Scalable fabrication of graphene nanoribbon quantum dot devices with stable orbital-level spacing

Author:

Kato ToshiakiORCID,Kitada Takahito,Seo Mizuki,Okita Wakana,Sato Naofumi,Shinozaki Motoya,Abe Takaya,Kumasaka Takeshi,Aizawa Takumi,Muto Yui,Kaneko Toshiro,Otsuka Tomohiro

Abstract

AbstractLarge-scale integration of quantum-dot devices is essential for realizing various quantum devices. Graphene-based quantum dots provide a promising platform for spin qubits because of their low nuclear spin density and weak spin-orbit interaction. However, the integration of graphene-based quantum dots remains a challenge. Here, we demonstrate the scalable fabrication of graphene nanoribbon-based quantum-dot devices using a nickel nanobar technique. Fine structures formed in the middle of the nanoribbons exhibit quantum-dot behavior, and more than 56% of devices fabricated on the same substrate show Coulomb diamond features, indicating that large-scale integration of graphene nanoribbon quantum-dot devices is possible with our method. Cryogenic measurements reveal orbital-level spacings between the ground and excited states that are stable up to high-temperature conditions of ~20 K. We explain this stability in terms of the very fine structures formed in the middle of the nanoribbons and their relatively low effective mass.

Funder

Sumitomo Foundation Fiscal 2021 Grant for Basic Science Research Projects, Yazaki Memorial Foundation for Science and Technology, Mitsubishi Foundation, Murata Science Foundation Research Grant

Publisher

Springer Science and Business Media LLC

Subject

Mechanics of Materials,General Materials Science

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