Realizable time crystal of four silicon quantum dot qubits
Nathan L. Foulk, Sankar Das Sarma

TL;DR
This paper demonstrates the realization of a discrete time crystal in a four-qubit silicon quantum dot spin system, showing potential for experimental observation and highlighting the role of charge noise in stabilizing time-crystalline order.
Contribution
It introduces a method to realize and analyze a discrete time crystal in silicon spin qubits, emphasizing the use of charge noise and the growth of DTC lifetime with system size.
Findings
Signatures of discrete time crystal observed in four-qubit chains.
DTC lifetime increases exponentially with system length.
Predictions are suitable for immediate experimental testing.
Abstract
We demonstrate that exciting possible realizations of quantum Floquet matter are within reach for modern silicon spin qubits based in quantum dots, most notably the discrete time crystal (DTC). This is significant given that spin qubits have fallen behind other qubit architectures in terms of size and control. However, silicon spin qubits are especially well suited to this task as the charge noise that usually foils gate operations can now be leveraged as an asset in this time-crystal realization. We illustrate differences between prethermal phenomena and true time-crystalline spatiotemporal order. We demonstrate that even for a spin chain of four qubits, rich regime structures can be established by observing signatures of the discrete time crystal and the Floquet symmetry-protected topological regime both distinct from the thermal regime. We also analyze the persistence of these…
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Taxonomy
TopicsQuantum and electron transport phenomena · Neural Networks and Reservoir Computing · Semiconductor Quantum Structures and Devices
