TY - JOUR
T1 - High-Performance Thermal Interface Silicone Elastomer Based on Liquid Metal-Encapsulated Aluminum Nitride Filler and Mechanical Training Strategy
AU - Fu, Xuewei
AU - Wang, Haotian
AU - Zhang, Qiying
AU - Han, Yue
AU - Li, Sai
AU - Zhang, Liqun
AU - Chen, Ruisi
AU - Zhang, Weifeng
AU - Liu, Jun
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/7/22
Y1 - 2026/7/22
N2 - Aluminum nitride (AlN) is highly regarded for its high thermal conductivity and electrical insulation, making it a promising filler for thermal interface materials (TIMs). However, its practical application is limited by the hydrolysis of its crystal structure in humid environments, which causes performance degradation. Existing surface modification methods also struggle to simultaneously achieve high processing efficiency and enhanced material performance. To address these issues, we developed a novel surface modification strategy involving the grafting of sulfhydryl groups onto AlN particles, followed by encapsulation with a liquid metal (LM) layer. The resulting LM@AlN fillers were then incorporated into a polydimethylsiloxane (PDMS) matrix and cured to form thermally conductive composites. The LM@AlN/PDMS composite exhibits a through-plane thermal conductivity of 1.83 W·m–1·K–1 and an in-plane thermal conductivity of 20.32 W·m–1·K–1, along with a tensile strength of 1.46 MPa and an elongation at break of 168.73%. It also demonstrates excellent stability in deionized water and under high-temperature, high-pressure conditions, with minimal changes in thermal conductivity (1.9% and 3.0%, respectively) and no leakage of liquid metal. This enhanced stability improves the practicality of liquid metal composites and broadens their potential for applications in wearable electronics and soft robotics.
AB - Aluminum nitride (AlN) is highly regarded for its high thermal conductivity and electrical insulation, making it a promising filler for thermal interface materials (TIMs). However, its practical application is limited by the hydrolysis of its crystal structure in humid environments, which causes performance degradation. Existing surface modification methods also struggle to simultaneously achieve high processing efficiency and enhanced material performance. To address these issues, we developed a novel surface modification strategy involving the grafting of sulfhydryl groups onto AlN particles, followed by encapsulation with a liquid metal (LM) layer. The resulting LM@AlN fillers were then incorporated into a polydimethylsiloxane (PDMS) matrix and cured to form thermally conductive composites. The LM@AlN/PDMS composite exhibits a through-plane thermal conductivity of 1.83 W·m–1·K–1 and an in-plane thermal conductivity of 20.32 W·m–1·K–1, along with a tensile strength of 1.46 MPa and an elongation at break of 168.73%. It also demonstrates excellent stability in deionized water and under high-temperature, high-pressure conditions, with minimal changes in thermal conductivity (1.9% and 3.0%, respectively) and no leakage of liquid metal. This enhanced stability improves the practicality of liquid metal composites and broadens their potential for applications in wearable electronics and soft robotics.
KW - aluminum nitride
KW - core−shell structure
KW - hydrolysis resistance modification
KW - liquid metal
KW - mechanical training
UR - https://www.scopus.com/pages/publications/105045590720
U2 - 10.1021/acsami.6c05057
DO - 10.1021/acsami.6c05057
M3 - 文章
C2 - 42429040
AN - SCOPUS:105045590720
SN - 1944-8244
VL - 18
SP - 39276
EP - 39288
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 28
ER -