
Phys. Rev. Materials 4, 024405 (2020) - Published 11 February, 2020
Binbin Chen, Nicolas Gauquelin, Pim Reith, Ufuk Halisdemir, Daen Jannis, Matjaž Spreitzer, Mark Huijben, Stefan Abel, Jean Fompeyrine, Johan Verbeeck, Hans Hilgenkamp, Guus Rijnders, and Gertjan Koster
Phys. Rev. Materials 4, 024406 (2020) - Published 12 February, 2020
K. P. Kelley, D. E. Yilmaz, L. Collins, Y. Sharma, H. N. Lee, D. Akbarian, A. C. T. van Duin, P. Ganesh, and R. K. Vasudevan
Phys. Rev. Materials 4, 024407 (2020) - Published 12 February, 2020
Xiaodong Zhou, Jan-Philipp Hanke, Wanxiang Feng, Stefan Blügel, Yuriy Mokrousov, and Yugui Yao
Phys. Rev. Materials 4, 024408 (2020) - Published 13 February, 2020
Johan Hellsvik, Roberto Díaz Pérez, R. Matthias Geilhufe, Martin Månsson, and Alexander V. Balatsky
Phys. Rev. Materials 4, 024409 (2020) - Published 18 February, 2020
K. M. Taddei, L. D. Sanjeewa, J. Xing, Q. Zhang, D. Parker, A. Podlesnyak, C. dela Cruz, and A. S. Sefat
Phys. Rev. Materials 4, 024410 (2020) - Published 18 February, 2020
Shuang Yu, Xinyu Liu, Guoqiang Zhao, Yi Peng, Xiancheng Wang, Jianfa Zhao, Wenmin Li, Zheng Deng, Jacek K. Furdyna, Y. J. Uemura, and Changqing Jin
Phys. Rev. Materials 4, 024411 (2020) - Published 18 February, 2020
Linus Kautzsch, Joshua D. Bocarsly, Claudia Felser, Stephen D. Wilson, and Ram Seshadri
Phys. Rev. Materials 4, 024412 (2020) - Published 21 February, 2020
Yang Song, Xiaoran Liu, Fangdi Wen, M. Kareev, Ruyi Zhang, Yujuan Pei, Jiachang Bi, Padraic Shafer, Alpha T. N'Diaye, Elke Arenholz, Se Young Park, Yanwei Cao, and J. Chakhalian
Phys. Rev. Materials 4, 024413 (2020) - Published 24 February, 2020
G. G. Baez Flores, I. A. Zhuravlev, and K. D. Belashchenko
Phys. Rev. Materials 4, 024414 (2020) - Published 24 February, 2020
Hebatalla Elnaggar, RuPan Wang, Mahnaz Ghiasi, Maria Yañez, Mario U. Delgado-Jaime, Mai Hussein Hamed, Amélie Juhin, Sarnjeet S. Dhesi, and Frank de Groot
Phys. Rev. Materials 4, 024415 (2020) - Published 26 February, 2020
Carsten Dubs, Oleksii Surzhenko, Ronny Thomas, Julia Osten, Tobias Schneider, Kilian Lenz, Jörg Grenzer, René Hübner, and Elke Wendler
Phys. Rev. Materials 4, 024416 (2020) - Published 27 February, 2020
Haruka Miyazaki, Takanori Sugimoto, Katsuhiro Morita, and Takami Tohyama
Phys. Rev. Materials 4, 024417 (2020) - Published 28 February, 2020
Beluvalli E. Prasad, Surasree Sadhukhan, Thomas C. Hansen, Claudia Felser, Sudipta Kanungo, and Martin Jansen
Phys. Rev. Materials 4, 024418 (2020) - Published 28 February, 2020
Inga A. Fischer, Caterina J. Clausen, Daniel Schwarz, Peter Zaumseil, Giovanni Capellini, Michele Virgilio, Maria Cecilia da Silva Figueira, Stefan Birner, Sebastian Koelling, Paul M. Koenraad, Michael R. S. Huang, Christoph T. Koch, Torsten Wendav, Kurt Busch, and Jörg Schulze
Phys. Rev. Materials 4, 024601 (2020) - Published 19 February, 2020
Basita Das, Irene Aguilera, Uwe Rau, and Thomas Kirchartz
Phys. Rev. Materials 4, 024602 (2020) - Published 26 February, 2020
C. Shinei, H. Kato, H. Watanabe, T. Makino, S. Yamasaki, S. Koizumi, and T. Umeda
Phys. Rev. Materials 4, 024603 (2020) - Published 27 February, 2020
Anupam Roy, Rik Dey, Tanmoy Pramanik, Amritesh Rai, Ryan Schalip, Sarmita Majumder, Samaresh Guchhait, and Sanjay K. Banerjee
Phys. Rev. Materials 4, 025001 (2020) - Published 10 February, 2020
C. J. Sayers, L. S. Farrar, S. J. Bending, M. Cattelan, A. J. H. Jones, N. A. Fox, G. Kociok-Köhn, K. Koshmak, J. Laverock, L. Pasquali, and E. Da Como
Phys. Rev. Materials 4, 025002 (2020) - Published 11 February, 2020
M. C. Palenik, C. A. Klug, M. W. Conroy, S. A. Fischer, D. Gunlycke, B. I. Dunlap, L. Stevens, P. Zavalij, and B. Eichhorn
Phys. Rev. Materials 4, 025003 (2020) - Published 18 February, 2020
Akira Chikamatsu, Takahiro Maruyama, Tsukasa Katayama, Yu Su, Yoshihiro Tsujimoto, Kazunari Yamaura, Miho Kitamura, Koji Horiba, Hiroshi Kumigashira, and Tetsuya Hasegawa
Phys. Rev. Materials 4, 025004 (2020) - Published 18 February, 2020
Santosh Adhikari, Hong Tang, Bimal Neupane, Adrienn Ruzsinszky, and Gábor I. Csonka
Phys. Rev. Materials 4, 025005 (2020) - Published 27 February, 2020
Chiara Bigi, Pasquale Orgiani, Jagoda Sławińska, Jun Fujii, John T. Irvine, Silvia Picozzi, Giancarlo Panaccione, Ivana Vobornik, Giorgio Rossi, David Payne, and Francesco Borgatti
Phys. Rev. Materials 4, 025006 (2020) - Published 27 February, 2020
Elbruz Murat Baba, Jose Montero, Evgenii Strugovshchikov, Esra Özkan Zayim, and Smagul Karazhanov
Phys. Rev. Materials 4, 025201 (2020) - Published 14 February, 2020
When exposed to air, opaque yttrium dihydride YH turns into transparent and photochromic yttrium oxyhydride YHO. YHO darkens reversibly when illuminated with light of adequate energy and intensity. The darkening is produced by light-induced oxygen release and diffusion. Therefore, the complete bleaching of the darkened films, and hence the reversibility of the process, only takes place if a source of oxygen is provided, e.g. in air.
J. Ryan Nolen, Evan L. Runnerstrom, Kyle P. Kelley, Ting S. Luk, Thomas G. Folland, Angela Cleri, Jon-Paul Maria, and Joshua D. Caldwell
Phys. Rev. Materials 4, 025202 (2020) - Published 28 February, 2020
Sheuly Ghosh and Subhradip Ghosh
Phys. Rev. Materials 4, 025401 (2020) - Published 3 February, 2020
F. Rieger, V. Roddatis, K. Kaiser, G. Bendt, S. Schulz, and C. Jooss
Phys. Rev. Materials 4, 025402 (2020) - Published 6 February, 2020
D. S. Lambert, A. Lennon, and P. A. Burr
Phys. Rev. Materials 4, 025403 (2020) - Published 10 February, 2020
Christophe Candolfi, Gabin Guélou, Cédric Bourgès, Andrew R. Supka, Rabih Al Rahal Al Orabi, Marco Fornari, Bernard Malaman, Gérard Le Caër, Pierric Lemoine, Vincent Hardy, Jean-Marc Zanotti, Raju Chetty, Michihiro Ohta, Koichiro Suekuni, and Emmanuel Guilmeau
Phys. Rev. Materials 4, 025404 (2020) - Published 19 February, 2020
Hongyao Xie, Xianli Su, Shiqiang Hao, Christopher Wolverton, Ctirad Uher, Xinfeng Tang, and Mercouri G. Kanatzidis
Phys. Rev. Materials 4, 025405 (2020) - Published 28 February, 2020
Enrique Guerrero and David A. Strubbe
Phys. Rev. Materials 4, 025601 (2020) - Published 13 February, 2020
M. Gao and J. H. Perepezko
Phys. Rev. Materials 4, 025602 (2020) - Published 20 February, 2020
Murari Singh, Misaki Ozawa, and Ludovic Berthier
Phys. Rev. Materials 4, 025603 (2020) - Published 24 February, 2020
Chiara Bigi, Zhenkun Tang, Gian Marco Pierantozzi, Pasquale Orgiani, Pranab Kumar Das, Jun Fujii, Ivana Vobornik, Tommaso Pincelli, Alessandro Troglia, Tien-Lin Lee, Regina Ciancio, Goran Drazic, Alberto Verdini, Anna Regoutz, Phil D. C. King, Deepnarayan Biswas, Giorgio Rossi, Giancarlo Panaccione, and Annabella Selloni
Phys. Rev. Materials 4, 025801 (2020) - Published 28 February, 2020
Georgios Araizi-Kanoutas, Jaap Geessinck, Nicolas Gauquelin, Steef Smit, Xanthe H. Verbeek, Shrawan K. Mishra, Peter Bencok, Christoph Schlueter, Tien-Lin Lee, Dileep Krishnan, Jarmo Fatermans, Jo Verbeeck, Guus Rijnders, Gertjan Koster, and Mark S. Golden
Phys. Rev. Materials 4, 026001 (2020) - Published 10 February, 2020
T. Yokoi, Y. Arakawa, K. Ikawa, A. Nakamura, and K. Matsunaga
Phys. Rev. Materials 4, 026002 (2020) - Published 11 February, 2020
Sam Coates, Stuart Thorn, Ronan McGrath, Hem Raj Sharma, and An Pang Tsai
Phys. Rev. Materials 4, 026003 (2020) - Published 11 February, 2020
Shuntaro Oshima, Masayuki Toyoda, and Susumu Saito
Phys. Rev. Materials 4, 026004 (2020) - Published 21 February, 2020