4.7 Article

Polymer infiltration synthesis of inorganic nanoporous coatings: Does polymer template affect their properties?

Journal

SURFACE & COATINGS TECHNOLOGY
Volume 452, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.surfcoat.2022.129107

Keywords

Nanoporous coatings; Zinc oxide; Polymer infiltration synthesis; Sensing

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The synthesis of nanoporous zinc oxide films is achieved by infiltrating polymer templates that have different interactions with metal oxide precursors. Gas phase and solution phase precursors are used to study the polymer infiltration process. The properties of the synthesized metal oxide coatings are analyzed using quartz crystal microbalance, X-ray diffraction, and X-ray photoelectron spectroscopy. The surface termination of ZnO films is affected by the polymer type, while the crystallinity is influenced by the precursor state.
Synthesis of all-inorganic metal oxide architectures using polymer templates offers control over their thickness, porosity, and composition. Here, we provide insights into the synthesis of nanoporous zinc oxide films as a model system via infiltration of polymers that have different mechanisms of interaction with metal oxide precursors such as a polymer of intrinsic microporosity (PIM-1) and representative of the block-copolymers family (poly-styrene-polyvinyl pyridine block copolymer). We investigated polymer infiltration process with both gas (diethyl zinc, DEZ, and water vapors) and solution (zinc acetylacetonate, Zn(acac)2, dissolved in ethanol) phase pre-cursors. Using quartz crystal microbalance (QCM), X-ray diffraction (XRD), and X-ray photoelectron spectros-copy (XPS) analyses, we systematically studied the effect of polymer template and the form of the metal oxide precursors on the properties of synthesized metal oxide thin coatings. We demonstrate that the infiltration of polymer templates can be efficiently achieved using both gas phase and solution phase precursors. We show that the crystallinity of the synthesized 200 nm ZnO films is mainly affected by the state of the precursor (gas or solution phase) and does not depend on the polymer template type. In turn, the polymer type affects the surface termination of ZnO films. We demonstrate that the surface of porous ZnO coatings synthesized with BCP (here PS-P4VP) is more accessible than the surface of ZnO synthesized with PIM; however, despite the lower surface accessibility for ethanol molecules, ZnO synthesized via infiltration of PIM-1 with solution-phase precursors demonstrates the largest change in resistivity upon its exposure to ethanol vapor at room temperature.

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