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Dive into the research topics where Xiaoyue Jin is active.

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Featured researches published by Xiaoyue Jin.


Physical Review Letters | 2015

Coherence and Decay of Higher Energy Levels of a Superconducting Transmon Qubit

Michael Peterer; Samuel J. Bader; Xiaoyue Jin; Fei Yan; Archana Kamal; Theodore Gudmundsen; P. J. Leek; T. P. Orlando; William D. Oliver; Simon Gustavsson

We present measurements of coherence and successive decay dynamics of higher energy levels of a superconducting transmon qubit. By applying consecutive π pulses for each sequential transition frequency, we excite the qubit from the ground state up to its fourth excited level and characterize the decay and coherence of each state. We find the decay to proceed mainly sequentially, with relaxation times in excess of 20  μs for all transitions. We also provide a direct measurement of the charge dispersion of these levels by analyzing beating patterns in Ramsey fringes. The results demonstrate the feasibility of using higher levels in transmon qubits for encoding quantum information.


Nature Communications | 2013

Rotating-frame relaxation as a noise spectrum analyser of a superconducting qubit undergoing driven evolution

Fei Yan; Simon Gustavsson; Jonas Bylander; Xiaoyue Jin; Fumiki Yoshihara; David G. Cory; Yasunobu Nakamura; T. P. Orlando; William D. Oliver

Gate operations in a quantum information processor are generally realized by tailoring specific periods of free and driven evolution of a quantum system. Unwanted environmental noise, which may in principle be distinct during these two periods, acts to decohere the system and increase the gate error rate. Although there has been significant progress characterizing noise processes during free evolution, the corresponding driven-evolution case is more challenging as the noise being probed is also extant during the characterization protocol. Here we demonstrate the noise spectroscopy (0.1-200 MHz) of a superconducting flux qubit during driven evolution by using a robust spin-locking pulse sequence to measure relaxation (T(1ρ)) in the rotating frame. In the case of flux noise, we resolve spectral features due to coherent fluctuators, and further identify a signature of the 1 MHz defect in a time-domain spin-echo experiment. The driven-evolution noise spectroscopy complements free-evolution methods, enabling the means to characterize and distinguish various noise processes relevant for universal quantum control.


Physical Review Letters | 2015

Thermal and Residual Excited-State Population in a 3D Transmon Qubit.

Xiaoyue Jin; Archana Kamal; Adam Sears; Theodore Gudmundsen; David Hover; J. Miloshi; R. Slattery; Fei Yan; Jonilyn Yoder; T. P. Orlando; Simon Gustavsson; William D. Oliver

Remarkable advancements in coherence and control fidelity have been achieved in recent years with cryogenic solid-state qubits. Nonetheless, thermalizing such devices to their milliKelvin environments has remained a long-standing fundamental and technical challenge. In this context, we present a systematic study of the first-excited-state population in a 3D transmon superconducting qubit mounted in a dilution refrigerator with a variable temperature. Using a modified version of the protocol developed by Geerlings et al., we observe the excited-state population to be consistent with a Maxwell-Boltzmann distribution, i.e., a qubit in thermal equilibrium with the refrigerator, over the temperature range 35-150 mK. Below 35 mK, the excited-state population saturates at approximately 0.1%. We verified this result using a flux qubit with ten times stronger coupling to its readout resonator. We conclude that these qubits have effective temperature T(eff)=35  mK. Assuming T(eff) is due solely to hot quasiparticles, the inferred qubit lifetime is 108  μs and in plausible agreement with the measured 80  μs.


Physical Review Letters | 2015

Z-Gate Operation on a Superconducting Flux Qubit via its Readout SQUID

Xiaoyue Jin; Jonas Bylander; Fumiki Yoshihara; Yasunobu Nakamura; Simon Gustavsson; Fei Yan; T. P. Orlando; William D. Oliver


日本物理学会講演概要集 | 2014

10pAN-8 超伝導量子ビットを用いた量子Jarzynski等式の検証(10pAN 量子論基礎,その他の量子力学系,領域11(物性基礎論・統計力学・流体物理・応用数学・社会経済物理))

雄太 増山; 信吾 河野; 豊 田渕; 豊史 石川; 歴舟 山崎; Xiaoyue Jin; T. Gudmundsen; Simon Gustavsson; William D. Oliver; 康二 宇佐見; 泰信 中村


Bulletin of the American Physical Society | 2014

Low-Power Dispersive Measurements of High-Coherence Flux Qubits

David Hover; Adam Sears; Theodore Gudmundsen; Andrew J. Kerman; Paul B. Welander; Jonilyn Yoder; Archana Kamal; Simon Gustavsson; Xiaoyue Jin; Jeffrey Birenbaum; John Clarke; William D. Oliver


Bulletin of the American Physical Society | 2014

Design and measurement of improved capacitively-shunted flux qubits

Adam Sears; Jeffrey Birenbaum; David Hover; Theodore Gudmundsen; Andrew J. Kerman; Paul B. Welander; Jonilyn Yoder; Simon Gustavsson; Xiaoyue Jin; Archana Kamal; John Clarke; William D. Oliver


Bulletin of the American Physical Society | 2014

Progress towards a metastable RF squid (MRFS) qubit

Archana Kamal; Andrew J. Kerman; Simon Gustavsson; Xiaoyue Jin; Fei Yan; Ted Gudmundsen; David Hover; Adam Sears; Jonilyn Yoder; T. P. Orlando; William D. Oliver


Bulletin of the American Physical Society | 2014

An efficient method for studying low-frequency two-state fluctuators

Fei Yan; Simon Gustavsson; Xiaoyue Jin; Archana Kamal; T. P. Orlando; William D. Oliver


Bulletin of the American Physical Society | 2014

Improved coherence times for transmon qubits in two-dimensional resonators

Simon Gustavsson; Archana Kamal; Theodore Gudmundsen; Jonilyn Yoder; Paul B. Welander; Xiaoyue Jin; Fei Yan; David Hover; Andrew J. Kerman; Adam Sears; T. P. Orlando; William D. Oliver

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William D. Oliver

Massachusetts Institute of Technology

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Simon Gustavsson

Solid State Physics Laboratory

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Fei Yan

Massachusetts Institute of Technology

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T. P. Orlando

Massachusetts Institute of Technology

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Adam Sears

Massachusetts Institute of Technology

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David Hover

Massachusetts Institute of Technology

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Jonilyn Yoder

Massachusetts Institute of Technology

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Theodore Gudmundsen

Massachusetts Institute of Technology

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Andrew J. Kerman

Massachusetts Institute of Technology

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