English

Photocurrent Nanoscopy of Quantum Hall Bulk

Mesoscale and Nanoscale Physics 2025-04-15 v1

Abstract

Understanding nanoscale electronic and thermal transport of two-dimensional (2D) electron systems in the quantum Hall regime, particularly in the bulk insulating state, poses considerable challenges. One of the primary difficulties arises from the presence of chiral edge channels, whose transport behavior obscures the investigation of the insulating bulk. Using near-field (NF) optical and photocurrent (PC) nanoscopy, we probe real-space variations of the optical and thermal dynamics of graphene in the quantum Hall regime without relying on complex sample or electrode geometries. Near the charge neutrality point (CNP), we detect strong optical and photothermal signals from resonant inter-Landau level (LL) magnetoexciton excitations between the 0th and +-1st LLs, which gradually weaken with increasing doping due to Pauli blocking. Interestingly, at higher doping levels and full integer LL fillings, photothermal signals reappear across the entire sample over a ~10-micrometer scale, indicating unexpectedly long cooling lengths and nonlocal photothermal heating through the insulating bulk. This observation suggests thermal conductivity persists for the localized states even as electronic transport is suppressed - a clear violation of the Wiedemann-Franz (WF) law. Our experiments provide novel insights into nanoscale thermal and electronic transport in incompressible 2D gases, highlighting the roles of magnetoexcitons and chiral edge states in the thermo-optoelectric dynamics of Dirac quantum Hall state.

Keywords

Cite

@article{arxiv.2504.09442,
  title  = {Photocurrent Nanoscopy of Quantum Hall Bulk},
  author = {Ran Jing and Boyi Zhou and Jiacheng Sun and Shoujing Chen and Wenjun Zheng and Zijian Zhou and Heng Wang and Lukas Wehmeier and Bing Cheng and Michael Dapolito and Yinan Dong and Zengyi Du and G. L. Carr and Xu Du and D. N. Basov and Qiang Li and Mengkun Liu},
  journal= {arXiv preprint arXiv:2504.09442},
  year   = {2025}
}

Comments

18 pages, 4 figures