National Institute for Advanced Industrial Science and Technology (AIST), 2266-98, Anagahora, Shimo-shidami, Moriyama-ku Nagoya 463-8560, Japan.
ACS Appl Mater Interfaces. 2013 Aug 28;5(16):7899-905. doi: 10.1021/am401992h. Epub 2013 Jul 25.
Smooth, transparent, and extremely hard zirconia (ZrO2)-based inorganic-organic hybrid films showing excellent dynamic oleophobicity, thermal durability, and hydrolytic stability were successfully prepared through a simple combination of zirconium tetrapropoxide (Zr(O(CH2)2CH3)4) with stearic acids. In this study, we have particularly focused on the effects of stearic acid molecular architecture (linear-stearic acid (LSA) and branched-stearic acid (BSA)) on surface physical/chemical properties. Although, in each case, the resulting hybrid (Zr:LSA and Zr:BSA) films achieved by a simple spin-coating method were highly smooth and transparent, the final surface properties were markedly dependent on their molecular architectures. Thanks to the thermal stability of BSA, our Zr:BSA hybrid films displayed a greatly improved thermal effective range (maximum of 200 °C), while for Zr:LSA hybrid films, serious thermal damage to surface dewetting behavior was observed at less than 150 °C. The hardness of the Zr:BSA hybrid films were markedly increased by curing at 200 °C for 1 h (from 1.95 GPa to 3.03 GPa), while maintaining their dynamic dewettability toward n-hexadecane, when compared with Zr:LSA hybrid films (0.95-1.19 GPa). Small volume n-hexadecane droplets (5 μL) were easily set in motion, sliding across and off our best Zr:BSA hybrid film surfaces at low substrate tilt angles (<10°) without pinning. Moreover, they also showed thermoresponsive dynamic dewetting behavior, reasonable resistance to hydrolysis in an aqueous environment, and antifingerprint properties.
成功制备了光滑、透明且极其坚硬的氧化锆(ZrO2)基无机-有机杂化薄膜,其表现出优异的动态疏油性、热稳定性和水解稳定性。通过四异丙氧基锆(Zr(O(CH2)2CH3)4)与硬脂酸的简单组合实现了这一目标。在本研究中,我们特别关注硬脂酸分子结构(直链硬脂酸(LSA)和支链硬脂酸(BSA))对表面物理/化学性质的影响。尽管通过简单的旋涂方法制备的所得杂化(Zr:LSA 和 Zr:BSA)薄膜均高度光滑透明,但最终表面性能明显取决于其分子结构。由于 BSA 的热稳定性,我们的 Zr:BSA 杂化薄膜显示出大大改善的热有效范围(最高可达 200°C),而对于 Zr:LSA 杂化薄膜,在低于 150°C 时观察到表面去湿行为的严重热损伤。通过在 200°C 下固化 1 小时,Zr:BSA 杂化薄膜的硬度显著提高(从 1.95 GPa 提高到 3.03 GPa),同时保持其对正十六烷的动态去湿能力,而 Zr:LSA 杂化薄膜的硬度为 0.95-1.19 GPa。小体积的正十六烷液滴(5 μL)很容易在低基底倾斜角度(<10°)下运动,在我们最佳的 Zr:BSA 杂化膜表面上滑动并脱离,而不会被卡住。此外,它们还表现出热敏动态去湿行为、在水环境中合理的抗水解性和抗指纹性能。