钻石
热导率
声子
材料科学
掺杂剂
热的
兴奋剂
凝聚态物理
热传导
工作(物理)
电导率
化学物理
领域(数学)
金刚石材料性能
宽禁带半导体
纳米技术
光电子学
大规模运输
作者
Ye Shen,Xuelei Sui,Ziyu Hu,X.H. Shao
摘要
Achieving reliable n-type doping in diamond is a long-standing challenge for high-power electronics. In this work, we systematically investigate the electronic structure and thermal transport properties of B and B–X (X = N, P, O, S, F, Cl) co-doped diamond using first-principles calculations and a high-precision machine-learning potential (MLP) trained via DeepMD-kit. Our results identify B–S co-doping as a superior n-type strategy, exhibiting a reduced formation energy and n-type conductivity. Crucially, by overcoming the accuracy limitations of empirical potentials in describing acoustic phonon velocities, our MLP rigorously quantifies the thermal conductivity of the co-doped system. Although the heavy mass and strain field of sulfur dopants introduce additional phonon scattering, B-S co-doped diamond retains a substantial thermal conductivity. The results reveal the microscopic interplay between dopant-induced electronic activation and phonon scattering, validating B-S co-doping as a viable route for thermally robust n-type diamond electronics. This work provides a reference for the design of n-type diamond with good thermal conductivity based on machine-learning potentials.
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