4.8 Article

Origin of Hydrophilic Surface Functionalization-Induced Thermal Conductance Enhancement across Solid-Water Interfaces

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 10, 期 33, 页码 28159-28165

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.8b03709

关键词

hard-soft interface; self-assembled monolayer; interfacial thermal conductance; nonequilibrium molecular dynamics; interfacial heat flux

资金

  1. Chinese Scholarship Council
  2. NSF [1706039]
  3. Dorini Family for the endowed professorship in Energy Studies
  4. Center for the Advancement of Science in Space (CASIS) [GA-2018-268]
  5. TACC Stampede [TG-CTS100078]
  6. Directorate For Engineering
  7. Div Of Chem, Bioeng, Env, & Transp Sys [1706039] Funding Source: National Science Foundation

向作者/读者索取更多资源

Thermal transport across solid-water interfaces is critical for a wide range of applications such as solar thermal evaporation, nanoparticle-assisted hyperthermia therapeutics, and nanofluids. Surface functionalization using self-assembled monolayers (SAMs) to change the hydrophilicity of the solid surface is a common strategy to improve the thermal conductance of solid-water interfaces. Although it is known that hydrophilic interfaces increase the interfacial bonding, how it impacts the molecular level energy transport across the interface is still not clear. In this paper, we perform molecular dynamics simulations to calculate the thermal conductance of differently functionalized gold (Au)-water interfaces. Combining the heat flux decomposition to different interatomic interactions across interfaces and analyses of water structures close to the functionalized surfaces, we found that there is a collaborative effect from the electrostatic interactions and the Lennard-Jones (L-J) interactions (especially the repulsive part). The electrostatic interactions, which are between the polar functional groups of SAMs and water, will attract water molecules closer to the SAM surface, leading both the electrostatic and L-J interactions to have larger effective forces across the interfaces. This increases the power exchanged between solid and water atoms, enhancing the thermal energy transport. The results from this work will provide new insights to the understanding of thermal transport across solid-water interfaces.

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