Fast and high-fidelity dispersive readout of a spin qubit via squeezing
and resonator nonlinearity
- URL: http://arxiv.org/abs/2401.03617v1
- Date: Mon, 8 Jan 2024 01:11:17 GMT
- Title: Fast and high-fidelity dispersive readout of a spin qubit via squeezing
and resonator nonlinearity
- Authors: Chon-Fai Kam and Xuedong Hu
- Abstract summary: We explore the dispersive measurement of an individual spin in a semiconductor double quantum dot coupled to a nonlinear microwave resonator.
By utilizing displaced squeezed vacuum states, we achieve rapid and high-fidelity readout for semiconductor spin qubits.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Fast and high-fidelity qubit measurement is crucial for achieving quantum
error correction, a fundamental element in the development of universal quantum
computing. For electron spin qubits, fast readout stands out as a major
obstacle in the pursuit of error correction. In this work, we explore the
dispersive measurement of an individual spin in a semiconductor double quantum
dot coupled to a nonlinear microwave resonator. By utilizing displaced squeezed
vacuum states, we achieve rapid and high-fidelity readout for semiconductor
spin qubits. Our findings reveal that introducing modest squeezing and mild
nonlinearity can significantly improve both the signal-to-noise ratio (SNR) and
the fidelity of qubit-state readout. By properly marching the phases of
squeezing, the nonlinear strength, and the local oscillator, the optimal
readout time can be reduced to the sub-microsecond range. With current
technology parameters ($\kappa\approx 2\chi_s$, $\chi_s\approx 2\pi\times 0.15
\:\mbox{MHz}$), utilizing a displaced squeezed vacuum state with $30$ photons
and a modest squeezing parameter $r\approx 0.6$, along with a nonlinear
microwave resonator charactered by a strength of $\lambda\approx -1.2 \chi_s$,
a readout fidelity of $98\%$ can be attained within a readout time of around
$0.6\:\mu\mbox{s}$. Intriguing, by using a positive nonlinear strength of
$\lambda\approx 1.2\chi_s$, it is possible to achieve an SNR of approximately
$6$ and a readout fidelity of $99.99\%$ at a slightly later time, around
$0.9\:\mu\mbox{s}$, while maintaining all other parameters at the same
settings.
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