Local thermodynamic DOS measurement and twist-angle mapping in graphene–hBN superlattices

N Namkyung Lee (Department of Physics and Astronomy, Seoul National University 1 , Seoul 08826,) H Hangyeol Park (Department of Physics and Astronomy, Seoul National University 1 , Seoul 08826,) S Seungwon Jung (Department of HY-KIST Bio-Convergence) B Baeksan Jang (Department of Physics and Astronomy, Seoul National University 1 , Seoul 08826,) S Seonyu Lee (Department of Physics and Astronomy, Seoul National University 1 , Seoul 08826,) J Joonho Jang (Department of Physics and Astronomy, Seoul National University 1 , Seoul 08826,)

Abstract

Moiré patterns arising from twisted van der Waals stacks fundamentally reshape their electronic properties, enabling band structure engineering that has driven rapidly growing interest in this field. In studying electronic properties, however, structural disorder present in real devices often leads to twist-angle inhomogeneity and obscures angle-dependent electronic effects when measured with bulk-averaged measurements. Probes that can access the local thermodynamic response of the electronic systems with high sensitivity would be highly valuable. Here, we adopt Kelvin probe force microscopy to locally investigate graphene–hBN superlattices. By additionally modulating the chemical potential of the system, we obtain the inverse compressibility with a high signal-to-noise ratio, enabling extraction of the local thermodynamic DOS. From this information, we determine the local twist angle along the device and find that twist-angle deviations are strongly correlated with bubble-induced strain features. Furthermore, by simultaneously tracking the offsets in the contact potential difference and in the net charge, we identify which interface within the heterostructure hosts the trapped bubbles. This capability to identify local electro-chemical environments provides a practical tool for strain-based studies and future device designs utilizing nanoscale engineering in moiré systems.

Article Details

Volume / Issue Vol. 128, Issue 1
Published January 05, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (6)

N

Namkyung Lee

Department of Physics and Astronomy, Seoul National University 1 , Seoul 08826,

H

Hangyeol Park

Department of Physics and Astronomy, Seoul National University 1 , Seoul 08826,

S

Seungwon Jung

Department of HY-KIST Bio-Convergence

B

Baeksan Jang

Department of Physics and Astronomy, Seoul National University 1 , Seoul 08826,

S

Seonyu Lee

Department of Physics and Astronomy, Seoul National University 1 , Seoul 08826,

J

Joonho Jang

Department of Physics and Astronomy, Seoul National University 1 , Seoul 08826,