Xu Bin, Hu Shiqian, Hung Shih-Wei, Shao Cheng, Chandra Harsh, Chen Fu-Rong, Kodama Takashi, Shiomi Junichiro
Department of Mechanical Engineering, The University of Tokyo, Tokyo, Japan.
Department of Materials Science and Engineering, City University of Hong Kong, Hong Kong, China.
Sci Adv. 2021 Apr 23;7(17). doi: 10.1126/sciadv.abf8197. Print 2021 Apr.
Thermal boundary conductance is typically positively correlated with interfacial adhesion at the interface. Here, we demonstrate a counterintuitive experimental result in which a weak van der Waals interface can give a higher thermal boundary conductance than a strong covalently bonded interface. This occurs in a system with highly mismatched vibrational frequencies (copper/diamond) modified by a self-assembled monolayer. Using finely controlled fabrication and detailed characterization, complemented by molecular simulation, the effects of bridging the vibrational spectrum mismatch and bonding at the interface are systematically varied and understood from a molecular dynamics viewpoint. The results reveal that the bridging and binding effects have a trade-off relationship and, consequently, that the bridging can overwhelm the binding effect at a highly mismatched interface. This study provides a comprehensive understanding of phonon transport at interfaces, unifying physical and chemical understandings, and allowing interfacial tailoring of the thermal transport in various material systems.
热边界电导通常与界面处的界面粘附力呈正相关。在此,我们展示了一个违反直觉的实验结果,即弱范德华界面能比强共价键合界面具有更高的热边界电导。这发生在一个通过自组装单分子层修饰的具有高度不匹配振动频率的系统(铜/金刚石)中。利用精细控制的制备方法和详细的表征,并辅以分子模拟,从分子动力学的角度系统地改变并理解了弥合振动光谱失配和界面键合的影响。结果表明,桥接和键合效应存在权衡关系,因此,在高度不匹配的界面处,桥接效应可以压倒键合效应。本研究提供了对界面声子输运的全面理解,统一了物理和化学认识,并允许在各种材料系统中对热输运进行界面定制。