Uetani Kojiro, Izakura Shogo, Koga Hirotaka, Nogi Masaya
The Institute of Scientific and Industrial Research (ISIR), Osaka University Mihogaoka 8-1, Ibaraki-shi Osaka 567-0047 Japan
Graduate School of Engineering, Osaka University Mihogaoka 8-1, Ibaraki-shi Osaka 567-0047 Japan.
Nanoscale Adv. 2020 Jan 20;2(3):1024-1030. doi: 10.1039/c9na00734b. eCollection 2020 Mar 17.
Thermal transport modulating materials show great potential to address the heat problems in a wide range of engineering fields. However, tuning the thermal conductivity of solid-state materials is practically difficult because it requires specific or extreme stimulation, such as chemical composition change, a phase transition, or large applied fluctuations, to change the internal bulk structures. Here, we report reversible switching of the in-plane thermal diffusivity of densely packed cellulose nanofiber (CNF) films by ∼15% by simple mechanical strain as small as 0.3%. From analysis of the stress relaxation profiles and the different bulk densities of the CNF films, the interfacial elastic dynamics between the strongly hydrogen bonded CNFs were found to exhibit thermal diffusivity modulation by tuning the interfacial thermal resistance, rather than changing the bulk structure of the CNFs. Our concept of interfacial-elasticity-driven thermal diffusivity switching has the potential to enhance the on/off rate and extensibility toward practical use owing to the high designability of the interfacial conditions.
热传输调制材料在解决广泛工程领域的热问题方面显示出巨大潜力。然而,调节固态材料的热导率实际上很困难,因为这需要特定的或极端的刺激,例如化学成分变化、相变或大的外加涨落,来改变内部的整体结构。在此,我们报告了通过施加低至0.3%的简单机械应变,使紧密堆积的纤维素纳米纤维(CNF)薄膜的面内热扩散率可逆切换约15%。通过对CNF薄膜的应力松弛曲线和不同堆积密度的分析,发现强氢键结合的CNF之间的界面弹性动力学通过调节界面热阻来实现热扩散率调制,而不是改变CNF的整体结构。由于界面条件具有高度可设计性,我们提出的界面弹性驱动热扩散率切换概念有潜力提高实际应用中的开/关速率和可扩展性。