Shubnikov–de Haas oscillations of biaxial-strain-tuned superconductors in pulsed magnetic field up to 60 T

Author:

Yip King Yau1ORCID,Wang Lingfei1ORCID,Poon Tsz Fung1ORCID,Yu Kai Ham1ORCID,Lam Siu Tung1ORCID,Lai Kwing To12ORCID,Singleton John3ORCID,Balakirev Fedor F.3ORCID,Goh Swee K.1ORCID

Affiliation:

1. Department of Physics, The Chinese University of Hong Kong 1 , Shatin, Hong Kong, China

2. Shenzhen Research Institute, The Chinese University of Hong Kong 2 , Shatin, Hong Kong, China

3. National High Magnetic Field Laboratory, Los Alamos National Laboratory 3 , Los Alamos, New Mexico 87545, USA

Abstract

Two-dimensional (2D) materials have gained increasing prominence not only in fundamental research but also in daily applications. However, to fully harness their potential, it is crucial to optimize their properties with an external parameter and track the electronic structure simultaneously. Magnetotransport over a wide magnetic field range is a powerful method to probe the electronic structure and, for metallic 2D materials, quantum oscillations superimposed on the transport signals encode Fermi surface parameters. In this manuscript, we utilize biaxial strain as an external tuning parameter and investigate the effects of strain on the electronic properties of two quasi-2D superconductors, MoTe2 and RbV3Sb5, by measuring their magnetoresistance in pulsed magnetic fields up to 60 T. With a careful selection of insulating substrates, we demonstrate the possibility of both the compressive and tensile biaxial strains imposed on MoTe2 and RbV3Sb5, respectively. For both systems, the applied strain has led to superconducting critical temperature enhancement compared to their free-standing counterparts, proving the effectiveness of this biaxial strain method at cryogenic temperatures. Clear quantum oscillations in the magnetoresistance—the Shubnikov–de Haas (SdH) effect—are obtained in both samples. In strained MoTe2, the magnetoresistance exhibits a nearly quadratic dependence on the magnetic field and remains non-saturating even at the highest field, whereas in strained RbV3Sb5, two SdH frequencies showed a substantial enhancement in effective mass values, hinting at a possible enhancement of charge fluctuations. Our results demonstrate that combining biaxial strain and pulsed magnetic field paves the way for studying 2D materials under unprecedented conditions.

Funder

Research Grants Council, University Grants Committee

National Natural Science Foundation of China

National Science Foundation Cooperative Agreement

Publisher

AIP Publishing

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