Effects of leakage on the realization of a discrete time crystal in a chain of singlet-triplet qubits
arXiv:2209.15008 · doi:10.1103/PhysRevB.106.245419
Abstract
We consider the effects of leakage on the ability to realize a discrete time crystal (DTC) in a semiconductor quantum dot linear array being operated as a chain of singlet-triplet (ST) qubits. This system realizes an Ising model with an effective applied magnetic field, plus additional terms that can cause leakage out of the computational subspace. We demonstrate that, in the absence of these leakage terms, this model theoretically realizes a DTC phase over a broad parameter regime for six and eight qubits, with a broader parameter range for the eight-qubit case. We then reintroduce the leakage terms and find that the DTC phase disappears entirely over the same parameter range if the system is only subject to a uniform magnetic field, which does not suppress leakage. However, we find that the DTC phase can be restored if the system is instead subject to a magnetic field that alternates from qubit to qubit, which suppresses leakage. We thus show that leakage is a serious problem for the realization of a DTC phase in a chain of ST qubits, but is by no means insurmountable. Our work suggests that experiments manifesting small-system stable DTC should be feasible with currently existing quantum dot spin qubits.
17 pages, 20 figures. Two preprint references replaced with published versions. All instances of replaced with in both the text and figures. Now published in Phys. Rev. B; this is largely the published version
References in corpus (14)
- An addressable quantum dot qubit with fault-tolerant control fidelity
- Computing with spin qubits at the surface code error threshold
- Fast universal quantum control above the fault-tolerance threshold in silicon
- Absence of Quantum Time Crystals
- Universal control of a six-qubit quantum processor in silicon
- Observation of Time-Crystalline Eigenstate Order on a Quantum Processor
- Observation of a continuous time crystal
- Observation of a many-body-localized discrete time crystal with a programmable spin-based quantum simulator
- Many-body physics in the NISQ era: quantum programming a discrete time crystal
- Single-electron operation of a silicon-CMOS 2x2 quantum dot array with integrated charge sensing
- Exchange coupling in a linear chain of three quantum-dot spin qubits in silicon
- Signatures of discrete time-crystallinity in transport through an open Fermionic chain
- Square-root Floquet topological phases and time crystals
- Emergence and Dynamical Stability of Charge Time-Crystal in a Current-Carrying Quantum Dot Simulator