Spin and valley-polarized multiple Fermi surfaces of α -RuCl3/bilayer graphene heterostructure

Author:

Kim Soyun1ORCID,Hong Jeonghoon23ORCID,Watanabe Kenji4ORCID,Taniguchi Takashi5ORCID,Falson Joseph6ORCID,Kim Jeongwoo2ORCID,Kim Youngwook1ORCID

Affiliation:

1. Department of Physics and Chemistry, Daegu Gyeongbuk Institute of Science and Technology (DGIST) 1 , Daegu 42988, Republic of Korea

2. Department of Physics, Incheon National University 2 , Incheon 22012, Republic of Korea

3. Department of Physics, Indiana University 3 , Bloomington, Indiana 47405, USA

4. Research Center for Electronic and Optical Materials, National Institute for Materials Science 4 , Tsukuba 305-0044, Japan

5. International Center for Materials Nanoarchitectonics, National Institute for Materials Science 5 , Tsukuba 305-0044, Japan

6. Department of Applied Physics and Materials Science, California Institute of Technology 6 , Pasadena, California 91125, USA

Abstract

We report the transport properties of α-RuCl3/bilayer graphene heterostructures, where carrier doping is induced by a work function difference, resulting in distinct electron and hole populations in α-RuCl3 and bilayer graphene, respectively. Through a comprehensive analysis of multi-channel transport signatures, including Hall measurements and quantum oscillation, we unveil significant band modifications within the system. In particular, we observe the emergence of spin and valley-polarized multiple hole-type Fermi pockets, originating from the spin-selective band hybridization between α-RuCl3 and bilayer graphene, breaking the spin degree of freedom. Unlike the α-RuCl3/monolayer graphene system, the presence of different hybridization strengths between α-RuCl3 and the top and bottom graphene layers leads to an asymmetric behavior of the two layers, confirmed by effective mass experiments, resulting in the manifestation of valley-polarized Fermi pockets. These compelling findings establish α-RuCl3 proximitized to bilayer graphene as an outstanding platform for engineering its unique low-energy band structure.

Funder

Ministry of Science and ICT, South Korea

Japan Society for the Promotion of Science

Samsung

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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