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Magnetic Nonreciprocity in a Hybrid Device of Asymmetric Artificial Spin-Ice-Superconductors

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【作者】 李冲黄培源王晨光李浩杰吕阳阳岳文诚袁子雄李甜雨涂学凑陶涛董思宁何亮贾小氢孙国柱康琳王华兵吴培亨王永磊

【Author】 Chong Li;Peiyuan Huang;Chen-Guang Wang;Haojie Li;Yang-Yang Lyu;Wen-Cheng Yue;Zixiong Yuan;Tianyu Li;Xuecou Tu;Tao Tao;Sining Dong;Liang He;Xiaoqing Jia;Guozhu Sun;Lin Kang;Huabing Wang;Peiheng Wu;Yong-Lei Wang;Research Institute of Superconductor Electronics, Nanjing University;Purple Mountain Laboratories;National Key Laboratory of Spintronics, Nanjing University;

【通讯作者】 吕阳阳;岳文诚;王永磊;

【机构】 Research Institute of Superconductor Electronics, Nanjing UniversityPurple Mountain LaboratoriesNational Key Laboratory of Spintronics, Nanjing University

【摘要】 Controlling the size and distribution of potential barriers within a medium of interacting particles can unveil unique collective behaviors and innovative functionalities. 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.

【Abstract】 Controlling the size and distribution of potential barriers within a medium of interacting particles can unveil unique collective behaviors and innovative functionalities. 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.

【基金】 supported by the National Natural Science Foundation of China (Grant Nos. 62288101 and 62274086);the National Key R&D Program of China (Grant No. 2021YFA0718802);the Jiangsu Outstanding Postdoctoral Program
  • 【文献出处】 Chinese Physics Letters ,中国物理快报(英文版) , 编辑部邮箱 ,2024年06期
  • 【分类号】O469
  • 【下载频次】3
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