Dipole coupling of a bilayer graphene quantum dot to a high-impedance microwave resonator
ORAL
Abstract
Bilayer graphene is a rapidly developing material system for spin and valley qubits. Electrostatically defined quantum dots in bilayer graphene have successfully demonstrated time-resolved charge detection [2], switchable Pauli spin and valley blockade [3] and long-lived spin and valley states [4], critical prerequisites for a material platform to host spin or valley qubits.
We show results from a high-impedance resonator coupled to a bilayer graphene double quantum dot. Dipole coupling allows the resonator to sense the electric susceptibility of the double quantum dot from which we can reconstruct its charge stability diagram. The charge-photon interaction is quantified in the dispersive and resonant regimes by comparing the coupling-induced change in resonator response to input-output theory. Our results introduce a versatile circuit QED architecture to probe quantum dots in van der Waals materials. We highlight the technical challenges and indicate a path towards coherent charge-photon coupling with bilayer graphene quantum dots.
[1] Ruckriegel, M. J. et al. Electric Dipole Coupling of a Bilayer Graphene Quantum Dot to a High-Impedance Microwave Resonator. Nano Lett. 2024, 24, 24, 7508–7514, DOI: 10.1021/acs.nanolett.4c01791
[2] Gächter, L. M. et al. Single-Shot Spin Readout in Graphene Quantum Dots. PRX Quantum 2022, 3, 020343, DOI: 10.1103/PRXQuantum.3.020343
[3] Tong, C. et al. Pauli Blockade of Tunable Two-Electron Spin and Valley States in Graphene Quantum Dots. Phys. Rev. Lett. 2022, 128, 067702, DOI: 10.1103/PhysRevLett.128.067702
[4] Denisov, A. O. et al. Ultra-long relaxation of a Kramers qubit formed in a bilayer graphene quantum dot. arXiv Preprint , arXiv:2403.08143, 2024. DOI: 10.48550/arXiv.2403.08143
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Publication: Ruckriegel, M. J. et al. Electric Dipole Coupling of a Bilayer Graphene Quantum Dot to a High-Impedance Microwave Resonator. Nano Lett. 2024, 24, 24, 7508–7514, DOI: 10.1021/acs.nanolett.4c01791
Presenters
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Max J Ruckriegel
ETH Zurich
Authors
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Max J Ruckriegel
ETH Zurich
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Lisa M Gächter
ETH Zurich
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David A Kealhofer
ETH Zurich
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Mohsen B Panah
ETH Zurich
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Chuyao Tong
Stanford, Stanford University, ETH Zurich
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Christoph Adam
ETH Zurich
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Michele Masseroni
ETH Zurich
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Hadrien Duprez
ETH Zurich
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Rebekka Garreis
ETH Zurich
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Kenji Watanabe
National Institute for Materials Science, NIMS, Research Center for Functional Materials, National Institute for Materials Science, Research Center for Electronic and Optical Materials, National Institute for Materials Science, 1-1 Namiki, Tsukuba 305-0044, Japan, Research Center for Functional Materials, National Institute of Material Science, Tsukuba, Japan, National Institute of Materials Science, Advanced Materials Laboratory, National Institute for Materials Science
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Takashi Taniguchi
National Institute for Materials Science, International Center for Materials Nanoarchitectonics, National Institute for Materials Science, Research Center for Materials Nanoarchitectonics, National Institute for Materials Science, 1-1 Namiki, Tsukuba 305-0044, Japan, International Center for Materials Nanoarchitectonics, National Institute of Material Science, Tsukuba, Japan, Advanced Materials Laboratory, National Institute for Materials Science
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Andreas Wallraff
ETH Zurich, ETH Zurich, Paul Scherrer Institute
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Thomas Ihn
ETH Zurich
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Klaus Ensslin
ETH Zurich
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Wei W Huang
ETH Zurich