Michael Thoennessen
Phys. Rev. Applied 14, 050001 (2020) - Published 18 November, 2020
Hélène Penvern, Meng Zhou, Benjamin Maillet, Denis Courtier-Murias, Mario Scheel, Jonathan Perrin, Timm Weitkamp, Sandrine Bardet, Sabine Caré, and Philippe Coussot
Phys. Rev. Applied 14, 054051 (2020) - Published 20 November, 2020
Water extraction from plants by evaporation is ubiquitous in nature, and essential for most uses of wood-based products, yet little is known about the internal drying mechanisms. The authors use NMR and x-ray computed tomography to observed the effects of drying at different length scales. In typical porous media drying is due mainly to capillary effects, but in wood the structure’s bound water controls extraction of free liquid from pores, throughout the process. Transfers between bound and free water seem to play a major role in the interaction of plantlike systems with water, and this study provides sound concepts for modeling and controlling the drying properties of such materials.
Pranav S. Mundada, András Gyenis, Ziwen Huang, Jens Koch, and Andrew A. Houck
Phys. Rev. Applied 14, 054033 (2020) - Published 16 November, 2020
In the last two decades the development of superconducting qubits has yielded tremendous improvement, with coherence times increasing over five orders of magnitude. Theory and experiment have shown that noise is currently the limiting factor for qubit coherence in state-of-the-art devices. Here the authors use a qubit’s Floquet states to store quantum information, mitigating flux noise and achieving a 40-fold improvement in coherence time. This experimental demonstration solves a longstanding, critical problem in the field, as it provides a promising approach for dynamically suppressing the ubiquitous noise in quantum devices.
Sergey Dushenko, Kapildeb Ambal, and Robert D. McMichael
Phys. Rev. Applied 14, 054036 (2020) - Published 16 November, 2020
With a room-temperature coherence time as long as milliseconds, the nitrogen-vacancy (N-) center in diamond is used at the leading edge in quantum computing, cryptography, and memory; biocompatible markers and drug delivery; and mechanical, thermal, and magnetic sensors. Despite this prominence, experiments with N- centers are often hampered by poor photon-collection efficiency. The authors use the machine-learning technique of to maximize the information obtained from each photon, which for example speeds up N--center magnetometry by more than an order of magnitude.
Davide Maccariello, William Legrand, Nicolas Reyren, Fernando Ajejas, Karim Bouzehouane, Sophie Collin, Jean-Marie George, Vincent Cros, and Albert Fert
Phys. Rev. Applied 14, 051001 (2020) - Published 12 November, 2020
Per the renewed interest in the magnetic properties of ultrathin multilayers for spintronics, the authors show how electrical-transport characterization can provide crucial information about reversal mechanisms between different magnetic configurations in synthetic antiferromagnetic (SAF) multilayers, with or without perpendicular anisotropy. Here competition between different magnetoresistive effects provides information about the system’s magnetic properties and the proportions of all magnetization components in the stabilized magnetic textures. This work extends previous possibilities toward the detection of isolated magnetic domains, spin spirals, or even skyrmions in SAF systems.
Cuixiu Zheng, Mykola Dvornik, Chengjie Wang, Dun Xiao, Yaowen Liu, Zongzhi Zhang, Yan Zhou, Hamid Mazraati, Martina Ahlberg, Ahmad A. Awad, and Johan Åkerman
Phys. Rev. Applied 14, 054001 (2020) - Published 2 November, 2020
Yuto Kinoshita, Masato Sotome, Tatsuya Miyamoto, Yohei Uemura, Shunto Arai, Sachio Horiuchi, Tatsuo Hasegawa, Hiroshi Okamoto, and Noriaki Kida
Phys. Rev. Applied 14, 054002 (2020) - Published 2 November, 2020
Jing-chun Yan, Yong Zhang, Xiao-gang Yin, and Cheng-ping Huang
Phys. Rev. Applied 14, 054003 (2020) - Published 3 November, 2020
M. Packer, P.J. Hobson, N. Holmes, J. Leggett, P. Glover, M.J. Brookes, R. Bowtell, and T.M. Fromhold
Phys. Rev. Applied 14, 054004 (2020) - Published 3 November, 2020
Philip Taranto, Faraj Bakhshinezhad, Philipp Schüttelkopf, Fabien Clivaz, and Marcus Huber
Phys. Rev. Applied 14, 054005 (2020) - Published 4 November, 2020
B. Kressdorf, T. Meyer, A. Belenchuk, O. Shapoval, M. ten Brink, S. Melles, U. Ross, J. Hoffmann, V. Moshnyaga, M. Seibt, P. Blöchl, and C. Jooss
Phys. Rev. Applied 14, 054006 (2020) - Published 4 November, 2020
Yujing Wang, Jun Ren, Weixuan Zhang, Lu He, and Xiangdong Zhang
Phys. Rev. Applied 14, 054007 (2020) - Published 4 November, 2020
S.M. Buckley, A.N. Tait, J. Chiles, A.N. McCaughan, S. Khan, R.P. Mirin, S.W. Nam, and J.M. Shainline
Phys. Rev. Applied 14, 054008 (2020) - Published 5 November, 2020
N.B. Lu, A.A. Pahlavan, C.A. Browne, D.B. Amchin, H.A. Stone, and S.S. Datta
Phys. Rev. Applied 14, 054009 (2020) - Published 5 November, 2020
Reinaldo Chacon, Aymeric Leray, Jeongmo Kim, Khalid Lahlil, Sanro Mathew, Alexandre Bouhelier, Jong-Wook Kim, Thierry Gacoin, and Gérard Colas des Francs
Phys. Rev. Applied 14, 054010 (2020) - Published 5 November, 2020
Reza Baghdadi, Jason P. Allmaras, Brenden A. Butters, Andrew E. Dane, Saleem Iqbal, Adam N. McCaughan, Emily A. Toomey, Qing-Yuan Zhao, Alexander G. Kozorezov, and Karl K. Berggren
Phys. Rev. Applied 14, 054011 (2020) - Published 6 November, 2020
Martin A. Kainz, Moritz Wenclawiak, Sebastian Schönhuber, Michael Jaidl, Benedikt Limbacher, Aaron M. Andrews, Hermann Detz, Gottfried Strasser, and Karl Unterrainer
Phys. Rev. Applied 14, 054012 (2020) - Published 6 November, 2020
Gerhard Heinzel, Miguel Dovale Álvarez, Alvise Pizzella, Nils Brause, and Juan José Esteban Delgado
Phys. Rev. Applied 14, 054013 (2020) - Published 6 November, 2020
Rahul Tripathi, Pritam Bhattacharyya, Alok Shukla, and Abha Misra
Phys. Rev. Applied 14, 054014 (2020) - Published 9 November, 2020
Nicholas E. Penthorn, Joshua S. Schoenfield, Lisa F. Edge, and HongWen Jiang
Phys. Rev. Applied 14, 054015 (2020) - Published 9 November, 2020
Zi-xiang Xu, Hao Gao, Yu-jiang Ding, Jing Yang, Bin Liang, and Jian-chun Cheng
Phys. Rev. Applied 14, 054016 (2020) - Published 9 November, 2020
Sajjad Taravati and George V. Eleftheriades
Phys. Rev. Applied 14, 054017 (2020) - Published 9 November, 2020
Junbeom Seo and Mincheol Shin
Phys. Rev. Applied 14, 054018 (2020) - Published 10 November, 2020
Patrick Zellekens, Russell Deacon, Pujitha Perla, H. Aruni Fonseka, Timm Mörstedt, Steven A. Hindmarsh, Benjamin Bennemann, Florian Lentz, Mihail I. Lepsa, Ana M. Sanchez, Detlev Grützmacher, Koji Ishibashi, and Thomas Schäpers
Phys. Rev. Applied 14, 054019 (2020) - Published 10 November, 2020
D. Pinna, G. Bourianoff, and K. Everschor-Sitte
Phys. Rev. Applied 14, 054020 (2020) - Published 10 November, 2020
Chunxu Chen, Sultan Can, Jacob Schalch, Xiaoguang Zhao, Guangwu Duan, Richard D. Averitt, and Xin Zhang
Phys. Rev. Applied 14, 054021 (2020) - Published 11 November, 2020
James Lourembam, Xiaojiang Yu, Maria Patricia Rouelli Sabino, Michael Tran, Roslyn Wan Teng Ang, Qi Jia Yap, Sze Ter Lim, and Andrivo Rusydi
Phys. Rev. Applied 14, 054022 (2020) - Published 11 November, 2020
Mikael Kervinen, Alpo Välimaa, Jhon E. Ramírez-Muñoz, and Mika A. Sillanpää
Phys. Rev. Applied 14, 054023 (2020) - Published 11 November, 2020
Fubao Yang, Boyan Tian, Liujun Xu, and Jiping Huang
Phys. Rev. Applied 14, 054024 (2020) - Published 11 November, 2020
Xiaobing Cai, Zhandong Huang, and Jun Yang
Phys. Rev. Applied 14, 054025 (2020) - Published 11 November, 2020
B. L. Brock, M. P. Blencowe, and A. J. Rimberg
Phys. Rev. Applied 14, 054026 (2020) - Published 12 November, 2020
Calvin Pei Yu Wong, Cedric Troadec, Andrew T.S. Wee, and Kuan Eng Johnson Goh
Phys. Rev. Applied 14, 054027 (2020) - Published 12 November, 2020
Zheng-wei Li, Xin-sheng Fang, Bin Liang, Yong Li, and Jian-chun Cheng
Phys. Rev. Applied 14, 054028 (2020) - Published 13 November, 2020
Bing Li, Yabin Hu, Jianlin Chen, Guangyuan Su, Yongquan Liu, Meiying Zhao, and Zheng Li
Phys. Rev. Applied 14, 054029 (2020) - Published 13 November, 2020
Ilia M. Fradkin, Sergey A. Dyakov, and Nikolay A. Gippius
Phys. Rev. Applied 14, 054030 (2020) - Published 13 November, 2020
Jaianth Vijayakumar, Yu Li, David Bracher, Craig W. Barton, Michael Horisberger, Thomas Thomson, Jim Miles, Christoforos Moutafis, Frithjof Nolting, and C.A.F. Vaz
Phys. Rev. Applied 14, 054031 (2020) - Published 13 November, 2020
Tatsuro Oda, Masahiro Hino, Hitoshi Endo, Hideki Seto, and Yuji Kawabata
Phys. Rev. Applied 14, 054032 (2020) - Published 16 November, 2020
Pranav S. Mundada, András Gyenis, Ziwen Huang, Jens Koch, and Andrew A. Houck
Phys. Rev. Applied 14, 054033 (2020) - Published 16 November, 2020
In the last two decades the development of superconducting qubits has yielded tremendous improvement, with coherence times increasing over five orders of magnitude. Theory and experiment have shown that noise is currently the limiting factor for qubit coherence in state-of-the-art devices. Here the authors use a qubit’s Floquet states to store quantum information, mitigating flux noise and achieving a 40-fold improvement in coherence time. This experimental demonstration solves a longstanding, critical problem in the field, as it provides a promising approach for dynamically suppressing the ubiquitous noise in quantum devices.
Yaakov Lumer and Nader Engheta
Phys. Rev. Applied 14, 054034 (2020) - Published 16 November, 2020
Gregory J. Chaplain, Jacopo M. De Ponti, Giulia Aguzzi, Andrea Colombi, and Richard V. Craster
Phys. Rev. Applied 14, 054035 (2020) - Published 16 November, 2020
Sergey Dushenko, Kapildeb Ambal, and Robert D. McMichael
Phys. Rev. Applied 14, 054036 (2020) - Published 16 November, 2020
With a room-temperature coherence time as long as milliseconds, the nitrogen-vacancy (N-) center in diamond is used at the leading edge in quantum computing, cryptography, and memory; biocompatible markers and drug delivery; and mechanical, thermal, and magnetic sensors. Despite this prominence, experiments with N- centers are often hampered by poor photon-collection efficiency. The authors use the machine-learning technique of to maximize the information obtained from each photon, which for example speeds up N--center magnetometry by more than an order of magnitude.
X.F. Zhou, X.Z. Chen, Y.F. You, L.Y. Liao, H. Bai, R.Q. Zhang, Y.J. Zhou, H.Q. Wu, C. Song, and F. Pan
Phys. Rev. Applied 14, 054037 (2020) - Published 17 November, 2020
Juan F. Torres, Yongling Zhao, Shuqi Xu, Zhengyu Li, and Atsuki Komiya
Phys. Rev. Applied 14, 054038 (2020) - Published 17 November, 2020
Shunxi Tang, Li Zhou, Zhengfang Liu, Qingping Wu, Yangming He, Jiajia Luo, and Xianbo Xiao
Phys. Rev. Applied 14, 054039 (2020) - Published 17 November, 2020
Junyi Huang, Tengfeng Zhu, and Zhichao Ruan
Phys. Rev. Applied 14, 054040 (2020) - Published 17 November, 2020
Sung Yoon Min, Ju Young Kim, Sunkyu Yu, Sergey G. Menabde, and Min Seok Jang
Phys. Rev. Applied 14, 054041 (2020) - Published 17 November, 2020
Shayan Lameh, Lijie Ding, and Derek Stein
Phys. Rev. Applied 14, 054042 (2020) - Published 18 November, 2020
Ramūnas Aleksiejūnas, Kazimieras Nomeika, Oleg Kravcov, Saulius Nargelas, Leah Kuritzky, Cheyenne Lynsky, Shuji Nakamura, Claude Weisbuch, and James S. Speck
Phys. Rev. Applied 14, 054043 (2020) - Published 18 November, 2020
An-Qi Wang, Peng-Zhan Xiang, Xing-Guo Ye, Wen-Zhuang Zheng, Dapeng Yu, and Zhi-Min Liao
Phys. Rev. Applied 14, 054044 (2020) - Published 18 November, 2020
Junxiong Wei, Charles Ciret, Maximilien Billet, François Leo, Bart Kuyken, and Simon-Pierre Gorza
Phys. Rev. Applied 14, 054045 (2020) - Published 18 November, 2020
K. Ciesielski, K. Synoradzki, I. Veremchuk, P. Skokowski, D. Szymański, Yu. Grin, and D. Kaczorowski
Phys. Rev. Applied 14, 054046 (2020) - Published 19 November, 2020
T. Elkeles, P. García-Sánchez, W. Yue, A. Ramos, and G. Yossifon
Phys. Rev. Applied 14, 054047 (2020) - Published 19 November, 2020
Calvin Ching Ian Ang, Weiliang Gan, Grayson Dao Hwee Wong, and Wen Siang Lew
Phys. Rev. Applied 14, 054048 (2020) - Published 19 November, 2020
Wan-Lu Song (宋婉露), Jia-Bin You (游佳斌), J.K. Xu (徐家坤), W.L. Yang (杨万里), and Jun-Hong An (安钧鸿)
Phys. Rev. Applied 14, 054049 (2020) - Published 19 November, 2020
Anatoly Parahovnik, Mostafa Asadzadeh, Subith S. Vasu, and Yoav Peles
Phys. Rev. Applied 14, 054050 (2020) - Published 19 November, 2020
Hélène Penvern, Meng Zhou, Benjamin Maillet, Denis Courtier-Murias, Mario Scheel, Jonathan Perrin, Timm Weitkamp, Sandrine Bardet, Sabine Caré, and Philippe Coussot
Phys. Rev. Applied 14, 054051 (2020) - Published 20 November, 2020
Water extraction from plants by evaporation is ubiquitous in nature, and essential for most uses of wood-based products, yet little is known about the internal drying mechanisms. The authors use NMR and x-ray computed tomography to observed the effects of drying at different length scales. In typical porous media drying is due mainly to capillary effects, but in wood the structure’s bound water controls extraction of free liquid from pores, throughout the process. Transfers between bound and free water seem to play a major role in the interaction of plantlike systems with water, and this study provides sound concepts for modeling and controlling the drying properties of such materials.
Andrey A. Rakhubovsky, Darren W. Moore, Uroš Delić, Nikolai Kiesel, Markus Aspelmeyer, and Radim Filip
Phys. Rev. Applied 14, 054052 (2020) - Published 20 November, 2020
J. Woerle, M.E. Bathen, T. Prokscha, A. Galeckas, H.M. Ayedh, L. Vines, and U. Grossner
Phys. Rev. Applied 14, 054053 (2020) - Published 20 November, 2020
Carlos Munuera-Javaloy, Yue Ban, Xi Chen, and Jorge Casanova
Phys. Rev. Applied 14, 054054 (2020) - Published 20 November, 2020
V. Romero-García, N. Jiménez, J.-P. Groby, A. Merkel, V. Tournat, G. Theocharis, O. Richoux, and V. Pagneux
Phys. Rev. Applied 14, 054055 (2020) - Published 20 November, 2020
Xinyu Shu, Jing Zhou, Liang Liu, Weinan Lin, Chenghang Zhou, Shaohai Chen, Qidong Xie, Lizhu Ren, Yu Xiaojiang, Hongxin Yang, and Jingsheng Chen
Phys. Rev. Applied 14, 054056 (2020) - Published 23 November, 2020
Wen-Qiang Liu, Hai-Rui Wei, and Leong-Chuan Kwek
Phys. Rev. Applied 14, 054057 (2020) - Published 23 November, 2020
Xiao-Feng Shi
Phys. Rev. Applied 14, 054058 (2020) - Published 23 November, 2020
Dmitri Pitsun, Aydar Sultanov, Ilya Novikov, Evgeniya Mutsenik, Boris Ivanov, Aleksey Matanin, Viktor Polozov, Elizaveta Malevannaya, Anton Ivanov, Gleb Fedorov, Kaveh Delfanazari, Ilya Rodionov, and Evgeni Il’ichev
Phys. Rev. Applied 14, 054059 (2020) - Published 23 November, 2020
C. Brimont, L. Doyennette, G. Kreyder, F. Réveret, P. Disseix, F. Médard, J. Leymarie, E. Cambril, S. Bouchoule, M. Gromovyi, B. Alloing, S. Rennesson, F. Semond, J. Zúñiga-Pérez, and T. Guillet
Phys. Rev. Applied 14, 054060 (2020) - Published 23 November, 2020
S. Ali Hassani Gangaraj, Boyuan Jin, Christos Argyropoulos, and Francesco Monticone
Phys. Rev. Applied 14, 054061 (2020) - Published 24 November, 2020
Ming-Zhong Ai, Sai Li, Zhibo Hou, Ran He, Zhong-Hua Qian, Zheng-Yuan Xue, Jin-Ming Cui, Yun-Feng Huang, Chuan-Feng Li, and Guang-Can Guo
Phys. Rev. Applied 14, 054062 (2020) - Published 24 November, 2020
Fabio Mangini, Mario Ferraro, Mario Zitelli, Alioune Niang, Alessandro Tonello, Vincent Couderc, and Stefan Wabnitz
Phys. Rev. Applied 14, 054063 (2020) - Published 24 November, 2020
Y. Gul, M. Myronov, S.N. Holmes, and M. Pepper
Phys. Rev. Applied 14, 054064 (2020) - Published 24 November, 2020
Xavier Zambrana-Puyalto, Paolo Ponzellini, Nicolò Maccaferri, and Denis Garoli
Phys. Rev. Applied 14, 054065 (2020) - Published 25 November, 2020
Michal Mičuda, Robert Stárek, Jaromír Fiurášek, and Radim Filip
Phys. Rev. Applied 14, 054066 (2020) - Published 25 November, 2020
He Gao, Zhongming Gu, Shanjun Liang, Shuowei An, Tuo Liu, and Jie Zhu
Phys. Rev. Applied 14, 054067 (2020) - Published 25 November, 2020
Christian Kern, Owen D. Miller, and Graeme W. Milton
Phys. Rev. Applied 14, 054068 (2020) - Published 30 November, 2020
Yuanyuan Chen, Wuhong Zhang, Dongkai Zhang, Xiaodong Qiu, and Lixiang Chen
Phys. Rev. Applied 14, 054069 (2020) - Published 30 November, 2020
Sergio Jiménez-Gambín, Noé Jiménez, and Francisco Camarena
Phys. Rev. Applied 14, 054070 (2020) - Published 30 November, 2020
Tian-Xiang Zhu, Chao Liu, Liang Zheng, Zong-Quan Zhou, Chuan-Feng Li, and Guang-Can Guo
Phys. Rev. Applied 14, 054071 (2020) - Published 30 November, 2020
V. Morosh, J. Linek, B. Müller, M.J. Martínez-Pérez, S. Wolter, T. Weimann, J. Beyer, T. Schurig, O. Kieler, A.B. Zorin, R. Kleiner, and D. Koelle
Phys. Rev. Applied 14, 054072 (2020) - Published 30 November, 2020
Hancong Sun, Raphael Wieland, Zuyu Xu, Zaidong Qi, Yangyang Lv, Ya Huang, Huili Zhang, Xianjing Zhou, Jun Li, Yonglei Wang, Fabian Rudau, Johannes S. Hampp, Dieter Koelle, Shigeyuki Ishida, Hiroshi Eisaki, Yoshiyuki Yoshida, Biaobing Jin, Valery P. Koshelets, Reinhold Kleiner, Huabing Wang, and Peiheng Wu
Phys. Rev. Applied 14, 059901 (2020) - Published 11 November, 2020
Joseph C. Chapman, Trent M. Graham, Christopher K. Zeitler, Herbert J. Bernstein, and Paul G. Kwiat
Phys. Rev. Applied 14, 059902 (2020) - Published 12 November, 2020
Zhi-Yuan Zhou, Shi-Long Liu, Shi-Kai Liu, Yin-Hai Li, Dong-Sheng Ding, Guang-Can Guo, and Bao-Sen Shi
Phys. Rev. Applied 14, 059903 (2020) - Published 18 November, 2020