Leakage and sweet spots in triple-quantum-dot spin qubits: A molecular-orbital study
Chengxian Zhang, Xu-Chen Yang, Xin Wang

TL;DR
This study compares leakage and charge noise suppression in exchange-only and resonant-exchange triple-quantum-dot spin qubits, revealing that resonant-exchange qubits significantly reduce leakage and operate near optimal points for both noise and leakage suppression.
Contribution
The paper provides a molecular-orbital-theoretic analysis showing that resonant-exchange qubits greatly suppress leakage compared to exchange-only qubits, and identifies optimal operating points.
Findings
Resonant-exchange qubits have 3-5 orders of magnitude less leakage.
Leakage in exchange-only qubits is severe during certain rotations.
Operating at the double-sweet-spot balances charge noise reduction and leakage suppression.
Abstract
A triple-quantum-dot system can be operated as either an exchange-only qubit or a resonant-exchange qubit. While it is generally believed that the decisive advantage of the resonant-exchange qubit is the suppression of charge noise because it is operated at a sweet spot, we show that the leakage is also an important factor. Through molecular-orbital-theoretic calculations, we show that when the system is operated in the exchange-only scheme, the leakage to states with double electron occupancy in quantum dots is severe when rotations around the axis 120 from is performed. While this leakage can be reduced by either shrinking the dots or separating them further, the exchange interactions are also suppressed at the same time, making the gate operations unfavorably slow. When the system is operated as a resonant-exchange qubit, the leakage is 3-5 orders of magnitude…
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