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多功能扫描隧道显微镜中原位双线圈互感技术的发展

Development of in situ two-coil mutual inductance technique in a multifunctional scanning tunneling microscope.

作者信息

Duan Ming-Chao, Liu Zhi-Long, Ge Jian-Feng, Tang Zhi-Jun, Wang Guan-Yong, Wang Zi-Xin, Guan Dandan, Li Yao-Yi, Qian Dong, Liu Canhua, Jia Jin-Feng

机构信息

Key Laboratory of Artificial Structures and Quantum Control (Ministry of Education), School of Physics and Astronomy, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China.

School of Electronics and Information Technology, Sun Yat-Sen University, 135 Xingang Xi Road, Guangzhou 510275, China.

出版信息

Rev Sci Instrum. 2017 Jul;88(7):073902. doi: 10.1063/1.4991819.

Abstract

Superconducting thin films have been a focal point for intensive research efforts since their reduced dimension allows for a wide variety of quantum phenomena. Many of these films, fabricated in UHV chambers, are highly vulnerable to air exposure, making it difficult to measure intrinsic superconducting properties such as zero resistance and perfect diamagnetism with ex situ experimental techniques. Previously, we developed a multifunctional scanning tunneling microscope (MSTM) containing in situ four-point probe (4PP) electrical transport measurement capability in addition to the usual STM capabilities [Ge et al., Rev. Sci. Instrum. 86, 053903 (2015)]. Here we improve this MSTM via development of both transmission and reflection two-coil mutual inductance techniques for in situ measurement of the diamagnetic response of a superconductor. This addition does not alter the original STM and 4PP functions of the MSTM. We demonstrate the performance of the two-coil mutual inductance setup on a 10-nm-thick NbN thin film grown on a Nb-doped SrTiO(111) substrate.

摘要

自从超导薄膜的尺寸减小允许出现各种各样的量子现象以来,它们一直是密集研究工作的焦点。许多在超高真空腔室中制备的这类薄膜极易受到空气暴露的影响,这使得用非原位实验技术测量诸如零电阻和完全抗磁性等本征超导特性变得困难。此前,我们开发了一种多功能扫描隧道显微镜(MSTM),除了具备常规的STM功能外,还具有原位四点探针(4PP)电输运测量能力[Ge等人,《科学仪器评论》86, 053903 (2015)]。在此,我们通过开发透射和反射双线圈互感技术来原位测量超导体的抗磁响应,对这种MSTM进行了改进。这一改进并未改变MSTM原有的STM和4PP功能。我们在生长于掺铌SrTiO(111)衬底上的10纳米厚的NbN薄膜上展示了双线圈互感装置的性能。

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