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菱方石墨烯中手性超导的特征

Signatures of chiral superconductivity in rhombohedral graphene.

作者信息

Han Tonghang, Lu Zhengguang, Hadjri Zach, Shi Lihan, Wu Zhenghan, Xu Wei, Yao Yuxuan, Cotten Armel A, Sharifi Sedeh Omid, Weldeyesus Henok, Yang Jixiang, Seo Junseok, Ye Shenyong, Zhou Muyang, Liu Haoyang, Shi Gang, Hua Zhenqi, Watanabe Kenji, Taniguchi Takashi, Xiong Peng, Zumbühl Dominik M, Fu Liang, Ju Long

机构信息

Department of Physics, Massachusetts Institute of Technology, Cambridge, MA, USA.

Department of Physics, Florida State University, Tallahassee, FL, USA.

出版信息

Nature. 2025 May 22. doi: 10.1038/s41586-025-09169-7.

Abstract

Chiral superconductors are unconventional superconducting states that break time-reversal symmetry spontaneously and typically feature Cooper pairing at non-zero angular momentum. Such states may host Majorana fermions and provide an important platform for topological physics research and fault-tolerant quantum computing. Despite intensive search and prolonged studies of several candidate systems, chiral superconductivity has remained elusive so far. Here we report the discovery of robust unconventional superconductivity in rhombohedral tetralayer and pentalayer graphene without moiré superlattice effects. We observed two superconducting states in the gate-induced flat conduction bands with T up to 300 mK and charge density n down to 2.4 × 10 cm in five devices. Spontaneous time-reversal-symmetry breaking (TRSB) owing to orbital motion of the electron is found and several observations indicate the chiral nature of these superconducting states, including: (1) in the superconducting state, R shows magnetic hysteresis in varying out-of-plane magnetic field B-absent from all other superconductors; (2) the superconducting states are robust against in-plane magnetic field and are developed within a spin-polarized and valley-polarized quarter-metal (QM) phase; (3) the normal states show anomalous Hall signals at zero magnetic field and magnetic hysteresis. We also observed a critical B of 1.4 T, higher than any graphene superconductivity, which indicates a strong-coupling superconductivity close to the Bardeen-Cooper-Schrieffer (BCS)-Bose-Einstein condensate (BEC) crossover. Our observations establish a pure carbon material for the study of topological superconductivity, with the promise to explore Majorana modes and topological quantum computing.

摘要

手性超导体是一类非常规超导态,它们会自发打破时间反演对称性,通常在非零角动量下存在库珀对。这类超导态可能包含马约拉纳费米子,为拓扑物理研究和容错量子计算提供了一个重要平台。尽管对多个候选体系进行了深入搜索和长期研究,但迄今为止手性超导性仍然难以捉摸。在此,我们报告在没有莫尔超晶格效应的菱面体四层和五层石墨烯中发现了稳健的非常规超导性。我们在五个器件的栅极诱导平带中观测到了两种超导态,其超导转变温度(T)高达(300)毫开尔文,电荷密度(n)低至(2.4×10^{12})厘米(^{-2})。我们发现由于电子的轨道运动导致了自发的时间反演对称性破缺(TRSB),并且多项观测结果表明这些超导态具有手性特征,包括:(1)在超导态下,电阻(R)在改变面外磁场(B)时表现出磁滞现象,这在所有其他超导体中都不存在;(2)超导态对平面内磁场具有稳健性,并在自旋极化和能谷极化的四分之一金属(QM)相中形成;(3)正常态在零磁场下显示出反常霍尔信号以及磁滞现象。我们还观测到一个(1.4)特斯拉的临界磁场(B),高于任何石墨烯超导性的临界磁场,这表明其接近巴丁 - 库珀 - 施里弗(BCS) - 玻色 - 爱因斯坦凝聚(BEC)交叉点的强耦合超导性。我们的观测结果确立了一种用于研究拓扑超导性的纯碳材料,有望探索马约拉纳模式和拓扑量子计算。

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