Combined modulation of electrical and thermal transport properties in diamond (100) surfaces via reconstruction and passivation

L Linan Ma (Department of Physics & Hunan Institute of Advanced Sensing and Information Technology, Xiangtan University 1 , Xiangtan 411105,) Z Zhendong Li X Xiaoxia Wang (Key Laboratory for Micro-Nano Physics and Technology of Hunan Province, State Key Laboratory of Chemo/Biosensing and Chemometriscs and College of Materials Science and Engineering) X Xiangze Peng (College of Physics and Electronics Engineering, Hengyang Normal University 2 , Hengyang 421002,) Y Yongsheng Yao (College of Physics and Electronics Engineering, Hengyang Normal University 2 , Hengyang 421002,) T Tao Ouyang J Juexian Cao X Xiaolin Wei

Abstract

The intrinsic metallicity of diamond (100) surfaces, arising from unsaturated dangling bonds, remains a critical bottleneck for their integration into high-performance electronic devices. Here, we conduct a systematic first-principles investigation into the modulation of electronic and thermal properties via surface reconstruction and chemical passivation, complemented by homogeneous nonequilibrium molecular dynamics simulations. Our results demonstrate that surface reconstruction via dangling-bond saturation drives a transition from metallic to semiconducting characteristics, with the 2 × 1 reconstruction exhibiting the lowest surface energy (0.294 eV/Å2) and optimal stability. Furthermore, the introduction of functional groups (–F, –H, –O, –OH, and –NH2) enables precise modulation of the band structure and work function of the diamond (100) surface. Among the investigated functional groups, the H-terminated surface stands out as the optimal configuration, achieving a high acoustic-phonon-limited hole mobility (∼2.09 × 104 cm2 V−1 s−1) while maintaining a remarkable thermal conductivity of 726.2 W m−1 K−1. Our findings provide critical theoretical guidance for the development of high-performance diamond-based power electronics and thermal management systems.

Article Details

Volume / Issue Vol. 128, Issue 26
Published June 29, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (8)

L

Linan Ma

Department of Physics & Hunan Institute of Advanced Sensing and Information Technology, Xiangtan University 1 , Xiangtan 411105,

Z

Zhendong Li

X

Xiaoxia Wang

Key Laboratory for Micro-Nano Physics and Technology of Hunan Province, State Key Laboratory of Chemo/Biosensing and Chemometriscs and College of Materials Science and Engineering

X

Xiangze Peng

College of Physics and Electronics Engineering, Hengyang Normal University 2 , Hengyang 421002,

Y

Yongsheng Yao

College of Physics and Electronics Engineering, Hengyang Normal University 2 , Hengyang 421002,

T

Tao Ouyang

J

Juexian Cao

X

Xiaolin Wei