John Singleton, Andrea C. Schmidt, Connor Bailey, James Wigger, and Frank Krawczyk
Phys. Rev. Applied 14, 064046 (2020) - Published 15 December, 2020
An unconventional antenna technology can focus the radio waves emitted from the acceleration of polarization currents, aiding use of the waves in communication applications.
Yoshua Hirai, Naotaka Yoshikawa, Hana Hirose, Masashi Kawaguchi, Masamitsu Hayashi, and Ryo Shimano
Phys. Rev. Applied 14, 064015 (2020) - Published 4 December, 2020
Bismuth is remarkable for its strong spin-orbit coupling and interband effects, and electrons that behave as Dirac particles. Consequently, it efficiently converts electric current to spin current via the spin Hall effect (SHE). This study shows that furthermore bismuth thin films can emit light in the key terahertz frequency range, when irradiated by circularly polarized femtosecond laser pulses. Optically generated spin current plus the inverse SHE combine to generate ultrafast electric current, and thus terahertz emission. These results demonstrate the potential of Dirac electrons in bismuth for a simple, controllable terahertz source for ultrafast spintronic applications and beyond.
Peng Zhao, Peng Xu, Dong Lan, Xinsheng Tan, Haifeng Yu, and Yang Yu
Phys. Rev. Applied 14, 064016 (2020) - Published 4 December, 2020
Minimizing gate depth is important for extending the computational power of a noisy quantum processor, and native multiqubit gates could dramatically reduce the gate depth of generic circuits. To that end, although various approaches have been proposed, practical realization may be hindered by stringent control requirements, or by poor compatibility with existing schemes for one- or two-qubit operations. Here researchers employ a scalable architecture comprising two types of qubits to realize switchable coupling. This allows for a simple control strategy to realize native three-qubit gates, which may become a key element in quantum chemistry simulations.
Marc Bescond and Kazuhiko Hirakawa
Phys. Rev. Applied 14, 064022 (2020) - Published 7 December, 2020
Refrigeration at the nanoscale is crucial to overcoming the detrimental self-heating that arises in ultraminiaturized (opto)electronics. To date, most technologies for such cooling have been based on the thermoelectric Peltier effect, the efficiency of which may be limited due to the Joule effect. Therefore, this study considers an approach based on nonequilibrium thermionic emission to reach higher cooling efficiencies. The authors propose a semiconductor heterostructure with a tilted potential barrier and show, based on quantum simulations, that it significantly increases refrigeration performance.
Marta Pita-Vidal, Arno Bargerbos, Chung-Kai Yang, David J. van Woerkom, Wolfgang Pfaff, Nadia Haider, Peter Krogstrup, Leo P. Kouwenhoven, Gijs de Lange, and Angela Kou
Phys. Rev. Applied 14, 064038 (2020) - Published 14 December, 2020
Hybrid superconducting circuits have been used to investigate mesoscopic superconductivity, but mostly just at low magnetic fields, as typical Al-based circuits are incompatible with magnetic fields, and superconducting circuits are sensitive to external magnetic flux noise. To overcome these challenges, the authors build a hybrid fluxonium system composed of (Nb,Ti)N, with a gradiometric design. They observe the spectrum of the hybrid fluxonium in fields of up to 1T, and probe the Josephson effect. These results enable future exploration of topological superconductivity, as well as readout of long-lifetime spin-polarized qubits using superconducting circuitry.
Inbar Hotzen Grinberg, Mao Lin, Wladimir A. Benalcazar, Taylor L. Hughes, and Gaurav Bahl
Phys. Rev. Applied 14, 064042 (2020) - Published 14 December, 2020
So-called (WTIs, which require lattice translational symmetry for protected boundary states) are predicted to host unique topological features, but their sensitivity to disorder makes experimental confirmation challenging. The authors use a magnetomechanical metamaterial to realize a two-dimensional WTI, and experimentally demonstrate its anisotropic response. They furthermore show that the system can bind states at certain dislocation defects. This work points out an alternative path to obtaining lower-dimensional topologically protected states for robust sensors and other signal-processing devices that are resilient to disorder.
Suko Bagus Trisnanto and Yasushi Takemura
Phys. Rev. Applied 14, 064065 (2020) - Published 23 December, 2020
Magnetic particle imaging (MPI) is beneficial for bioanalytical cellular imaging, due to its lack of both attenuation and background signal, but it typically requires a very high field gradient to achieve submillimeter resolution. The authors use the Néel relaxation response of the tracers to encode the coordinates of the field-free point (FFP) while magnetically scanning the phantom image under a low field gradient. This approach identifies the FFP steering frequencies and trajectory density as important parameters for refining the spatial resolution, and unlocks the possibility for noninvasive submillimeter imaging of cells or small-animal models.
G.A. Peairs, M.-H. Chou, A. Bienfait, H.-S. Chang, C.R. Conner, É. Dumur, J. Grebel, R.G. Povey, E. Şahin, K.J. Satzinger, Y.P. Zhong, and A.N. Cleland
Phys. Rev. Applied 14, 061001 (2020) - Published 4 December, 2020
Converting seamlessly between optical and microwave frequencies would enable ultralow-loss long-distance communication of both classical and quantum signals, and could enable a quantum telecommunication repeater. High conversion rates with low loss are needed for any practical technology. The authors present a significant step toward both of those goals: an integrated electromechanical and optomechanical design that yields significantly lower loss with megahertz conversion rates, which is promising for future bidirectional quantum communication. Their design includes a number of innovations for generating and transmitting the rf acoustic signals that are key to device operation.
Marek Jacewicz, Johan Eriksson, Roger Ruber, Sergio Calatroni, Iaroslava Profatilova, and Walter Wuensch
Phys. Rev. Applied 14, 061002 (2020) - Published 30 December, 2020
Field emission and vacuum breakdown limit performance in many classes of electronic devices, including rf systems in particle accelerators. Although there are general explanations of both processes, a large correction factor is systematically needed to explain observations, and experimental evidence to establish the breakdown mechanism is limited. This study elucidates both issues, using a high-voltage electrode system that can operate down to cryogenic temperatures. Measurements of temperature-dependent field emission and breakdown with this system reveal remarkable effects that yield insight into both processes, which in turn will enable further development of high-field technology.
Pengbo Jia, Domenico Bongiovanni, Yi Hu, Roberto Morandotti, Zhigang Chen, and Jingjun Xu
Phys. Rev. Applied 14, 064001 (2020) - Published 1 December, 2020
Zhixiong Gong and Michael Baudoin
Phys. Rev. Applied 14, 064002 (2020) - Published 1 December, 2020
Juan Zhao, Yibin Hu, Yiqun Xie, Lei Zhang, and Yin Wang
Phys. Rev. Applied 14, 064003 (2020) - Published 1 December, 2020
L. Zambrano, L. Pereira, D. Martínez, G. Cañas, G. Lima, and A. Delgado
Phys. Rev. Applied 14, 064004 (2020) - Published 1 December, 2020
René Pernas-Salomón and Gal Shmuel
Phys. Rev. Applied 14, 064005 (2020) - Published 1 December, 2020
R. Zhao, S. Park, T. Zhao, M. Bal, C.R.H. McRae, J. Long, and D.P. Pappas
Phys. Rev. Applied 14, 064006 (2020) - Published 1 December, 2020
Natascha Hedrich, Dominik Rohner, Marietta Batzer, Patrick Maletinsky, and Brendan J. Shields
Phys. Rev. Applied 14, 064007 (2020) - Published 2 December, 2020
Si-Yuan Yu, Ji-Qian Wang, Xiao-Chen Sun, Fu-Kang Liu, Cheng He, Huan-Huan Xu, Ming-Hui Lu, Johan Christensen, Xiao-Ping Liu, and Yan-Feng Chen
Phys. Rev. Applied 14, 064008 (2020) - Published 2 December, 2020
Tao Chen and Zheng-Yuan Xue
Phys. Rev. Applied 14, 064009 (2020) - Published 2 December, 2020
Pulak Pal and Aswini Ghosh
Phys. Rev. Applied 14, 064010 (2020) - Published 2 December, 2020
Markus Meinert, Björn Gliniors, Oliver Gueckstock, Tom S. Seifert, Lukas Liensberger, Mathias Weiler, Sebastian Wimmer, Hubert Ebert, and Tobias Kampfrath
Phys. Rev. Applied 14, 064011 (2020) - Published 3 December, 2020
Hyemi Yang, Hyun-Jae Lee, Jinhyeong Jo, Chang Hoon Kim, and Jun Hee Lee
Phys. Rev. Applied 14, 064012 (2020) - Published 3 December, 2020
Sunmi Shin and Renkun Chen
Phys. Rev. Applied 14, 064013 (2020) - Published 3 December, 2020
Weijin Chen, Linjie Liu, and Yue Zheng
Phys. Rev. Applied 14, 064014 (2020) - Published 3 December, 2020
Yoshua Hirai, Naotaka Yoshikawa, Hana Hirose, Masashi Kawaguchi, Masamitsu Hayashi, and Ryo Shimano
Phys. Rev. Applied 14, 064015 (2020) - Published 4 December, 2020
Bismuth is remarkable for its strong spin-orbit coupling and interband effects, and electrons that behave as Dirac particles. Consequently, it efficiently converts electric current to spin current via the spin Hall effect (SHE). This study shows that furthermore bismuth thin films can emit light in the key terahertz frequency range, when irradiated by circularly polarized femtosecond laser pulses. Optically generated spin current plus the inverse SHE combine to generate ultrafast electric current, and thus terahertz emission. These results demonstrate the potential of Dirac electrons in bismuth for a simple, controllable terahertz source for ultrafast spintronic applications and beyond.
Peng Zhao, Peng Xu, Dong Lan, Xinsheng Tan, Haifeng Yu, and Yang Yu
Phys. Rev. Applied 14, 064016 (2020) - Published 4 December, 2020
Minimizing gate depth is important for extending the computational power of a noisy quantum processor, and native multiqubit gates could dramatically reduce the gate depth of generic circuits. To that end, although various approaches have been proposed, practical realization may be hindered by stringent control requirements, or by poor compatibility with existing schemes for one- or two-qubit operations. Here researchers employ a scalable architecture comprising two types of qubits to realize switchable coupling. This allows for a simple control strategy to realize native three-qubit gates, which may become a key element in quantum chemistry simulations.
Hao Wu, Xiangyu Xie, Wern Ng, Seif Mehanna, Yingxu Li, Max Attwood, and Mark Oxborrow
Phys. Rev. Applied 14, 064017 (2020) - Published 4 December, 2020
Arnab Banerjee and Goutam Paul
Phys. Rev. Applied 14, 064018 (2020) - Published 4 December, 2020
Damiano Marian, Enrique G. Marin, Giuseppe Iannaccone, and Gianluca Fiori
Phys. Rev. Applied 14, 064019 (2020) - Published 7 December, 2020
Re-Bing Wu, Xi Cao, Pinchen Xie, and Yu-xi Liu
Phys. Rev. Applied 14, 064020 (2020) - Published 7 December, 2020
M.C. Jarratt, S.J. Waddy, A. Jouan, A.C. Mahoney, G.C. Gardner, S. Fallahi, M.J. Manfra, and D.J. Reilly
Phys. Rev. Applied 14, 064021 (2020) - Published 7 December, 2020
Marc Bescond and Kazuhiko Hirakawa
Phys. Rev. Applied 14, 064022 (2020) - Published 7 December, 2020
Refrigeration at the nanoscale is crucial to overcoming the detrimental self-heating that arises in ultraminiaturized (opto)electronics. To date, most technologies for such cooling have been based on the thermoelectric Peltier effect, the efficiency of which may be limited due to the Joule effect. Therefore, this study considers an approach based on nonequilibrium thermionic emission to reach higher cooling efficiencies. The authors propose a semiconductor heterostructure with a tilted potential barrier and show, based on quantum simulations, that it significantly increases refrigeration performance.
Yuan Wu, Jinxian Guo, Xiaotian Feng, L.Q. Chen, Chun-Hua Yuan, and Weiping Zhang
Phys. Rev. Applied 14, 064023 (2020) - Published 8 December, 2020
Vahid Derakhshan Maman, M.F. Gonzalez-Zalba, and András Pályi
Phys. Rev. Applied 14, 064024 (2020) - Published 8 December, 2020
A. Yagmur, S. Sumi, H. Awano, and K. Tanabe
Phys. Rev. Applied 14, 064025 (2020) - Published 8 December, 2020
Leonardo Banchi, Quntao Zhuang, and Stefano Pirandola
Phys. Rev. Applied 14, 064026 (2020) - Published 8 December, 2020
Ruma Mandal, Qingyi Xiang, Keisuke Masuda, Yoshio Miura, Hiroaki Sukegawa, Seiji Mitani, and Yukiko K. Takahashi
Phys. Rev. Applied 14, 064027 (2020) - Published 8 December, 2020
Oshri Rabinovich and Ariel Epstein
Phys. Rev. Applied 14, 064028 (2020) - Published 9 December, 2020
Sreemanta Mitra, Saloni Kakkar, Tanweer Ahmed, and Arindam Ghosh
Phys. Rev. Applied 14, 064029 (2020) - Published 9 December, 2020
Jie Lin and Norbert Lütkenhaus
Phys. Rev. Applied 14, 064030 (2020) - Published 9 December, 2020
Ziqing Wang, Robert Malaney, and Benjamin Burnett
Phys. Rev. Applied 14, 064031 (2020) - Published 9 December, 2020
Evan T. Rand, Oleg Kamaev, Andrew Valente, and Amanjot Bhullar
Phys. Rev. Applied 14, 064032 (2020) - Published 9 December, 2020
S. Indrajeet, H. Wang, M.D. Hutchings, B.G. Taketani, Frank K. Wilhelm, M.D. LaHaye, and B.L.T. Plourde
Phys. Rev. Applied 14, 064033 (2020) - Published 10 December, 2020
Hooman Barati Sedeh, Mohammad Hosein Fakheri, Ali Abdolali, Fei Sun, and Yungui Ma
Phys. Rev. Applied 14, 064034 (2020) - Published 10 December, 2020
Jianan Fang, Yinqi Wang, Ming Yan, E Wu, Kun Huang, and Heping Zeng
Phys. Rev. Applied 14, 064035 (2020) - Published 10 December, 2020
Christian Hänisch, Simone Lenk, and Sebastian Reineke
Phys. Rev. Applied 14, 064036 (2020) - Published 10 December, 2020
Yumang Jing, Daniel Alsina, and Mohsen Razavi
Phys. Rev. Applied 14, 064037 (2020) - Published 10 December, 2020
Marta Pita-Vidal, Arno Bargerbos, Chung-Kai Yang, David J. van Woerkom, Wolfgang Pfaff, Nadia Haider, Peter Krogstrup, Leo P. Kouwenhoven, Gijs de Lange, and Angela Kou
Phys. Rev. Applied 14, 064038 (2020) - Published 14 December, 2020
Hybrid superconducting circuits have been used to investigate mesoscopic superconductivity, but mostly just at low magnetic fields, as typical Al-based circuits are incompatible with magnetic fields, and superconducting circuits are sensitive to external magnetic flux noise. To overcome these challenges, the authors build a hybrid fluxonium system composed of (Nb,Ti)N, with a gradiometric design. They observe the spectrum of the hybrid fluxonium in fields of up to 1T, and probe the Josephson effect. These results enable future exploration of topological superconductivity, as well as readout of long-lifetime spin-polarized qubits using superconducting circuitry.
Lu Wang, Yanming Zhang, and Wentao Yan
Phys. Rev. Applied 14, 064039 (2020) - Published 14 December, 2020
Andrei A. Stepanenko, Mark D. Lyubarov, and Maxim A. Gorlach
Phys. Rev. Applied 14, 064040 (2020) - Published 14 December, 2020
Aymen Fassatoui, Jose Peña Garcia, Laurent Ranno, Jan Vogel, Anne Bernand-Mantel, Hélène Béa, Sergio Pizzini, and Stefania Pizzini
Phys. Rev. Applied 14, 064041 (2020) - Published 14 December, 2020
Inbar Hotzen Grinberg, Mao Lin, Wladimir A. Benalcazar, Taylor L. Hughes, and Gaurav Bahl
Phys. Rev. Applied 14, 064042 (2020) - Published 14 December, 2020
So-called (WTIs, which require lattice translational symmetry for protected boundary states) are predicted to host unique topological features, but their sensitivity to disorder makes experimental confirmation challenging. The authors use a magnetomechanical metamaterial to realize a two-dimensional WTI, and experimentally demonstrate its anisotropic response. They furthermore show that the system can bind states at certain dislocation defects. This work points out an alternative path to obtaining lower-dimensional topologically protected states for robust sensors and other signal-processing devices that are resilient to disorder.
Jose Ordonez-Miranda
Phys. Rev. Applied 14, 064043 (2020) - Published 14 December, 2020
Fengyuan Yang, Brian O. Raeker, Dat T. Nguyen, Joseph D. Miller, Ze Xiong, Anthony Grbic, and John S. Ho
Phys. Rev. Applied 14, 064044 (2020) - Published 14 December, 2020
G. Kurt and H. Sevinçli
Phys. Rev. Applied 14, 064045 (2020) - Published 15 December, 2020
John Singleton, Andrea C. Schmidt, Connor Bailey, James Wigger, and Frank Krawczyk
Phys. Rev. Applied 14, 064046 (2020) - Published 15 December, 2020
An unconventional antenna technology can focus the radio waves emitted from the acceleration of polarization currents, aiding use of the waves in communication applications.
Artem E. Shitikov, Oleg V. Benderov, Nikita M. Kondratiev, Valery E. Lobanov, Alexander V. Rodin, and Igor A. Bilenko
Phys. Rev. Applied 14, 064047 (2020) - Published 15 December, 2020
Mohammad Javadi, Aliakbar Noroozi, and Yaser Abdi
Phys. Rev. Applied 14, 064048 (2020) - Published 15 December, 2020
Yingying Zhu, Jianan Wang, Ru-Wen Peng, Shiwei Wu, Dongxiang Qi, Wenzhong Bao, Lianzi Liu, Yi Zhu, Hao Jing, and Mu Wang
Phys. Rev. Applied 14, 064049 (2020) - Published 15 December, 2020
James O’Sullivan, Oscar W. Kennedy, Christoph W. Zollitsch, Mantas Šimėnas, Christopher N. Thomas, Leonid V. Abdurakhimov, Stafford Withington, and John J.L. Morton
Phys. Rev. Applied 14, 064050 (2020) - Published 16 December, 2020
Hemi H. Gandhi, David Pastor, Tuan T. Tran, S. Kalchmair, L.A. Smilie, Jonathan P. Mailoa, Ruggero Milazzo, Enrico Napolitani, Marco Loncar, James S. Williams, Michael J. Aziz, and Eric Mazur
Phys. Rev. Applied 14, 064051 (2020) - Published 16 December, 2020
Michael Scheucher, Khaled Kassem, Arno Rauschenbeutel, Philipp Schneeweiss, and Jürgen Volz
Phys. Rev. Applied 14, 064052 (2020) - Published 16 December, 2020
S. Omar, M. Gurram, K. Watanabe, T. Taniguchi, M.H.D. Guimarães, and B.J. van Wees
Phys. Rev. Applied 14, 064053 (2020) - Published 17 December, 2020
P. Holewa, M. Gawełczyk, A. Maryński, P. Wyborski, J.P. Reithmaier, G. Sęk, M. Benyoucef, and M. Syperek
Phys. Rev. Applied 14, 064054 (2020) - Published 17 December, 2020
Gengyu Xu, George V. Eleftheriades, and Sean V. Hum
Phys. Rev. Applied 14, 064055 (2020) - Published 17 December, 2020
Y. Hibino, T. Taniguchi, K. Yakushiji, A. Fukushima, H. Kubota, and S. Yuasa
Phys. Rev. Applied 14, 064056 (2020) - Published 17 December, 2020
Ya Zhang, Hua Cheng, Jianguo Tian, and Shuqi Chen
Phys. Rev. Applied 14, 064057 (2020) - Published 18 December, 2020
Chu Ma, Xinhao Li, and Nicholas X. Fang
Phys. Rev. Applied 14, 064058 (2020) - Published 18 December, 2020
D. Timmerman, Y. Matsude, Y. Sasaki, S. Ichikawa, J. Tatebayashi, and Y. Fujiwara
Phys. Rev. Applied 14, 064059 (2020) - Published 18 December, 2020
Zhanni Wu, Cody Scarborough, and Anthony Grbic
Phys. Rev. Applied 14, 064060 (2020) - Published 21 December, 2020
Zahra Arefinia and Dip Prakash Samajdar
Phys. Rev. Applied 14, 064061 (2020) - Published 21 December, 2020
Hiroshi Imamura and Rie Matsumoto
Phys. Rev. Applied 14, 064062 (2020) - Published 22 December, 2020
Andrii M. Sokolov and Frank K. Wilhelm
Phys. Rev. Applied 14, 064063 (2020) - Published 22 December, 2020
L. Desplat and J.-V. Kim
Phys. Rev. Applied 14, 064064 (2020) - Published 22 December, 2020
Suko Bagus Trisnanto and Yasushi Takemura
Phys. Rev. Applied 14, 064065 (2020) - Published 23 December, 2020
Magnetic particle imaging (MPI) is beneficial for bioanalytical cellular imaging, due to its lack of both attenuation and background signal, but it typically requires a very high field gradient to achieve submillimeter resolution. The authors use the Néel relaxation response of the tracers to encode the coordinates of the field-free point (FFP) while magnetically scanning the phantom image under a low field gradient. This approach identifies the FFP steering frequencies and trajectory density as important parameters for refining the spatial resolution, and unlocks the possibility for noninvasive submillimeter imaging of cells or small-animal models.
D. Mirarchi, V. Avati, R. Bruce, M. Butcher, M. D’Andrea, M. Di Castro, M. Deile, B. Dziedzic, K. Hiller, S. Jakobsen, J. Kašpar, K. Korcyl, I. Lamas, A. Masi, A. Mereghetti, H. Garcia Morales, Y. Gavrikov, S. Redaelli, B. Salvachua Ferrando, P. Serrano, M. Solfaroli Camillocci, and N. Turini
Phys. Rev. Applied 14, 064066 (2020) - Published 23 December, 2020
Rujie Li, Fred N. Baynes, André N. Luiten, and Christopher Perrella
Phys. Rev. Applied 14, 064067 (2020) - Published 23 December, 2020
Elisa Vitiello, Simone Rossi, Christopher A. Broderick, Giorgio Gravina, Andrea Balocchi, Xavier Marie, Eoin P. O’Reilly, Maksym Myronov, and Fabio Pezzoli
Phys. Rev. Applied 14, 064068 (2020) - Published 23 December, 2020
Yuta Ishii, Kohei Yamamoto, Yuichi Yokoyama, Masaichiro Mizumaki, Hironori Nakao, Taka-hisa Arima, and Yuichi Yamasaki
Phys. Rev. Applied 14, 064069 (2020) - Published 24 December, 2020
Chun-Mei Zhang, Yi-Wei Xu, Rong Wang, and Qin Wang
Phys. Rev. Applied 14, 064070 (2020) - Published 24 December, 2020
Vojtěch Trávníček, Karol Bartkiewicz, Antonín Černoch, and Karel Lemr
Phys. Rev. Applied 14, 064071 (2020) - Published 24 December, 2020
Siavash Kananian, George Alexopoulos, and Ada S.Y. Poon
Phys. Rev. Applied 14, 064072 (2020) - Published 28 December, 2020
Eleonora Isotta, Binayak Mukherjee, Carlo Fanciulli, Narges Ataollahi, Ilya Sergueev, Svetoslav Stankov, Raju Edla, Nicola M. Pugno, and Paolo Scardi
Phys. Rev. Applied 14, 064073 (2020) - Published 28 December, 2020
Tanumoy Pramanik, Dong-Hwa Lee, Young-Wook Cho, Hyang-Tag Lim, Sang-Wook Han, Hojoong Jung, Sung Moon, Kwang Jo Lee, and Yong-Su Kim
Phys. Rev. Applied 14, 064074 (2020) - Published 29 December, 2020
Jirong Cang, XinChao Fang, Zhi Zeng, Ming Zeng, Yinong Liu, Zhigang Sun, and Ziyun Chen
Phys. Rev. Applied 14, 064075 (2020) - Published 29 December, 2020
Yiling Song, Weiwei Liu, Lingzhi Zheng, Yicong Zhang, Bing Wang, and Peixiang Lu
Phys. Rev. Applied 14, 064076 (2020) - Published 30 December, 2020
Domitille Schanne, Stéphan Suffit, Pascal Filloux, Emmanuel Lhuillier, and Aloyse Degiron
Phys. Rev. Applied 14, 064077 (2020) - Published 30 December, 2020
Irene Zanette, Richard Clare, David Eastwood, Charan Venkata, Franz Pfeiffer, Peter Cloetens, and Pierre Thibault
Phys. Rev. Applied 14, 064078 (2020) - Published 31 December, 2020
Chenbo Zhang (张晨波), Zhuohui Zeng (曾卓晖), Zeyuan Zhu (朱泽远), Mostafa Karami, and Xian Chen (陈弦)
Phys. Rev. Applied 14, 064079 (2020) - Published 31 December, 2020