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Spin-selective Transport in Semiconductor-based Chiral Molecular Junctions

ORAL

Abstract

Chirality-induced spin selectivity (CISS) is an effect with far-reaching fundamental implications involving intricate interplays among structural chirality, topological states, and electronic spin and orbitals. However, the microscopic picture of how chiral geometry influences electronic spin remains elusive. In this work, using a proven platform of chiral molecular spin valves of (Ga,Mn)As/AHPA-L/NM,1 we directly compared the CISS magnetoconductance of devices with normal metal electrodes of contrasting spin-orbit coupling (SOC) strengths: A heavy-metal (Au) electrode was found to produce significantly greater magnetoconductance than light metals.2 Our results evidence the essential role of SOC in the metal electrode for engendering the CISS spin valve effect, given the negligible SOC in organic molecules, which lends support to the scenario that the NM provides SOC to convert the orbital polarization induced by the chiral molecular structure to spin polarization.3 A tunneling model with a magnetochiral modulation of the potential barrier is shown to quantitatively account for the observation. Furthermore, we demonstrated that the CISS effect can be probed via the Hanle measurement in fully non-magnetic setup using a conventional semiconductor (GaAs).

Publication: 1) T. Liu, et al., ACS Nano 14, 15983 (2020)<br>2) Y. Adhikari, et al., arXiv: 2209.08117 <br>3) Y. Liu, et al., Nat. Mater. 20, 638 (2021)

Presenters

  • Yuwaraj Adhikari

    Florida State University

Authors

  • Yuwaraj Adhikari

    Florida State University

  • Tianhan Liu

    University of California, Los Angeles

  • Hailong Wang

    Chinese Academy of Sciences

  • Zhenqi Hua

    Florida State University

  • Haoyang Liu

    Florida State University

  • Eric Lochner

    Florida State University

  • Pedro Schlottmann

    Florida State University

  • Binghai Yan

    Weizmann Institute of Science

  • Jianhua Zhao

    Chinese Academy of Sciences

  • Peng Xiong

    Florida State University