Two-qubit sweet spots for capacitively coupled exchange-only spin qubits
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作者:
MengKe Feng
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机构:Nanyang Technological University,Division of Physics and Applied Physics, School of Physical and Mathematical Sciences
MengKe Feng
Lin Htoo Zaw
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机构:Nanyang Technological University,Division of Physics and Applied Physics, School of Physical and Mathematical Sciences
Lin Htoo Zaw
Teck Seng Koh
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机构:Nanyang Technological University,Division of Physics and Applied Physics, School of Physical and Mathematical Sciences
Teck Seng Koh
机构:
[1] Nanyang Technological University,Division of Physics and Applied Physics, School of Physical and Mathematical Sciences
[2] University of New South Wales,School of Electrical Engineering and TeleComm.
[3] National University of Singapore,Centre for Quantum Technologies
来源:
npj Quantum Information
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7卷
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摘要:
The implementation of high fidelity two-qubit gates is a bottleneck in the progress toward universal quantum computation in semiconductor quantum dot qubits. We study capacitive coupling between two triple quantum dot spin qubits encoded in the S = 1/2, Sz = −1/2 decoherence-free subspace—the exchange-only (EO) spin qubits. We report exact gate sequences for CPHASE and CNOT gates, and demonstrate theoretically, the existence of multiple two-qubit sweet spots (2QSS) in the parameter space of capacitively coupled EO qubits. Gate operations have the advantage of being all-electrical, but charge noise that couple to electrical parameters of the qubits cause decoherence. Assuming noise with a 1/f spectrum, two-qubit gate fidelities and times are calculated, which provide useful information on the noise threshold necessary for fault-tolerance. We study two-qubit gates at single and multiple parameter 2QSS. In particular, for two existing EO implementations—the resonant exchange (RX) and the always-on exchange-only (AEON) qubits—we compare two-qubit gate fidelities and times at positions in parameter space where the 2QSS are simultaneously single-qubit sweet spots (1QSS) for the RX and AEON. These results provide a potential route to the realization of high fidelity quantum computation.