Graphene-based quantum Hall interferometer with self-aligned side gates
arXiv:2206.05623 · doi:10.1021/acs.nanolett.2c03805
Abstract
The vanishing band gap of graphene has long presented challenges for making high-quality quantum point contacts (QPCs) -- the partially transparent p-n interfaces introduced by conventional split-gates tend to short the QPC. This complication has hindered the fabrication of graphene quantum Hall Fabry-Pérot interferometers, until recent advances have allowed split-gate QPCs to operate utilizing the highly resistive state. Here, we present a simple recipe to fabricate QPCs by etching a narrow trench in the graphene sheet to separate the conducting channel from self-aligned graphene side gates. We demonstrate operation of the individual QPCs in the quantum Hall regime, and further utilize these QPCs to create and study a quantum Hall interferometer.
References in corpus (6)
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- Aharonov-Bohm interference and the evolution of phase jumps in fractional quantum Hall Fabry-Perot interferometers based on bi-layer graphene
- Dissipation and dephasing in quantum Hall interferometers
- Evidence for correlated electron pairs and triplets in quantum Hall interferometers
- Quantum Hall interferometry at finite bias with multiple edge channels
- Spontaneous localization at a potential saddle point from edge state reconstruction in a quantum Hall point contact
- Single electron interference and capacitive edge mode coupling generates flux periodicity in Fabry-Perot interferometers