Magnetic nonreciprocity in a hybrid device of asymmetric artificial spin-ice-superconductors

Fuente: arXiv
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Autores principales: Li, Chong, Huang, Peiyuan, Wang, Chen-Guang, Li, Haojie, Lyu, Yang-Yang, Yue, Wen-Cheng, Yuan, Zixiong, Li, Tianyu, Tu, Xuecou, Tao, Tao, Dong, Sining, He, Liang, Jia, Xiaoqing, Sun, Guozhu, Kang, Lin, Wang, Huabing, Wu, Peiheng, Wang, Yong-Lei
Formato: Preprint
Publicado: 2024
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author Li, Chong
Huang, Peiyuan
Wang, Chen-Guang
Li, Haojie
Lyu, Yang-Yang
Yue, Wen-Cheng
Yuan, Zixiong
Li, Tianyu
Tu, Xuecou
Tao, Tao
Dong, Sining
He, Liang
Jia, Xiaoqing
Sun, Guozhu
Kang, Lin
Wang, Huabing
Wu, Peiheng
Wang, Yong-Lei
author_facet Li, Chong
Huang, Peiyuan
Wang, Chen-Guang
Li, Haojie
Lyu, Yang-Yang
Yue, Wen-Cheng
Yuan, Zixiong
Li, Tianyu
Tu, Xuecou
Tao, Tao
Dong, Sining
He, Liang
Jia, Xiaoqing
Sun, Guozhu
Kang, Lin
Wang, Huabing
Wu, Peiheng
Wang, Yong-Lei
contents Controlling the size and distribution of potential barriers within a medium of interacting particles can unveil unique collective behaviors and innovative functionalities. In this study, we introduce a unique superconducting hybrid device using a novel artificial spin ice structure composed of asymmetric nanomagnets. This structure forms a distinctive superconducting pinning potential that steers unconventional motion of superconducting vortices, thereby inducing a magnetic nonreciprocal effect, in contrast to the electric nonreciprocal effect commonly observed in superconducting diodes. Furthermore, the polarity of the magnetic nonreciprocity is in-situ reversible through the tunable magnetic patterns of artificial spin ice. Our findings demonstrate that artificial spin ice not only precisely modulates superconducting characteristics but also opens the door to novel functionalities, offering a groundbreaking paradigm for superconducting electronics.
format Preprint
id arxiv_https___arxiv_org_abs_2405_19777
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Magnetic nonreciprocity in a hybrid device of asymmetric artificial spin-ice-superconductors
Li, Chong
Huang, Peiyuan
Wang, Chen-Guang
Li, Haojie
Lyu, Yang-Yang
Yue, Wen-Cheng
Yuan, Zixiong
Li, Tianyu
Tu, Xuecou
Tao, Tao
Dong, Sining
He, Liang
Jia, Xiaoqing
Sun, Guozhu
Kang, Lin
Wang, Huabing
Wu, Peiheng
Wang, Yong-Lei
Superconductivity
Mesoscale and Nanoscale Physics
Applied Physics
Controlling the size and distribution of potential barriers within a medium of interacting particles can unveil unique collective behaviors and innovative functionalities. In this study, we introduce a unique superconducting hybrid device using a novel artificial spin ice structure composed of asymmetric nanomagnets. This structure forms a distinctive superconducting pinning potential that steers unconventional motion of superconducting vortices, thereby inducing a magnetic nonreciprocal effect, in contrast to the electric nonreciprocal effect commonly observed in superconducting diodes. Furthermore, the polarity of the magnetic nonreciprocity is in-situ reversible through the tunable magnetic patterns of artificial spin ice. Our findings demonstrate that artificial spin ice not only precisely modulates superconducting characteristics but also opens the door to novel functionalities, offering a groundbreaking paradigm for superconducting electronics.
title Magnetic nonreciprocity in a hybrid device of asymmetric artificial spin-ice-superconductors
topic Superconductivity
Mesoscale and Nanoscale Physics
Applied Physics
url https://arxiv.org/abs/2405.19777