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In-situ fabrication of metal oxide nanocaps based on biphasic reactions with surface nanodroplets.

作者信息

Wei Zixiang, Dabodiya Tulsi Satyavir, Chen Jian, Lu Qiuyun, Qian Jiasheng, Meng Jia, Zeng Hongbo, Qian Hui, Zhang Xuehua

机构信息

Department of Chemical and Materials Engineering, University of Alberta, Alberta T6G 1H9, Canada.

Department of Chemical and Materials Engineering, University of Alberta, Alberta T6G 1H9, Canada; Centre for Nanoscience and Technology, Madanjeet School of Green Energy Technologies, Pondicherry University (A Central University), Dr. R. Vankataraman Nagar, Kalapet, Puducherry 605014, India.

出版信息

J Colloid Interface Sci. 2022 Feb 15;608(Pt 3):2235-2245. doi: 10.1016/j.jcis.2021.10.093. Epub 2021 Oct 28.

Abstract

HYPOTHESIS

Surface-bound nanomaterials are widely used in clean energy techniques from solar-driven evaporation in desalination to hydrogen production by photocatalytic electrolysis. Reactive surface nanodroplets may potentially streamline the process of fabrication of a range of surface-bound nanomaterials invoking biphasic reactions at interfaces.

EXPERIMENTS

In this work, we demonstrate the feasibility of reactive surface nanodroplets for in situ synthesis and anchoring of nanocaps of metal oxides with tailored porous structures.

FINDINGS

Spatial arrangement and surface coverage of nanocaps are predetermined during the formation of nanodroplets, while the crystalline structures of metal oxides can be controlled by thermal treatment of organometallic nanodroplets produced from the biphasic reactions. Notably, tuning the ratio of reactive and nonreactive components in surface nanodroplets enables the formation of porous nanocaps that can double photocatalytic efficiency in the degradation of organic contaminants in water, compared to smooth nanocaps. In total, we demonstrate in situ fabrication of four types of metal oxides in the shape of nanocaps. Our work shows that reactive surface nanodroplets may open the door to a general, fast and tuneable route for preparing surface-bound materials. This fabrication approach may develop new nanomaterials needed for photocatalytic reactions, wastewater treatment, optical focusing, solar energy conversion and other clean energy techniques.

摘要

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