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Atomic Mass Engineering of Ultra-High Thermal Conductivity in Large Bandgap Materials: A Case Study with Boron Arsenide

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【作者】 王婷婷李晓哲居卓张刚马登科李武张力发

【Author】 Tingting Wang;Xiaozhe Li;Zhuo Ju;Gang Zhang;Dengke Ma;Wu Li;Lifa Zhang;Phonon Engineering Research Center of Jiangsu Province,Ministry of Education Key Laboratory of NSLSCS,Center for Quantum Transport and Thermal Energy Science,Institute of Physics Frontiers and Interdisciplinary Sciences,School of Physics and Technology,Nanjing Normal University;Yangtze Delta Region Academy of Beijing Institute of Technology;Eastern Institute for Advanced Study,Eastern Institute of Technology;Institute for Advanced Study,Shenzhen University;

【通讯作者】 马登科;李武;张力发;

【机构】 Phonon Engineering Research Center of Jiangsu Province,Ministry of Education Key Laboratory of NSLSCS,Center for Quantum Transport and Thermal Energy Science,Institute of Physics Frontiers and Interdisciplinary Sciences,School of Physics and Technology,Nanjing Normal UniversityYangtze Delta Region Academy of Beijing Institute of TechnologyEastern Institute for Advanced Study,Eastern Institute of TechnologyInstitute for Advanced Study,Shenzhen University

【摘要】 Heat dissipation highly relies on the thermal conductivity(κ) of materials. Materials with large bandgaps and signifcant atomic mass ratios, such as BAs, SiC, and θ-TaN, have attracted considerable attention due to their potential for achieving ultra-high κ, with BAs serving as a particularly representative example due to its unique combination of large bandgap and high thermal conductivity. In this paper, the efects of atomic mass modifcation on phonon bandgap and κ are systematically investigated using a BAs model, accounting for both three-and four-phonon scattering processes. A 20% increase in κ can be obtained by substituting B, achieved through widening the phonon bandgap, which suppresses phonon scattering. Notably, the AAOO four-phonon scattering channel is more suppressed than the AAO three-phonon channel, leading to an increased phonon lifetime(τ). For As, κ can also be enhanced by 5% when replaced by lighter atoms, such as 69As, primarily due to the increased phonon group velocity(υ). We systematically clarify how atomic-mass-induced bandgap variations afect τ, υ, and therefore κ in wide-bandgap systems. Our work provides a specifc scheme for further improving the ultra-high κ of materials with large bandgaps, which possesses great guiding signifcance.

【Abstract】 Heat dissipation highly relies on the thermal conductivity(κ) of materials. Materials with large bandgaps and signifcant atomic mass ratios, such as BAs, SiC, and θ-TaN, have attracted considerable attention due to their potential for achieving ultra-high κ, with BAs serving as a particularly representative example due to its unique combination of large bandgap and high thermal conductivity. In this paper, the efects of atomic mass modifcation on phonon bandgap and κ are systematically investigated using a BAs model, accounting for both three-and four-phonon scattering processes. A 20% increase in κ can be obtained by substituting B, achieved through widening the phonon bandgap, which suppresses phonon scattering. Notably, the AAOO four-phonon scattering channel is more suppressed than the AAO three-phonon channel, leading to an increased phonon lifetime(τ). For As, κ can also be enhanced by 5% when replaced by lighter atoms, such as 69As, primarily due to the increased phonon group velocity(υ). We systematically clarify how atomic-mass-induced bandgap variations afect τ, υ, and therefore κ in wide-bandgap systems. Our work provides a specifc scheme for further improving the ultra-high κ of materials with large bandgaps, which possesses great guiding signifcance.

【基金】 supported by the National Key Research and Development Program of China (Grant No. 2023YFA1407001);the Department of Science and Technology of Jiangsu Province (Grant No. BK20220032);support from the Guang Dong Basic and Applied Basic Research Foundation (Grant No. 2023A1515010365);support from the Postgraduate Research and Practice Innovation Program of Jiangsu Province under Grant No. KYCX25_1934
  • 【文献出处】 Chinese Physics Letters ,中国物理快报(英文版) , 编辑部邮箱 ,2025年07期
  • 【分类号】O562
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