Long-range two-hybrid-qubit gates mediated by a microwave cavity with red sidebands
arXiv:2106.10555 · doi:10.1103/PhysRevA.104.032612
Abstract
Implementing two-qubit gates via strong coupling between quantum-dot qubits and a superconducting microwave cavity requires achieving coupling rates that are much faster than decoherence rates. Typically, this involves tuning the qubit either to a sweet spot, where it is relatively insensitive to charge noise, or to a point where it is resonant with the microwave cavity. Unfortunately, such operating points seldom coincide. Here, we theoretically investigate several schemes for performing gates between two quantum-dot hybrid qubits, mediated by a microwave cavity. The rich physics of the quantum dot hybrid qubit gives rise to two types of sweet spots, which can occur at operating points with strong charge dipole moments. Such strong interactions provide new opportunities for off-resonant gating, thereby removing one of the main obstacles for long-distance two-qubit gates. Our results suggest that the numerous tuning knobs of quantum dot hybrid qubits make them good candidates for strong coupling. In particular, we show that off-resonant red-sideband-mediated two-qubit gates can exhibit fidelities 95\% for realistic operating parameters, and we describe improvements that could potentially yield gate fidelities 99\%.
15 pages, 5 figures
References in corpus (11)
- Quantum information processing with circuit quantum electrodynamics
- Demonstration of Entanglement of Electrostatically Coupled Singlet-Triplet Qubits
- Controlling the spontaneous emission of a superconducting transmon qubit
- Electrometry Using Coherent Exchange Oscillations in a Singlet-Triplet-Qubit
- Strong Coupling Cavity QED with Gate-Defined Double Quantum Dots Enabled by a High Impedance Resonator
- Microwave-driven coherent operations of a semiconductor quantum dot charge qubit
- First-order sidebands in circuit QED using qubit frequency modulation
- A few-electron quadruple quantum dot in a closed loop
- Valley splittings in Si/SiGe quantum dots with a germanium spike in the silicon well
- Decoherence of a Driven Qubit
- Phonon-induced relaxation and decoherence times of the hybrid qubit in silicon quantum dots