Literature DB >> 27786173

Nanoscale thermal imaging of dissipation in quantum systems.

D Halbertal1, J Cuppens1,2, M Ben Shalom3,4, L Embon1, N Shadmi5, Y Anahory1, H R Naren1, J Sarkar1, A Uri1, Y Ronen1, Y Myasoedov1, L S Levitov6, E Joselevich5, A K Geim3,4, E Zeldov1.   

Abstract

Energy dissipation is a fundamental process governing the dynamics of physical, chemical and biological systems. It is also one of the main characteristics that distinguish quantum from classical phenomena. In particular, in condensed matter physics, scattering mechanisms, loss of quantum information or breakdown of topological protection are deeply rooted in the intricate details of how and where the dissipation occurs. Yet the microscopic behaviour of a system is usually not formulated in terms of dissipation because energy dissipation is not a readily measurable quantity on the micrometre scale. Although nanoscale thermometry has gained much recent interest, existing thermal imaging methods are not sensitive enough for the study of quantum systems and are also unsuitable for the low-temperature operation that is required. Here we report a nano-thermometer based on a superconducting quantum interference device with a diameter of less than 50 nanometres that resides at the apex of a sharp pipette: it provides scanning cryogenic thermal sensing that is four orders of magnitude more sensitive than previous devices-below 1 μK Hz-1/2. This non-contact, non-invasive thermometry allows thermal imaging of very low intensity, nanoscale energy dissipation down to the fundamental Landauer limit of 40 femtowatts for continuous readout of a single qubit at one gigahertz at 4.2 kelvin. These advances enable the observation of changes in dissipation due to single-electron charging of individual quantum dots in carbon nanotubes. They also reveal a dissipation mechanism attributable to resonant localized states in graphene encapsulated within hexagonal boron nitride, opening the door to direct thermal imaging of nanoscale dissipation processes in quantum matter.

Entities:  

Year:  2016        PMID: 27786173     DOI: 10.1038/nature19843

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  24 in total

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  9 in total

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Authors:  A Uri; S Grover; Y Cao; J A Crosse; K Bagani; D Rodan-Legrain; Y Myasoedov; K Watanabe; T Taniguchi; P Moon; M Koshino; P Jarillo-Herrero; E Zeldov
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Journal:  Nature       Date:  2019-10-21       Impact factor: 49.962

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Authors:  Jean-Philippe Tetienne; Nikolai Dontschuk; David A Broadway; Alastair Stacey; David A Simpson; Lloyd C L Hollenberg
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Authors:  Jhih-Shih You; Jian-Ming Tang; Wen-Min Huang
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6.  Ratiometric upconversion nanothermometry with dual emission at the same wavelength decoded via a time-resolved technique.

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Authors:  A Aharon-Steinberg; A Marguerite; D J Perello; K Bagani; T Holder; Y Myasoedov; L S Levitov; A K Geim; E Zeldov
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9.  Quasiadiabatic electron transport in room temperature nanoelectronic devices induced by hot-phonon bottleneck.

Authors:  Qianchun Weng; Le Yang; Zhenghua An; Pingping Chen; Alexander Tzalenchuk; Wei Lu; Susumu Komiyama
Journal:  Nat Commun       Date:  2021-08-06       Impact factor: 14.919

  9 in total

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