TY - JOUR
T1 - Surface functionalization tuned optical and thermal properties of Ti3C2 MXene for enhanced photothermal conversion
AU - Tang, Kan
AU - Liu, Shengxian
AU - Huang, Yongda
AU - Zhou, Jian
AU - Sun, Zhimei
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/11/1
Y1 - 2025/11/1
N2 - Ti3C2T2 MXenes (where T represents bare atoms, F atoms, OH groups or O atoms) have shown significant potential for photothermal conversion applications. However, the effects of surface terminations on the thermal and optical properties remains not fully understood. In this study, we have specifically examined the impact of electron-phonon scattering and intra-band transitions on the thermal and optical properties of Ti3C2T2 MXenes. The ab initio calculations reveal that the introduction of F and OH groups nearly make the thermal conductivity triple, primarily due to enhanced electronic thermal conductivity resulting from changes in the electronic structure. The introduction of O atoms also enhances thermal conductivity by up to double. Furthermore, Ti3C2 exhibits notable sunlight absorptivity of up to 15.65 %, which is caused by the dense packed electronic states near the Fermi level, and Ti3C2F2 shows excellent near-infrared light absorption of up to 19.36 %. These results suggest that surface functionalization can significantly improve the specific photothermal performance of Ti3C2 MXenes. However, Ti3C2O2 exhibits significantly reduced light absorption, so the introduction of O atoms should be minimized in photothermal applications. This work provides valuable insights into the mechanism that tailored surface functionalization can optimize the photothermal properties of Ti3C2 MXenes.
AB - Ti3C2T2 MXenes (where T represents bare atoms, F atoms, OH groups or O atoms) have shown significant potential for photothermal conversion applications. However, the effects of surface terminations on the thermal and optical properties remains not fully understood. In this study, we have specifically examined the impact of electron-phonon scattering and intra-band transitions on the thermal and optical properties of Ti3C2T2 MXenes. The ab initio calculations reveal that the introduction of F and OH groups nearly make the thermal conductivity triple, primarily due to enhanced electronic thermal conductivity resulting from changes in the electronic structure. The introduction of O atoms also enhances thermal conductivity by up to double. Furthermore, Ti3C2 exhibits notable sunlight absorptivity of up to 15.65 %, which is caused by the dense packed electronic states near the Fermi level, and Ti3C2F2 shows excellent near-infrared light absorption of up to 19.36 %. These results suggest that surface functionalization can significantly improve the specific photothermal performance of Ti3C2 MXenes. However, Ti3C2O2 exhibits significantly reduced light absorption, so the introduction of O atoms should be minimized in photothermal applications. This work provides valuable insights into the mechanism that tailored surface functionalization can optimize the photothermal properties of Ti3C2 MXenes.
KW - Ab initio calculations
KW - Electron-phonon scattering
KW - Functional atoms or groups
KW - Intra-band absorption
KW - Photothermal
KW - TiC MXene
UR - https://www.scopus.com/pages/publications/105020394364
U2 - 10.1016/j.surfin.2025.107866
DO - 10.1016/j.surfin.2025.107866
M3 - 文章
AN - SCOPUS:105020394364
SN - 2468-0230
VL - 76
JO - Surfaces and Interfaces
JF - Surfaces and Interfaces
M1 - 107866
ER -