TY - JOUR
T1 - Optical phonons on thermal conduction in advanced materials
AU - Wei, Bin
AU - Zhang, Xiaotian
AU - Li, Wang
AU - Li, Jiale
AU - Li, Yongheng
AU - Gao, Qilong
AU - Hong, Jiawang
AU - Nan, Ce Wen
AU - Lin, Yuan Hua
N1 - Publisher Copyright:
© 2025 Author(s).
PY - 2025/3/1
Y1 - 2025/3/1
N2 - The requirements for high performance, reliability, and longevity in electronic devices, such as power semiconductors and thermal sensors, make effective thermal management a formidable challenge. Thus, understanding lattice dynamics is crucial for regulating thermal conduction, as the intrinsic limit mainly depends on phonon dispersions. Conventionally, thermal conduction is regulated through heat-carrying acoustic phonon manipulation due to their high group velocities, which are widely utilized in materials such as thermal coatings and thermoelectrics. In recent years, with advancements in thermal transport, optical phonons have been of great interest for tuning thermal conduction, with a particular focus on those with special dispersive behaviors; however, the microscopic mechanisms are significantly different. This review aims to provide a comprehensive understanding of the effect of optical phonons, especially those with high weights on thermal conduction in advanced materials, as well as discuss the fundamental mechanisms, including (i) phonon bandwidth, (ii) phonon gap, (iii) avoided-crossing, (iv) phonon nesting/twinning, (v) optical-acoustic phonon bunching, and (vi) multiple optical phonons.
AB - The requirements for high performance, reliability, and longevity in electronic devices, such as power semiconductors and thermal sensors, make effective thermal management a formidable challenge. Thus, understanding lattice dynamics is crucial for regulating thermal conduction, as the intrinsic limit mainly depends on phonon dispersions. Conventionally, thermal conduction is regulated through heat-carrying acoustic phonon manipulation due to their high group velocities, which are widely utilized in materials such as thermal coatings and thermoelectrics. In recent years, with advancements in thermal transport, optical phonons have been of great interest for tuning thermal conduction, with a particular focus on those with special dispersive behaviors; however, the microscopic mechanisms are significantly different. This review aims to provide a comprehensive understanding of the effect of optical phonons, especially those with high weights on thermal conduction in advanced materials, as well as discuss the fundamental mechanisms, including (i) phonon bandwidth, (ii) phonon gap, (iii) avoided-crossing, (iv) phonon nesting/twinning, (v) optical-acoustic phonon bunching, and (vi) multiple optical phonons.
UR - http://www.scopus.com/inward/record.url?scp=85219500803&partnerID=8YFLogxK
U2 - 10.1063/5.0239197
DO - 10.1063/5.0239197
M3 - Review article
AN - SCOPUS:85219500803
SN - 1931-9401
VL - 12
JO - Applied Physics Reviews
JF - Applied Physics Reviews
IS - 1
M1 - 011324
ER -