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Effect of interactions on quantum-limited detectors

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Effect of interactions on quantum-limited detectors. / Skorobagatko, Gleb; Bruch, Anton; Kusminskiy, Silvia Viola et al.
In: Physical review B, Vol. 95, 205402, 01.05.2017.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Skorobagatko, G, Bruch, A, Kusminskiy, SV & Romito, A 2017, 'Effect of interactions on quantum-limited detectors', Physical review B, vol. 95, 205402. https://doi.org/10.1103/PhysRevB.95.205402

APA

Skorobagatko, G., Bruch, A., Kusminskiy, S. V., & Romito, A. (2017). Effect of interactions on quantum-limited detectors. Physical review B, 95, Article 205402. https://doi.org/10.1103/PhysRevB.95.205402

Vancouver

Skorobagatko G, Bruch A, Kusminskiy SV, Romito A. Effect of interactions on quantum-limited detectors. Physical review B. 2017 May 1;95:205402. doi: 10.1103/PhysRevB.95.205402

Author

Skorobagatko, Gleb ; Bruch, Anton ; Kusminskiy, Silvia Viola et al. / Effect of interactions on quantum-limited detectors. In: Physical review B. 2017 ; Vol. 95.

Bibtex

@article{4a9d831ff16c452ab82045a258aac92a,
title = "Effect of interactions on quantum-limited detectors",
abstract = "We consider the effect of electron-electron interactions on a voltage biased quantum point contact in the tunneling regime used as a detector of a nearby qubit. We model the leads of the quantum point contact as Luttinger liquids, incorporate the effects of finite temperature and analyze the detection-induced decoherence rate and the detector efficiency, $Q$. We find that interactions generically reduce the induced decoherence along with the detector's efficiency, and strongly affect the relative strength of the decoherence induced by tunneling and that induced by interactions with the local density. With increasing interaction strength, the regime of quantum limited detection ($Q=1$) is shifted to increasingly lower temperatures or higher bias voltages respectively. For small to moderate interaction strengths, $Q$ is a monotonously decreasing function of temperature as in the non-interacting case. Surprisingly, for sufficiently strong interactions we identify an intermediate temperature regime where the efficiency of the detector increases with rising temperature.",
keywords = "cond-mat.mes-hall, cond-mat.str-el, quant-ph",
author = "Gleb Skorobagatko and Anton Bruch and Kusminskiy, {Silvia Viola} and Alessandro Romito",
note = "{\textcopyright} 2017 American Physical Society",
year = "2017",
month = may,
day = "1",
doi = "10.1103/PhysRevB.95.205402",
language = "English",
volume = "95",
journal = "Physical review B",
issn = "2469-9950",
publisher = "AMER PHYSICAL SOC",

}

RIS

TY - JOUR

T1 - Effect of interactions on quantum-limited detectors

AU - Skorobagatko, Gleb

AU - Bruch, Anton

AU - Kusminskiy, Silvia Viola

AU - Romito, Alessandro

N1 - © 2017 American Physical Society

PY - 2017/5/1

Y1 - 2017/5/1

N2 - We consider the effect of electron-electron interactions on a voltage biased quantum point contact in the tunneling regime used as a detector of a nearby qubit. We model the leads of the quantum point contact as Luttinger liquids, incorporate the effects of finite temperature and analyze the detection-induced decoherence rate and the detector efficiency, $Q$. We find that interactions generically reduce the induced decoherence along with the detector's efficiency, and strongly affect the relative strength of the decoherence induced by tunneling and that induced by interactions with the local density. With increasing interaction strength, the regime of quantum limited detection ($Q=1$) is shifted to increasingly lower temperatures or higher bias voltages respectively. For small to moderate interaction strengths, $Q$ is a monotonously decreasing function of temperature as in the non-interacting case. Surprisingly, for sufficiently strong interactions we identify an intermediate temperature regime where the efficiency of the detector increases with rising temperature.

AB - We consider the effect of electron-electron interactions on a voltage biased quantum point contact in the tunneling regime used as a detector of a nearby qubit. We model the leads of the quantum point contact as Luttinger liquids, incorporate the effects of finite temperature and analyze the detection-induced decoherence rate and the detector efficiency, $Q$. We find that interactions generically reduce the induced decoherence along with the detector's efficiency, and strongly affect the relative strength of the decoherence induced by tunneling and that induced by interactions with the local density. With increasing interaction strength, the regime of quantum limited detection ($Q=1$) is shifted to increasingly lower temperatures or higher bias voltages respectively. For small to moderate interaction strengths, $Q$ is a monotonously decreasing function of temperature as in the non-interacting case. Surprisingly, for sufficiently strong interactions we identify an intermediate temperature regime where the efficiency of the detector increases with rising temperature.

KW - cond-mat.mes-hall

KW - cond-mat.str-el

KW - quant-ph

U2 - 10.1103/PhysRevB.95.205402

DO - 10.1103/PhysRevB.95.205402

M3 - Journal article

VL - 95

JO - Physical review B

JF - Physical review B

SN - 2469-9950

M1 - 205402

ER -