An ultracompact scanning tunneling microscope within a Φ 10 piezo tube in a 20 T superconducting magnet

Author:

Zhang Min123ORCID,Wang Jihao23ORCID,Meng Wenjie23ORCID,Zhang Jing23ORCID,Feng Qiyuan23,Wang Ze23,Lu Yalin14ORCID,Hou Yubin23ORCID,Lu Qingyou1234ORCID

Affiliation:

1. University of Science and Technology of China 1 , Hefei, Anhui 230026, China

2. Anhui Key Laboratory of Low-Energy Quantum Materials and Devices, High Magnetic Field Laboratory, Hefei Institutes of Physical Science, Chinese Academy of Sciences 2 , Hefei, Anhui 230031, China

3. High Magnetic Field Laboratory of Anhui Province, Hefei Institutes of Physical Science, Chinese Academy of Sciences 3 , Hefei 230031, China

4. Anhui Laboratory of Advanced Photon Science and Technology, University of Science and Technology of China 4 , Hefei 230026, China

Abstract

Low-temperature scanning tunneling microscopy and spectroscopy (STM/S) help to better understand the fundamental physics of condensed matter. We present an ultracompact STM within a Φ 10 piezo tube in a 20 T superconducting magnet. The carefully cut piezo tube contains the STM’s coarse-positioning assembly. Loading an STM tip–sample mechanical loop into the piezo tube with special cut openings enables an ultracompact pencil-size dimension down to Φ 10 mm, in which fine-machined nonmagnetic parts are assembled to enable slide–stick motion and xyz-scanning procedures. The small size leads to a higher resonant frequency, a typical feature of a rigid STM instrument, increasing its vibration immunity. Scanning by moving the sample while keeping the tip stationary improves the stability of the tip–sample junction compared to moving the tip. Taking advantage of its high-field compatibility and rigid design, our STM captures the atomically resolved topography of highly oriented pyrolytic graphite (HOPG) at 1.5 K and in magnetic fields up to 17 T. The topography of graphene lattice and graphite is simultaneously recorded on an atomic terrace of HOPG, unveiling a modified local charge density at a surface defect. The superconducting energy gaps of layered type-II superconductors NbSe2 and PdBi2 are well resolved through dI/dV tunneling spectra at sub-2 K. Our unique STM is highly suitable for potential STM/S applications in world-class high-field facilities where the strong magnetic field can exceed 30 T.

Funder

Maintenance and Renovation Project for CAS Major Scientific and Technological Infrastructure

Scientific Instrument Developing Project of the Chinese Academy of Sciences

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

AIP Publishing

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