Simultaneous nanoscale imaging of local conductivity and chemical potential in a quantum Hall isospin ferromagnet
Abstract
Abstract Quantum Hall isospin ferromagnetism in multilayer graphene offers a versatile playground for exploring flat band correlated physics, driven by the intricate coupling of spin, valley, orbital, and layer degrees of freedom. However, a nanoscale probe capable of simultaneously mapping local conductivity and chemical potential in these exotic phases has yet to be realized. Here, we introduce scanning conductivity and chemical potential microscopy (SCCM), a technique integrating scanning microwave impedance microscopy and Kelvin probe force microscopy. We demonstrate SCCM by probing the quantum Hall states and many-body Landau level energy spectrum in bilayer graphene. Applied to marginally twisted double bilayer graphene, SCCM then reveals a cascade of quantum Hall isospin ferromagnetic states with unexpected re-emergence behaviors. Significantly, experimental many-body Landau level energy spectrum further uncovers the intricate connections of these complex phenomena to inter-subband Landau level crossings and Landau level single-particle wavefunctions. These insights enable the construction of a comprehensive quantum Hall phase diagram. Our results demonstrate SCCM’s capability in decoding complex quantum phenomena, establishing it as a versatile nanoscale probe for electron correlation and topology.
Article Details
Authors (10)
Jiawei Hu
Center for Low-Carbon Conversion Science and Engineering; State Key Laboratory of Low Carbon Catalysis and Carbon Dioxide Utilization, Shanghai Advanced Research Institute
Shiyu Zhu
Bohao Li
Yunhao Wang
Department of Chemistry
Shuigang Xu
Zhihai Cheng
Beijing Key Laboratory of Optoelectronic Functional Materials & Micro-Nano Devices, School of Physics
Chengmin Shen
Andre K. Geim
Fengcheng Wu
Hong-Jun Gao
Beijing National Center for Condensed Matter Physics and Institute of Physics