Orbital Edelstein effect as a condensed-matter analog of solenoid

ORAL

Abstract

We theoretically study current-induced orbital magnetization in a chiral crystal. This phenomenon is an orbital version of the Edelstein effect. We propose an analogy between the current-induced orbital magnetization and an Ampere field in a solenoid in classical electrodynamics. In order to quantify this effect, we define a dimensionless parameter from the response coefficient relating a current density with an orbital magnetization. This dimensionless parameter can be regarded as a number of turns within a unit cell when the crystal is regarded as a solenoid, and it represents how ``chiral'' the crystal is. By focusing on the dimensionless parameter, one can design band structure which realizes induction of large orbital magnetization. In particular, a Weyl semimetal with all the Weyl nodes close to the Fermi energy can have a large value of this dimensionless parameter, which can exceed that of a classical solenoid. [1] T. Yoda, T. Yokoyama, and S. Murakami, Sci. Rep. 5, 12024 (2015). [2] T. Yoda, T. Yokoyama, and S. Murakami, arXiv:1706.07702.

*We acknowledge support from JSPS KAKENHI Grant No. JP16J07354, JP16K13834, from MEXT KAKENHI Grant No. JP17H05179, JP16H00988, and 26103006 and from MEXT Elements Strategy Initiative to Form Core Research Center (TIES).

Presenters

  • Shuichi Murakami

    • Tokyo Institute of Technology
    • Department of Physics, Tokyo Institute of Technology
    • Tokyo Inst of Tech - Tokyo
    • Physics, Tokyo Inst of Tech
    • Physics, Tokyo Inst. of Tech.

Authors

  • Shuichi Murakami

    • Tokyo Institute of Technology
    • Department of Physics, Tokyo Institute of Technology
    • Tokyo Inst of Tech - Tokyo
    • Physics, Tokyo Inst of Tech
    • Physics, Tokyo Inst. of Tech.
  • Taiki Yoda

    • Tokyo Inst of Tech - Tokyo
  • Takehito Yokoyama

    • Tokyo Institute of Technology
    • Tokyo Inst of Tech - Tokyo
    • Department of Physics, Tokyo Inst of Tech - Tokyo