Coupling of three-spin qubits to their electric environment
Maximilian Russ, Florian Ginzel, Guido Burkard

TL;DR
This paper explores how three-spin qubits in quantum dots interact with electric fields, analyzing their noise susceptibility and coupling to cavity fields, and demonstrates how to control qubit types and optimize coherence.
Contribution
It provides a comprehensive analysis of the control, noise resilience, and cavity coupling of three-spin qubits across different charge configurations and bias parameters.
Findings
Identification of optimal bias points for minimal dephasing.
Mapping of qubit-cavity coupling strength as a function of bias.
Demonstration of smooth transitions between different qubit types.
Abstract
We investigate the behavior of qubits consisting of three electron spins in double and triple quantum dots subject to external electric fields. Our model includes two independent bias parameters, and , which both couple to external electromagnetic fields and can be controlled by gate voltages applied to the quantum dot structures. By varying these parameters one can switch the qubit type by shifting the energies in the single quantum dots thus changing the electron occupancy in each dot. Starting from the asymmetric resonant (ARX) exchange qubit with a (2,0,1) and (1,0,2) charge admixture one can smoothly cross over to the resonant exchange (RX) qubit with a detuned (1,1,1) charge configuration, and to the exchange-only (EO) qubit with the same charge configuration but equal energy levels down to the hybrid qubits with (1,2,0) and (0,2,1) charge…
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