4.8 Article

Transparent and Hard Zirconia-Based Hybrid Coatings with Excellent Dynamic/Thermoresponsive Oleophobicity, Thermal Durability, and Hydrolytic Stability

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 5, Issue 16, Pages 7899-7905

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/am401992h

Keywords

zirconia-based hybrid film; branched-stearic acid; dynamic oleophobicity; ardness; thermal durability; hydrolytic stability

Funding

  1. Ministry of Education, Culture, Sports, Science, and Technology (MEXT), Japan [24120005, 23850020]
  2. Grants-in-Aid for Scientific Research [23850020, 24120005] Funding Source: KAKEN

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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)(2)CH3)(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 degrees C), while for Zr:LSA hybrid films, serious thermal damage to surface dewetting behavior was observed at less than 150 degrees C. The hardness of the Zr:BSA hybrid films were markedly increased by curing at 200 degrees 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 mu L) were easily set in motion, sliding across and off our best Zr:BSA hybrid film surfaces at low substrate tilt angles (<10 degrees) without pinning. Moreover, they also showed thermoresponsive dynamic dewetting behavior, reasonable resistance to hydrolysis in an aqueous environment, and antifingerprint properties.

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