TY - JOUR
T1 - Imaging work and dissipation in the quantum Hall state in graphene
AU - Marguerite, A.
AU - Birkbeck, J.
AU - Aharon-Steinberg, A.
AU - Halbertal, D.
AU - Bagani, K.
AU - Marcus, I.
AU - Myasoedov, Y.
AU - Geim, A. K.
AU - Perello, D. J.
AU - Zeldov, E.
N1 - We thank G. Zhang, I. V. Gornyi, A. D. Mirlin and Y. Gefen for discussions and theoretical analysis, M. E. Huber for SOT readout setup, and M. L. Rappaport for technical assistance. This work was supported by the European Research Council (ERC) under the European Union’s Horizon 2020 research and innovation program (grant number 785971), by the Israel Science Foundation (ISF; grant number 921/18), by the Minerva Foundation with funding from the Federal German Ministry of Education and Research, by the German-Israeli Foundation (GIF), by the Weizmann–UK Making Connections Program, and by Manchester Graphene-NOWNANO CDT EP/L-1548X. E.Z. acknowledges the support of the Leona M. and Harry B. Helmsley Charitable Trust grant 2018PG-ISL006. Contributions: A.M., A.A.-S., D.H., I.M. and E.Z. conceived the experiments. J.B. and D.J.P. conceived and fabricated the samples. A.M. and A.A.-S. carried out the measurements and data analysis. D.H. and I.M. performed preliminary studies. K.B. and Y.M. fabricated the SOTs and the tuning fork feedback. A.M., E.Z., A.A.-S., D.J.P., J.B. and A.K.G. wrote the manuscript. All authors participated in discussions and writing of the manuscript.
PY - 2019/11/28
Y1 - 2019/11/28
N2 - Topology is a powerful recent concept asserting that quantum states could be globally protected against local perturbations(1,2). Dissipationless topologically protected states are therefore of major fundamental interest as well as of practical importance in metrology and quantum information technology. Although topological protection can be robust theoretically, in realistic devices it is often susceptible to various dissipative mechanisms, which are difficult to study directly because of their microscopic origins. Here we use scanning nanothermometry(3) to visualize and investigate the microscopic mechanisms that undermine dissipationless transport in the quantum Hall state in graphene. Simultaneous nanoscale thermal and scanning gate microscopy shows that the dissipation is governed by crosstalk between counterpropagating pairs of downstream and upstream channels that appear at graphene boundaries as a result of edge reconstruction. Instead of local Joule heating, however, the dissipation mechanism comprises two distinct and spatially separated processes. The work-generating process that we image directly, which involves elastic tunnelling of charge carriers between the quantum channels, determines the transport properties but does not generate local heat. By contrast, the heat and entropy generation process-which we visualize independently-occurs nonlocally upon resonant inelastic scattering from single atomic defects at graphene edges, and does not affect transport. Our findings provide an insight into the mechanisms that conceal the true topological protection, and suggest routes towards engineering more robust quantum states for device applications.
AB - Topology is a powerful recent concept asserting that quantum states could be globally protected against local perturbations(1,2). Dissipationless topologically protected states are therefore of major fundamental interest as well as of practical importance in metrology and quantum information technology. Although topological protection can be robust theoretically, in realistic devices it is often susceptible to various dissipative mechanisms, which are difficult to study directly because of their microscopic origins. Here we use scanning nanothermometry(3) to visualize and investigate the microscopic mechanisms that undermine dissipationless transport in the quantum Hall state in graphene. Simultaneous nanoscale thermal and scanning gate microscopy shows that the dissipation is governed by crosstalk between counterpropagating pairs of downstream and upstream channels that appear at graphene boundaries as a result of edge reconstruction. Instead of local Joule heating, however, the dissipation mechanism comprises two distinct and spatially separated processes. The work-generating process that we image directly, which involves elastic tunnelling of charge carriers between the quantum channels, determines the transport properties but does not generate local heat. By contrast, the heat and entropy generation process-which we visualize independently-occurs nonlocally upon resonant inelastic scattering from single atomic defects at graphene edges, and does not affect transport. Our findings provide an insight into the mechanisms that conceal the true topological protection, and suggest routes towards engineering more robust quantum states for device applications.
UR - https://www.scopus.com/pages/publications/85074406582
U2 - 10.1038/s41586-019-1704-3
DO - 10.1038/s41586-019-1704-3
M3 - Article
SN - 0028-0836
VL - 575
SP - 628
EP - 633
JO - Nature
JF - Nature
IS - 7784
ER -