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Two-qubit sweet spots for capacitively coupled exchange-only spin qubits

Physics

Two-qubit sweet spots for capacitively coupled exchange-only spin qubits

M. Feng, L. H. Zaw, et al.

Discover the future of quantum computation with groundbreaking research on high-fidelity two-qubit gates using semiconductor quantum dot qubits. Conducted by MengKe Feng, Lin Htoo Zaw, and Teck Seng Koh, this study reveals exact gate sequences and explores multiple sweet spots in parameter space, unveiling insights into noise thresholds critical for fault-tolerance. Join the journey toward revolutionizing quantum technologies!

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~3 min • Beginner • English
Abstract
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.
Publisher
npj Quantum Information
Published On
Jul 16, 2021
Authors
MengKe Feng, Lin Htoo Zaw, Teck Seng Koh
Tags
quantum computation
two-qubit gates
semiconductor qubits
fault-tolerance
quantum dots
high-fidelity
noise thresholds
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