The asymmetric resonant exchange qubit under the influence of electrical noise
arXiv:1502.06109 · doi:10.1103/PhysRevB.91.235411
Abstract
We investigate the influence of electrical charge noise on a resonant exchange (RX) qubit in a triple quantum dot. This RX qubit is a variation of the exchange-only spin qubit which responds to a narrow-band resonant frequency. Our noise model includes uncorrelated charge noise in each quantum dot giving rise to two independent (noisy) bias parameters and . We calculate the energy splitting of the two qubit states as a function of these two bias detuning parameters to find "sweet spots", where the qubit is least susceptible to noise. Our investigation shows that such sweet spots exist within the low bias regime, in which the bias detuning parameters have the same magnitude as the hopping parameters. The location of the sweet spots in the plane depends on the hopping strength and asymmetry between the quantum dots. In the regime of weak charge noise, we identify a new favorable operating regime for the RX qubit based on these sweet spots.
11 pages (including two appendices), 6 figures
References in corpus (8)
- Demonstration of Entanglement of Electrostatically Coupled Singlet-Triplet Qubits
- Universal quantum control of two-electron spin quantum bits using dynamic nuclear polarization
- Electrometry Using Coherent Exchange Oscillations in a Singlet-Triplet-Qubit
- Coherent spin manipulation in an exchange-only qubit
- Dephasing of solid-state qubits at optimal points
- Life after charge noise: recent results with transmon qubits
- Quantum gates between capacitively coupled double quantum dot two-spin qubits
- Decoherence of an exchange qubit by hyperfine interaction
Cited by in corpus (5)
- Coupling of three-spin qubits to their electric environment
- Negative spin exchange in a multielectron quantum dot
- Low-Error Operation of Spin Qubits with Superexchange Coupling
- Benchmarking of dynamically corrected gates for the exchange-only spin qubit in noise environment
- Hyperfine-induced dephasing in three-electron spin qubits