Absent thermal equilibration on fractional quantum Hall edges over macroscopic scale
Two-dimensional topological insulators, and in particular quantum Hall states, are characterized by an insulating bulk and a conducting edge. Fractional states may host both downstream (dictated by the magnetic field) and upstream propagating edge modes, which leads to complex transport behavior. He...
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Abstract | Two-dimensional topological insulators, and in particular quantum Hall states, are characterized by an insulating bulk and a conducting edge. Fractional states may host both downstream (dictated by the magnetic field) and upstream propagating edge modes, which leads to complex transport behavior. Here, we combine two measurement techniques, local noise thermometry and thermal conductance, to study thermal properties of states with counter-propagating edge modes. We find that, while charge equilibration between counter-propagating edge modes is very fast, the equilibration of heat is extremely inefficient, leading to an almost ballistic heat transport over macroscopic distances. Moreover, we observe an emergent quantization of the heat conductance associated with a strong interaction fixed point of the edge modes. This new understanding of the thermal equilibration on edges with counter-propagating modes is a natural route towards extracting the topological order of the exotic 5/2 state. |
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AbstractList | Nature Communications 13, 376 (2022) Two-dimensional topological insulators, and in particular quantum Hall
states, are characterized by an insulating bulk and a conducting edge.
Fractional states may host both downstream (dictated by the magnetic field) and
upstream propagating edge modes, which leads to complex transport behavior.
Here, we combine two measurement techniques, local noise thermometry and
thermal conductance, to study thermal properties of states with
counter-propagating edge modes. We find that, while charge equilibration
between counter-propagating edge modes is very fast, the equilibration of heat
is extremely inefficient, leading to an almost ballistic heat transport over
macroscopic distances. Moreover, we observe an emergent quantization of the
heat conductance associated with a strong interaction fixed point of the edge
modes. This new understanding of the thermal equilibration on edges with
counter-propagating modes is a natural route towards extracting the topological
order of the exotic 5/2 state. Two-dimensional topological insulators, and in particular quantum Hall states, are characterized by an insulating bulk and a conducting edge. Fractional states may host both downstream (dictated by the magnetic field) and upstream propagating edge modes, which leads to complex transport behavior. Here, we combine two measurement techniques, local noise thermometry and thermal conductance, to study thermal properties of states with counter-propagating edge modes. We find that, while charge equilibration between counter-propagating edge modes is very fast, the equilibration of heat is extremely inefficient, leading to an almost ballistic heat transport over macroscopic distances. Moreover, we observe an emergent quantization of the heat conductance associated with a strong interaction fixed point of the edge modes. This new understanding of the thermal equilibration on edges with counter-propagating modes is a natural route towards extracting the topological order of the exotic 5/2 state. |
Author | Spånslätt, Christian Umansky, Vladimir Park, Jinhong Ron Aharon Melcer Dutta, Bivas Mirlin, Alexander D |
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BackLink | https://doi.org/10.48550/arXiv.2106.12486$$DView paper in arXiv https://doi.org/10.1038/s41467-022-28009-0$$DView published paper (Access to full text may be restricted) |
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Snippet | Two-dimensional topological insulators, and in particular quantum Hall states, are characterized by an insulating bulk and a conducting edge. Fractional states... Nature Communications 13, 376 (2022) Two-dimensional topological insulators, and in particular quantum Hall states, are characterized by an insulating bulk and... |
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SubjectTerms | Balancing Measurement techniques Noise measurement Physics - Mesoscale and Nanoscale Physics Propagation modes Strong interactions (field theory) Thermal conductivity Thermodynamic properties Topological insulators Transport phenomena |
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Title | Absent thermal equilibration on fractional quantum Hall edges over macroscopic scale |
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