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Auteurs principaux: Gunyhó, András M., Kundu, Suman, Ma, Jian, Liu, Wei, Niemelä, Sakari, Catto, Giacomo, Vadimov, Vasilii, Vesterinen, Visa, Singh, Priyank, Chen, Qiming, Möttönen, Mikko
Format: Preprint
Publié: 2023
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Accès en ligne:https://arxiv.org/abs/2303.03668
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author Gunyhó, András M.
Kundu, Suman
Ma, Jian
Liu, Wei
Niemelä, Sakari
Catto, Giacomo
Vadimov, Vasilii
Vesterinen, Visa
Singh, Priyank
Chen, Qiming
Möttönen, Mikko
author_facet Gunyhó, András M.
Kundu, Suman
Ma, Jian
Liu, Wei
Niemelä, Sakari
Catto, Giacomo
Vadimov, Vasilii
Vesterinen, Visa
Singh, Priyank
Chen, Qiming
Möttönen, Mikko
contents Measuring the state of qubits is one of the fundamental operations of a quantum computer. Currently, state-of-the-art high-fidelity single-shot readout of superconducting qubits relies on parametric amplifiers at the millikelvin stage. However, parametric amplifiers are challenging to scale beyond hundreds of qubits owing to practical size and power limitations. Nanobolometers have a multitude of properties that are advantageous for scalability and have recently shown sensitivity and speed promising for qubit readout, but such thermal detectors have not been demonstrated for this purpose. In this work, we utilize an ultrasensitive bolometer in place of a parametric amplifier to experimentally demonstrate single-shot qubit readout. With a readout duration of $13.9~μ\mathrm{s}$, we achieve a single-shot fidelity of 0.618 which is mainly limited by the energy relaxation time of the qubit, $T_1 = 28~μ\mathrm{s}$. Without the $T_1$ errors, we find the fidelity to be 0.927. In the future, high-fidelity single-shot readout may be achieved by straightforward improvements to the chip design and experimental setup, and perhaps most interestingly by the change of the bolometer absorber material to reduce the readout time to the hundred-nanosecond level and beyond.
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publishDate 2023
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spellingShingle Single-Shot Readout of a Superconducting Qubit Using a Thermal Detector
Gunyhó, András M.
Kundu, Suman
Ma, Jian
Liu, Wei
Niemelä, Sakari
Catto, Giacomo
Vadimov, Vasilii
Vesterinen, Visa
Singh, Priyank
Chen, Qiming
Möttönen, Mikko
Quantum Physics
Measuring the state of qubits is one of the fundamental operations of a quantum computer. Currently, state-of-the-art high-fidelity single-shot readout of superconducting qubits relies on parametric amplifiers at the millikelvin stage. However, parametric amplifiers are challenging to scale beyond hundreds of qubits owing to practical size and power limitations. Nanobolometers have a multitude of properties that are advantageous for scalability and have recently shown sensitivity and speed promising for qubit readout, but such thermal detectors have not been demonstrated for this purpose. In this work, we utilize an ultrasensitive bolometer in place of a parametric amplifier to experimentally demonstrate single-shot qubit readout. With a readout duration of $13.9~μ\mathrm{s}$, we achieve a single-shot fidelity of 0.618 which is mainly limited by the energy relaxation time of the qubit, $T_1 = 28~μ\mathrm{s}$. Without the $T_1$ errors, we find the fidelity to be 0.927. In the future, high-fidelity single-shot readout may be achieved by straightforward improvements to the chip design and experimental setup, and perhaps most interestingly by the change of the bolometer absorber material to reduce the readout time to the hundred-nanosecond level and beyond.
title Single-Shot Readout of a Superconducting Qubit Using a Thermal Detector
topic Quantum Physics
url https://arxiv.org/abs/2303.03668