TY - JOUR
T1 - Hierarchical Defect Engineering for Spectral Phonon Control in Monolayer MoS2
AU - Jang, Mingyu
AU - Yeo, Jeongin
AU - Yang, Seonguk
AU - Park, Beomsung
AU - Jeong, Hongsik
AU - Lee, Jae Ung
AU - Kim, Sungkyu
AU - Yang, Lina
AU - Suh, Joonki
N1 - Publisher Copyright:
© 2026 American Chemical Society.
PY - 2026/8/18
Y1 - 2026/8/18
N2 - Two-dimensional (2D) transition-metal dichalcogenides are attractive for nanoelectronics and energy harvesting, where thermal transport critically impacts device reliability, performance, and energy efficiency. Here, we establish hierarchical defect engineering in monolayer MoS2 by combining growth-programmed mesoscale grain boundaries with He+-irradiation-induced atomic vacancies and quantify how these multiscale defects govern the in-plane thermal conductivity (κ) and its temperature dependence. By integrating opto-thermal Raman thermometry and variance-reduced Monte Carlo simulations, we decouple the distinct, temperature-dependent roles of these multiscale defects in phonon scattering. We reveal that while grain boundaries impose an approximately temperature-insensitive suppression by limiting long-mean-free-path phonons, vacancies specifically target high-frequency phonons, thereby dominating scattering at elevated temperatures. This complementary behavior enables a synergetic 85% suppression of κ at an ambient temperature (Ta) of 50 K, from 42.24 to 6.25 W m-1 K-1, confirming broadband phonon blocking. At Ta = 300 K, vacancy-induced scattering overrides grain boundary effects, causing the κ of highly defective single- and polycrystalline samples to converge. Our work provides fundamental design rules for tuning phonon transport in 2D materials and for deploying them in thermal management and thermoelectric applications.
AB - Two-dimensional (2D) transition-metal dichalcogenides are attractive for nanoelectronics and energy harvesting, where thermal transport critically impacts device reliability, performance, and energy efficiency. Here, we establish hierarchical defect engineering in monolayer MoS2 by combining growth-programmed mesoscale grain boundaries with He+-irradiation-induced atomic vacancies and quantify how these multiscale defects govern the in-plane thermal conductivity (κ) and its temperature dependence. By integrating opto-thermal Raman thermometry and variance-reduced Monte Carlo simulations, we decouple the distinct, temperature-dependent roles of these multiscale defects in phonon scattering. We reveal that while grain boundaries impose an approximately temperature-insensitive suppression by limiting long-mean-free-path phonons, vacancies specifically target high-frequency phonons, thereby dominating scattering at elevated temperatures. This complementary behavior enables a synergetic 85% suppression of κ at an ambient temperature (Ta) of 50 K, from 42.24 to 6.25 W m-1 K-1, confirming broadband phonon blocking. At Ta = 300 K, vacancy-induced scattering overrides grain boundary effects, causing the κ of highly defective single- and polycrystalline samples to converge. Our work provides fundamental design rules for tuning phonon transport in 2D materials and for deploying them in thermal management and thermoelectric applications.
KW - defect engineering
KW - hierarchical phonon scattering
KW - multiscale defects
KW - Raman thermometry
KW - thermal conductivity
KW - transition metal dichalcogenides
KW - two-dimensional materials
UR - https://www.scopus.com/pages/publications/105047910842
U2 - 10.1021/acsnano.6c05633
DO - 10.1021/acsnano.6c05633
M3 - Article
C2 - 42611228
AN - SCOPUS:105047910842
SN - 1936-0851
VL - 20
SP - 22661
EP - 22673
JO - ACS Nano
JF - ACS Nano
IS - 32
ER -