Phonon-induced decoherence of a charge quadrupole qubit
arXiv:1802.05849 · doi:10.1088/1367-2630/aae61f
Abstract
Many quantum dot qubits operate in regimes where the energy splittings between qubit states are large and phonons can be the dominant source of decoherence. The recently proposed charge quadrupole qubit, based on one electron in a triple quantum dot, employs a highly symmetric charge distribution to suppress the influence of charge noise. To study the effects of phonons on the charge quadrupole qubit, we consider Larmor and Ramsey pulse sequences to identify favorable operating parameters. We show that it is possible to implement typical gates with fidelity in the presence of phonons and charge noise.
References in corpus (14)
- Driven coherent oscillations of a single electron spin in a quantum dot
- A >99.9%-fidelity quantum-dot spin qubit with coherence limited by charge noise
- Simple pulses for elimination of leakage in weakly nonlinear qubits
- A programmable two-qubit quantum processor in silicon
- Electrically driven single electron spin resonance in a slanting Zeeman field
- Quantum CNOT Gate for Spins in Silicon
- Electrometry Using Coherent Exchange Oscillations in a Singlet-Triplet-Qubit
- Fidelity of quantum operations
- Coherent spin manipulation in an exchange-only qubit
- Microwave-driven coherent operations of a semiconductor quantum dot charge qubit
- Decoherence Rate of Semiconductor Charge Qubit Coupled to Acoustic Phonon Reservoir
- Universal set of quantum gates for double-dot spin qubits with fixed interdot coupling
- Achieving High Fidelity Single Qubit Gates in a Strongly Driven Silicon Quantum Dot Hybrid Qubit
- A tunable hybrid qubit in a triple quantum dot
Cited by in corpus (5)
- Electric-field control and noise protection of the flopping-mode spin qubit
- Achieving High-Fidelity Single-Qubit Gates in a Strongly Driven Charge Qubit with Charge Noise
- Strong photon coupling to the quadrupole moment of an electron in solid state
- Hole-phonon interactions in quantum dots: Effects of phonon confinement and encapsulation materials on spin-orbit qubits
- Proposed Five-Electron Charge Quadrupole Qubit