Decoherence induced by a sparse bath of two-level fluctuators: peculiar features of noise in high-quality qubits
arXiv:2404.18659 · doi:10.1103/PhysRevResearch.6.033175
Abstract
Progress in fabrication of semiconductor and superconductor qubits has greatly diminished the number of decohering defects, thus decreasing the devastating low-frequency noise and extending the qubits' coherence times (dephasing time and the echo decay time ). However, large qubit-to-qubit variation of the coherence properties remains a problem, making it difficult to produce a large-scale register where all qubits have a uniformly high quality. In this work we show that large variability is a characteristic feature of a qubit dephased by a sparse bath made of many () decohering defects, coupled to the qubit with similar strength. We model the defects as two-level fluctuators (TLFs) whose transition rates are sampled from a log-uniform distribution over an interval , which is a standard model for noise. We investigate decoherence by such a bath in the limit of high-quality qubit, i.e.\ when the TLF density is small (the limit of sparse bath, with , where is the number of TLFs and is the log-width of the distribution). We show that different realizations of the bath produce very similar noise power spectra , but lead to drastically different coherence times and . Thus, the spectral density does not determine coherence of a qubit coupled to a sparse TLF bath, as opposed to a dense bath; instead, decoherence is controlled by only a few exceptional fluctuators, determined by their value of . We show that removing only two of these TLFs greatly increases and times. Our findings help theoretical understanding and further improvements in the coherence properties of semiconductor and superconductor qubits, battling the noise in these platforms.
20 pages, 12 figures
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Cited by in corpus (4)
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- Stabilizing an individual charge fluctuator in a Si/SiGe quantum dot
- Decoherence and fidelity enhancement during shuttling of entangled spin qubits