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Phonon thermal transport in strained monolayer graphene: Role of four-phonon and normal scattering

作者:Cheng Xu, Kaile Chen, Xin Jin, Dengfeng Li, Xiaolong Yang · 发表于:Physical review. B./Physical review. B · 年份:2025 · DOI:10.1103/q8xg-qn4g · 被引用次数:6 · 研究领域:Thermal properties of materials、Graphene research and applications、Thermography and Photoacoustic Techniques

We present a first-principles investigation of phonon thermal transport in monolayer graphene under biaxial tensile strain at room temperature. Surprisingly, when four-phonon (4ph) scattering is included, we observe a remarkable strain-induced enhancement of lattice thermal conductivity ($\ensuremath{\kappa}$)---nearly doubling at 5% strain---in stark contrast to the strain-insensitive $\ensuremath{\kappa}$ predicted by three-phonon (3ph) theory. This unexpected enhancement arises from the strain-induced suppression of both 3ph and 4ph scattering, primarily due to the linearization of the flexural acoustic (ZA) phonon branch, which severely restricts the phase space for ZA-involved scattering processes. Our calculations further show that the role of 4ph scattering in reducing $\ensuremath{\kappa}$ diminishes substantially with strain. Notably, the ZA phonons are found to persist as the primary heat carriers even under large strain, though their relative contribution to $\ensuremath{\kappa}$ decreases considerably. Additionally, we unveil that tensile strain markedly weakens nonresistive normal processes, thereby suppressing nondiffusive phonon transport. These findings provide fundamental insights into the strain-engineered phonon-phonon interactions and thermal transport in graphene.