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Ultraweak electron-phonon coupling strength in cubic boron arsenideunveiled by ultrafast dynamics

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Abstract

We report a time-resolved ultrafast quasiparticle dynamics investigation of c-BAs, which is a recently discovered highly thermally conducting material. The excited-state ultrafast relaxation channels dictated by the electron-phonon coupling (EPC), phonon-phonon scattering, and radiative electron-hole recombination have been unambiguously identified, along with their typical interaction times. Significantly, the EPC strength is obtained from the dynamics, with a value of ?T2= 0.008 (corresponding to ?2> = 1.18 ± 0.08 ps–2), demonstrating an unusually weak coupling between the electrons and phonons. As a comparison, an ultraweak EPC strength for graphene is also expected. We propose that preserving an ultrasmall EPC strength may be a prerequisite for exhibiting an ultrahigh thermal conductivity. Our investigation provides insight for searching and designing ultrahigh thermal conductivity materials. Notably, during our analysis we have generalized the fluence-dependence method for obtaining the EPC strength to room temperature, which can be applied to many other types of quantum materials in the future.

Publication: Z. Y. Tian, Q. Y. Zhang, Y. W. Xiao, G. A. Gamage, F. Tian, S. Yue, V. G. Hadjiev, J. M. Bao, Z. F. Ren, E. J. Liang*, and Jimin Zhao*, Ultraweak electron-phonon coupling strength in cubic boron arsenide unveiled by ultrafast dynamics, Physical Review B 105, 174306 (2022).

Presenters

  • Zhenyun Tian

    Institute of Physics, Chinese Academy Science

Authors

  • Zhenyun Tian

    Institute of Physics, Chinese Academy Science