David A. Hopper, Joseph D. Lauigan, Tzu-Yung Huang, and Lee C. Bassett
Phys. Rev. Applied 13, 024016 (2020) - Published 7 February, 2020
Spin qubits based on nitrogen-vacancy centers in diamond are useful only when the defect exists in the correct charge state—but this state is usually uncontrolled, since it is sensitive to the optical fields used to interrogate the qubit. Using fast, real-time photon detection and control, the authors deterministically prepare the desired charge state and demonstrate that the qubit’s performance as a magnetic sensor is dramatically improved. These experiments yield deeper understanding of the charge and spin dynamics of N- centers, and the all-optical method can be adapted to dynamically control other stochastic properties of solid-state defects for improved performance.
Alistair R. Milne, Claire L. Edmunds, Cornelius Hempel, Federico Roy, Sandeep Mavadia, and Michael J. Biercuk
Phys. Rev. Applied 13, 024022 (2020) - Published 11 February, 2020
In quantum computing systems where entangling logic gates are mediated via bosonic oscillator modes ( trapped ions), residual coupling between qubits and oscillator is a dominant source of gate infidelity. This work shows how discrete phase modulation of the field mediating the entangling operation ensures that the system of qubits is decoupled from multiple oscillator modes, even in the presence of common time-varying sources of noise and hardware instability. The results demonstrate the capabilities of quantum control to drive major performance advances in quantum computing.
F. Allein, V. Tournat, V. Gusev, and G. Theocharis
Phys. Rev. Applied 13, 024023 (2020) - Published 11 February, 2020
Granular phononic crystals have become an appealing platform for the study of a plethora of nonlinear wave phenomena in mechanical structures, and for applications such as vibration filters, tunable switches, and rectifiers. Here the authors reveal the strong benefit of using external magnetic fields to design mechanically unconstrained granular crystals. The resulting magnetogranular crystals are used for a detailed study of both longitudinal and transverse-rotational nonlinear waves. This system offers great freedom in designing complex waveguide geometries, where the interplay between geometry, wave polarization, and nonlinearity could be harnessed for advanced signal processing.
Clinton Cahall, Nurul T. Islam, Daniel J. Gauthier, and Jungsang Kim
Phys. Rev. Applied 13, 024047 (2020) - Published 19 February, 2020
Optical communication via free-space channels is attractive for establishing long-range secure quantum networks, but is often hindered by deleterious effects on the transverse spatial mode profile of the beam, caused by propagation through the atmosphere. Additionally, interferometric measurement at the receiver becomes much more difficult with multimode profiles. This study presents a compact time-delay interferometer with high stability and interference visibility for single- and multimode spatial profiles. The results of this study are important for the future of quantum communication networks as well as a wide range of techniques for classical and quantum optical measurement.
M. Lorente-Crespo, G.C. Ballesteros, C. Mateo-Segura, and C. García-Meca
Phys. Rev. Applied 13, 024050 (2020) - Published 20 February, 2020
Metallic apertures support a rich variety of widely investigated electromagnetic phenomena, which are the basis of many optical devices. Research on edge plasmons in these structures is scarce, though, and limited to dipolar resonances. This study shows that nanoholes additionally support high-order edge plasmons, in the form of whispering-gallery modes. Notably, the excited orders are determined by the lattice symmetries, are very sensitive to the environment, and exhibit highly tailorable features. These results shed light on the physics of metallic nanoholes and point to applications in nanophotonics and plasmonics.
Abhay Shastry, Sosuke Inui, and Charles A. Stafford
Phys. Rev. Applied 13, 024065 (2020) - Published 25 February, 2020
With scanning-probe techniques now widespread, many physical properties can be imaged with atomic precision, providing insight into the quantum world. However, temperature so far has proven impossible to measure with subnanometer resolution. The key hurdle in high-resolution thermal images is reliance on a heat-flux-related signal, which inevitably results in a tradeoff between signal strength and image resolution. The authors propose instead to infer the local temperature of a conducting surface based purely on electrical (not heat-flux) measurements, which may be carried out in the tunneling regime. This would seem to open a vista onto the world of quantum thermodynamics.
M.A. Attarzadeh, J. Callanan, and M. Nouh
Phys. Rev. Applied 13, 021001 (2020) - Published 14 February, 2020
Structures hosting nonreciprocal (one-way) wave propagation are of key interest in signal processing, sensing, and civil infrastructure, yet experimental realization has so far relied on adaptive materials and external stimulation, which require significant power and are not scalable beyond lab prototypes. This work presents an elastic metamaterial that exploits stiffness variations in an array of geometrically phase-shifted resonators to achieve a nonreciprocal tilt of dispersion modes within dynamic modulation regimes. The ability to induce asymmetric vibrational modes in a scalable, energy-efficient manner has direct implications for numerous applications.
Tianhua Feng, Alexander A. Potapov, Zixian Liang, and Yi Xu
Phys. Rev. Applied 13, 021002 (2020) - Published 18 February, 2020
Metasurfaces are powerful platforms for controlling light, with bandwidth and efficiency being the two key parameters. Here conventional transmissive metasurfaces suffer, because they rely on multipoles of different resonant nature to construct Huygens sources. The authors explore the possibility of utilizing congener dipoles (solely electric, without a magnetic component) with similar resonant properties to release these constraints. Beam deflection and focusing, over a broad wavelength band and with high efficiency, are demonstrated. This approach extends the design methodology and improves the performance of metasurfaces.
Qian Ma, Qiao Ru Hong, Guo Dong Bai, Hong Bo Jing, Rui Yuan Wu, Lei Bao, Qiang Cheng, and Tie Jun Cui
Phys. Rev. Applied 13, 021003 (2020) - Published 28 February, 2020
Manipulating the polarization of electromagnetic waves is an important topic in metamaterial research, but conventional methods for tailoring polarization are usually passive or function-limited. To address this issue, the authors create reprogrammable polarization states with a digital coding metasurface to achieve diverse polarization modulations. By applying distinct digital coding sequences, the polarization angle of the reflected beam can be modulated as desired. This flexible, efficient approach will promote applications in communication and imaging, and will increase the potential for information processing with metamaterials.
Chengshuai Yang, Dalong Qi, Fengyan Cao, Yilin He, Jiali Yao, Pengpeng Ding, Xiaoping Ouyang, Yanzhong Yu, Tianqing Jia, Shixiang Xu, Zhenrong Sun, and Shian Zhang
Phys. Rev. Applied 13, 024001 (2020) - Published 3 February, 2020
Erqian Dong, Yangyang Zhou, Yu Zhang, and Huanyang Chen
Phys. Rev. Applied 13, 024002 (2020) - Published 4 February, 2020
Weiqing Tang, Mingming Fu, Jiajun Chen, Baofan Sun, Congming Ke, Yaping Wu, Xu Li, Chunmiao Zhang, Zhiming Wu, and Junyong Kang
Phys. Rev. Applied 13, 024003 (2020) - Published 4 February, 2020
G. Mihajlović, N. Smith, T. Santos, J. Li, M. Tran, M. Carey, B.D. Terris, and J.A. Katine
Phys. Rev. Applied 13, 024004 (2020) - Published 4 February, 2020
D. Hatanaka and H. Yamaguchi
Phys. Rev. Applied 13, 024005 (2020) - Published 5 February, 2020
Hwang-Beom Kim and Jang-Joo Kim
Phys. Rev. Applied 13, 024006 (2020) - Published 5 February, 2020
Hyejin Jang, Luca Marnitz, Torsten Huebner, Johannes Kimling, Timo Kuschel, and David G. Cahill
Phys. Rev. Applied 13, 024007 (2020) - Published 5 February, 2020
Xiao-Feng Shi
Phys. Rev. Applied 13, 024008 (2020) - Published 6 February, 2020
Shutaro Karube, Nobuki Tezuka, Makoto Kohda, and Junsaku Nitta
Phys. Rev. Applied 13, 024009 (2020) - Published 6 February, 2020
Zilong Zhang and Changming Zhao
Phys. Rev. Applied 13, 024010 (2020) - Published 6 February, 2020
Yu. P. Korneeva, N.N. Manova, I.N. Florya, M. Yu. Mikhailov, O.V. Dobrovolskiy, A.A. Korneev, and D. Yu. Vodolazov
Phys. Rev. Applied 13, 024011 (2020) - Published 6 February, 2020
O.V. Dobrovolskiy, E. Begun, V.M. Bevz, R. Sachser, and M. Huth
Phys. Rev. Applied 13, 024012 (2020) - Published 7 February, 2020
Tao Xin, Xinfang Nie, Xiangyu Kong, Jingwei Wen, Dawei Lu, and Jun Li
Phys. Rev. Applied 13, 024013 (2020) - Published 7 February, 2020
V. V. Sivak, S. Shankar, G. Liu, J. Aumentado, and M. H. Devoret
Phys. Rev. Applied 13, 024014 (2020) - Published 7 February, 2020
Patrick Winkel, Ivan Takmakov, Dennis Rieger, Luca Planat, Wiebke Hasch-Guichard, Lukas Grünhaupt, Nataliya Maleeva, Farshad Foroughi, Fabio Henriques, Kiril Borisov, Julian Ferrero, Alexey V. Ustinov, Wolfgang Wernsdorfer, Nicolas Roch, and Ioan M. Pop
Phys. Rev. Applied 13, 024015 (2020) - Published 7 February, 2020
David A. Hopper, Joseph D. Lauigan, Tzu-Yung Huang, and Lee C. Bassett
Phys. Rev. Applied 13, 024016 (2020) - Published 7 February, 2020
Spin qubits based on nitrogen-vacancy centers in diamond are useful only when the defect exists in the correct charge state—but this state is usually uncontrolled, since it is sensitive to the optical fields used to interrogate the qubit. Using fast, real-time photon detection and control, the authors deterministically prepare the desired charge state and demonstrate that the qubit’s performance as a magnetic sensor is dramatically improved. These experiments yield deeper understanding of the charge and spin dynamics of N- centers, and the all-optical method can be adapted to dynamically control other stochastic properties of solid-state defects for improved performance.
Paul Fisher, Matteo Villa, Francesco Lenzini, and Mirko Lobino
Phys. Rev. Applied 13, 024017 (2020) - Published 10 February, 2020
Necdet Onur Urs, Elizaveta Golubeva, Volker Röbisch, Sebastian Toxvaerd, Shayan Deldar, Reinhard Knöchel, Michael Höft, Eckhard Quandt, Dirk Meyners, and Jeffrey McCord
Phys. Rev. Applied 13, 024018 (2020) - Published 10 February, 2020
Elliot J. Connors, JJ Nelson, and John M. Nichol
Phys. Rev. Applied 13, 024019 (2020) - Published 10 February, 2020
Feilong Liu, Yue-Yang Liu, Ling Li, Guofu Zhou, Xiangwei Jiang, and Jun-Wei Luo
Phys. Rev. Applied 13, 024020 (2020) - Published 10 February, 2020
Q.-Y. Cao, P.-C. Yang, M.-S. Gong, M. Yu, A. Retzker, M.B. Plenio, C. Müller, N. Tomek, B. Naydenov, L.P. McGuinness, F. Jelezko, and J.-M. Cai
Phys. Rev. Applied 13, 024021 (2020) - Published 10 February, 2020
Alistair R. Milne, Claire L. Edmunds, Cornelius Hempel, Federico Roy, Sandeep Mavadia, and Michael J. Biercuk
Phys. Rev. Applied 13, 024022 (2020) - Published 11 February, 2020
In quantum computing systems where entangling logic gates are mediated via bosonic oscillator modes ( trapped ions), residual coupling between qubits and oscillator is a dominant source of gate infidelity. This work shows how discrete phase modulation of the field mediating the entangling operation ensures that the system of qubits is decoupled from multiple oscillator modes, even in the presence of common time-varying sources of noise and hardware instability. The results demonstrate the capabilities of quantum control to drive major performance advances in quantum computing.
F. Allein, V. Tournat, V. Gusev, and G. Theocharis
Phys. Rev. Applied 13, 024023 (2020) - Published 11 February, 2020
Granular phononic crystals have become an appealing platform for the study of a plethora of nonlinear wave phenomena in mechanical structures, and for applications such as vibration filters, tunable switches, and rectifiers. Here the authors reveal the strong benefit of using external magnetic fields to design mechanically unconstrained granular crystals. The resulting magnetogranular crystals are used for a detailed study of both longitudinal and transverse-rotational nonlinear waves. This system offers great freedom in designing complex waveguide geometries, where the interplay between geometry, wave polarization, and nonlinearity could be harnessed for advanced signal processing.
Yan Li, Jingbo Sun, Yongzheng Wen, and Ji Zhou
Phys. Rev. Applied 13, 024024 (2020) - Published 11 February, 2020
Marco Nardone, Yasas Patikirige, Kyoung E. Kweon, Curtis Walkons, Theresa Magorian Friedlmeier, Joel B. Varley, Vincenzo Lordi, and Shubhra Bansal
Phys. Rev. Applied 13, 024025 (2020) - Published 11 February, 2020
Atal Bihari Swain, S. Dinesh Kumar, Venkatachalam Subramanian, and Pattukkannu Murugavel
Phys. Rev. Applied 13, 024026 (2020) - Published 11 February, 2020
Guanjie Wu, Yang Ren, Xiaodong He, Yu Zhang, Hongwei Xue, Zhihao Ji, Q. Y. Jin, and Zongzhi Zhang
Phys. Rev. Applied 13, 024027 (2020) - Published 12 February, 2020
D.V. Anghel and L.S. Kuzmin
Phys. Rev. Applied 13, 024028 (2020) - Published 12 February, 2020
Leopold Koch, Fabian Samad, Miriam Lenz, and Olav Hellwig
Phys. Rev. Applied 13, 024029 (2020) - Published 12 February, 2020
Zhixin Wu, Zhengping Wang, Xun Sun, Lisong Zhang, Mingxia Xu, and Xinguang Xu
Phys. Rev. Applied 13, 024030 (2020) - Published 12 February, 2020
Wen-hui Guo, Jun-jie Shi, Yao-hui Zhu, Meng Wu, Juan Du, Yu-lang Cen, Shi-ming Liu, and Shu-peng Han
Phys. Rev. Applied 13, 024031 (2020) - Published 12 February, 2020
Said R.K. Rodriguez
Phys. Rev. Applied 13, 024032 (2020) - Published 13 February, 2020
Divya Pande, Jonah Gollub, Roberto Zecca, Daniel L. Marks, and David R. Smith
Phys. Rev. Applied 13, 024033 (2020) - Published 13 February, 2020
Lina Chen, S. Urazhdin, Kaiyuan Zhou, Y.W. Du, and R.H. Liu
Phys. Rev. Applied 13, 024034 (2020) - Published 13 February, 2020
Bo Liu, Dmitry Kurilovich, Hanneke Gelderblom, and Oscar O. Versolato
Phys. Rev. Applied 13, 024035 (2020) - Published 13 February, 2020
You-He Zhou, Cunhong Wang, Cong Liu, Huadong Yong, and Xingyi Zhang
Phys. Rev. Applied 13, 024036 (2020) - Published 13 February, 2020
Juan Yu, Yue Qin, Jinliang Qin, Hong Wang, Zhihui Yan, Xiaojun Jia, and Kunchi Peng
Phys. Rev. Applied 13, 024037 (2020) - Published 14 February, 2020
Ning Wang, Menglu Li, Haiyan Xiao, Xiaotao Zu, and Liang Qiao
Phys. Rev. Applied 13, 024038 (2020) - Published 14 February, 2020
T.J. Broomhall, A.W. Rushforth, M.C. Rosamond, E.H. Linfield, and T.J. Hayward
Phys. Rev. Applied 13, 024039 (2020) - Published 14 February, 2020
Morteza Mohseni, Qi Wang, Majid Mohseni, Thomas Brächer, Burkard Hillebrands, and Philipp Pirro
Phys. Rev. Applied 13, 024040 (2020) - Published 14 February, 2020
Kin On Ho, Man Yin Leung, Yaxin Jiang, Kin Pong Ao, Wei Zhang, King Yau Yip, Yiu Yung Pang, King Cho Wong, Swee K. Goh, and Sen Yang
Phys. Rev. Applied 13, 024041 (2020) - Published 18 February, 2020
Chaofan Wang, Fatemeh HadavandMirzaee, and Tsing-Hua Her
Phys. Rev. Applied 13, 024042 (2020) - Published 18 February, 2020
Eduard Ilin, Maxim Marchevsky, Irina Burkova, Michael Pak, and Alexey Bezryadin
Phys. Rev. Applied 13, 024043 (2020) - Published 18 February, 2020
Z.Y. Ren, F. Shao, P.F. Liu, M.X. Wang, J.K. Chen, K.K. Meng, X.G. Xu, J. Miao, and Y. Jiang
Phys. Rev. Applied 13, 024044 (2020) - Published 18 February, 2020
Shaoxin Shen, Jiejie Shan, Tien-Mo Shih, Junbo Han, Zongwei Ma, Feng Zhao, Fangzu Yang, Yongliang Zhou, and Zhilin Yang
Phys. Rev. Applied 13, 024045 (2020) - Published 19 February, 2020
M. Amin, O. Siddiqui, and M. Farhat
Phys. Rev. Applied 13, 024046 (2020) - Published 19 February, 2020
Clinton Cahall, Nurul T. Islam, Daniel J. Gauthier, and Jungsang Kim
Phys. Rev. Applied 13, 024047 (2020) - Published 19 February, 2020
Optical communication via free-space channels is attractive for establishing long-range secure quantum networks, but is often hindered by deleterious effects on the transverse spatial mode profile of the beam, caused by propagation through the atmosphere. Additionally, interferometric measurement at the receiver becomes much more difficult with multimode profiles. This study presents a compact time-delay interferometer with high stability and interference visibility for single- and multimode spatial profiles. The results of this study are important for the future of quantum communication networks as well as a wide range of techniques for classical and quantum optical measurement.
Valeria Cimini, Marco G. Genoni, Ilaria Gianani, Nicolò Spagnolo, Fabio Sciarrino, and Marco Barbieri
Phys. Rev. Applied 13, 024048 (2020) - Published 19 February, 2020
Chao Ping Liu, Kingsley O. Egbo, Chun Yuen Ho, Ying Wang, Cong Kang Xu, and Kin Man Yu
Phys. Rev. Applied 13, 024049 (2020) - Published 19 February, 2020
M. Lorente-Crespo, G.C. Ballesteros, C. Mateo-Segura, and C. García-Meca
Phys. Rev. Applied 13, 024050 (2020) - Published 20 February, 2020
Metallic apertures support a rich variety of widely investigated electromagnetic phenomena, which are the basis of many optical devices. Research on edge plasmons in these structures is scarce, though, and limited to dipolar resonances. This study shows that nanoholes additionally support high-order edge plasmons, in the form of whispering-gallery modes. Notably, the excited orders are determined by the lattice symmetries, are very sensitive to the environment, and exhibit highly tailorable features. These results shed light on the physics of metallic nanoholes and point to applications in nanophotonics and plasmonics.
D.Y. Guo, K. Chen, S.L. Wang, F.M. Wu, A.P. Liu, C.R. Li, P.G. Li, C.K. Tan, and W.H. Tang
Phys. Rev. Applied 13, 024051 (2020) - Published 20 February, 2020
W.L. Yang, C.H. Wan, Z.R. Yan, X. Zhang, Maksim E. Stebliy, X. Wang, C. Fang, C.Y. Guo, Y.W. Xing, T.Y. Ma, Alexey V. Ognev, Alexander S. Samardak, Mean-Jue Tung, G.Q. Yu, and X.F. Han
Phys. Rev. Applied 13, 024052 (2020) - Published 20 February, 2020
Benjamin T. Zhou, Cheng-Ping Zhang, and K.T. Law
Phys. Rev. Applied 13, 024053 (2020) - Published 20 February, 2020
Jinlin Song, Qiang Cheng, Lu Lu, Bowen Li, Kun Zhou, Bo Zhang, Zixue Luo, and Xinping Zhou
Phys. Rev. Applied 13, 024054 (2020) - Published 20 February, 2020
Weichao Yu (余伟超), Jin Lan (兰金), and Jiang Xiao (萧江)
Phys. Rev. Applied 13, 024055 (2020) - Published 21 February, 2020
Alexander Anferov, Aziza Suleymanzade, Andrew Oriani, Jonathan Simon, and David I. Schuster
Phys. Rev. Applied 13, 024056 (2020) - Published 21 February, 2020
Brian J. Simonds, Edward J. Garboczi, Todd A. Palmer, and Paul A. Williams
Phys. Rev. Applied 13, 024057 (2020) - Published 21 February, 2020
Yichen Zhang, Yundi Huang, Ziyang Chen, Zhengyu Li, Song Yu, and Hong Guo
Phys. Rev. Applied 13, 024058 (2020) - Published 21 February, 2020
Yuan Sun, Peng Xu, Ping-Xing Chen, and Liang Liu
Phys. Rev. Applied 13, 024059 (2020) - Published 21 February, 2020
Ragib Ahsan, Mashnoon Alam Sakib, Hyun Uk Chae, and Rehan Kapadia
Phys. Rev. Applied 13, 024060 (2020) - Published 24 February, 2020
Theresa Linderl, Thomas Zechel, Alexander Hofmann, Tomoya Sato, Kohei Shimizu, Hisao Ishii, and Wolfgang Brütting
Phys. Rev. Applied 13, 024061 (2020) - Published 24 February, 2020
T. Otobe
Phys. Rev. Applied 13, 024062 (2020) - Published 24 February, 2020
Liujun Xu, Gaole Dai, and Jiping Huang
Phys. Rev. Applied 13, 024063 (2020) - Published 24 February, 2020
C.S. Davies, T. Janssen, J.H. Mentink, A. Tsukamoto, A.V. Kimel, A.F.G. van der Meer, A. Stupakiewicz, and A. Kirilyuk
Phys. Rev. Applied 13, 024064 (2020) - Published 24 February, 2020
Abhay Shastry, Sosuke Inui, and Charles A. Stafford
Phys. Rev. Applied 13, 024065 (2020) - Published 25 February, 2020
With scanning-probe techniques now widespread, many physical properties can be imaged with atomic precision, providing insight into the quantum world. However, temperature so far has proven impossible to measure with subnanometer resolution. The key hurdle in high-resolution thermal images is reliance on a heat-flux-related signal, which inevitably results in a tradeoff between signal strength and image resolution. The authors propose instead to infer the local temperature of a conducting surface based purely on electrical (not heat-flux) measurements, which may be carried out in the tunneling regime. This would seem to open a vista onto the world of quantum thermodynamics.
T. Hönigl-Decrinis, R. Shaikhaidarov, S.E. de Graaf, V.N. Antonov, and O.V. Astafiev
Phys. Rev. Applied 13, 024066 (2020) - Published 25 February, 2020
Yaqin Cao, Ping Liu, Cuifang Hou, Yanne K. Chembo, Zehuang Lu, and Guoping Lin
Phys. Rev. Applied 13, 024067 (2020) - Published 25 February, 2020
I. Arrazola, M.B. Plenio, E. Solano, and J. Casanova
Phys. Rev. Applied 13, 024068 (2020) - Published 25 February, 2020
Yanni D. Dahmani, Christopher J. Sarabalis, Wentao Jiang, Felix M. Mayor, and Amir H. Safavi-Naeini
Phys. Rev. Applied 13, 024069 (2020) - Published 25 February, 2020
Connor D. Shelly, Patrick See, Ivan Rungger, and Jonathan M. Williams
Phys. Rev. Applied 13, 024070 (2020) - Published 26 February, 2020
Xu Zheng and Baowen Li
Phys. Rev. Applied 13, 024071 (2020) - Published 26 February, 2020
Ali Asghar Khorami, Mohammad Kazem Moravvej Farshi, and Sara Darbari
Phys. Rev. Applied 13, 024072 (2020) - Published 26 February, 2020
P. Talatchian, M. Romera, F. Abreu Araujo, P. Bortolotti, V. Cros, D. Vodenicarevic, N. Locatelli, D. Querlioz, and J. Grollier
Phys. Rev. Applied 13, 024073 (2020) - Published 26 February, 2020
Gal Shmuel and Nimrod Moiseyev
Phys. Rev. Applied 13, 024074 (2020) - Published 27 February, 2020
Arjan Fraters, Roger Jeurissen, Marc van den Berg, Hans Reinten, Herman Wijshoff, Detlef Lohse, Michel Versluis, and Tim Segers
Phys. Rev. Applied 13, 024075 (2020) - Published 27 February, 2020
Dechao Yu, Ting Yu, Yingzhi Wang, Qinyuan Zhang, and Andries Meijerink
Phys. Rev. Applied 13, 024076 (2020) - Published 27 February, 2020
A. Noual, R. Akiki, Y. Pennec, E. H. El Boudouti, and B. Djafari-Rouhani
Phys. Rev. Applied 13, 024077 (2020) - Published 27 February, 2020
Hamidreza Kazemi, Mohammad Albooyeh, and Filippo Capolino
Phys. Rev. Applied 13, 024078 (2020) - Published 27 February, 2020
A.V. Semenov, I.A. Devyatov, M.P. Westig, and T.M. Klapwijk
Phys. Rev. Applied 13, 024079 (2020) - Published 28 February, 2020
Pei-Yun Li, Chao Liu, Zong-Quan Zhou, Xiao Liu, Tao Tu, Tian-Shu Yang, Zong-Feng Li, Yu Ma, Jun Hu, Peng-Jun Liang, Xue Li, Jian-Yin Huang, Tian-Xiang Zhu, Chuan-Feng Li, and Guang-Can Guo
Phys. Rev. Applied 13, 024080 (2020) - Published 28 February, 2020
Vitalii I. Shcherbinin, Volodymyr I. Fesenko, Tetiana I. Tkachova, and Vladimir R. Tuz
Phys. Rev. Applied 13, 024081 (2020) - Published 28 February, 2020
J. Jeener
Phys. Rev. Applied 13, 028001 (2020) - Published 3 February, 2020
Christopher F. Chyba and Kevin P. Hand
Phys. Rev. Applied 13, 028002 (2020) - Published 3 February, 2020
Ching-Hang Chien, Shang-Hsuan Wu, Trong Huynh-Buu Ngo, and Yia-Chung Chang
Phys. Rev. Applied 13, 029901 (2020) - Published 28 February, 2020
W. Jahjah, J.-Ph. Jay, Y. Le Grand, A. Fessant, A.R.E. Prinsloo, C.J. Sheppard, D.T. Dekadjevi, and D. Spenato
Phys. Rev. Applied 13, 034015 (2020) - Published 5 March, 2020