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Preparation and Use of Photocatalytically Active Segmented Ag|ZnO and Coaxial TiO2-Ag Nanowires Made by Templated Electrodeposition
Published on: May 2, 2014
Triphase interface engineering in bilayer aerogels for highly efficient water evaporation and
Yuancheng Ji1, Yan Zhu1, Yang Yang1
1Key Laboratory of Organosilicon Chemistry and Material Technology, Ministry of Education, Key Laboratory of Organosilicon Material Technology of Zhejiang Province, College of Material, Chemistry and Chemical Engineering, Hangzhou Normal University, Hangzhou 311121, Zhejiang, PR China.
Abstract:
Solar-driven photocatalytic oxygen reduction offers a sustainable route for hydrogen peroxide (H2O2) production. However, this process is often limited by the high energy barrier for hydrogen extraction from water, low oxygen solubility and diffusion, and poor selectivity for the two-electron oxygen reduction reaction (ORR), especially under alkaline conditions. Herein, we reported a synergistic photothermal-photocatalytic bilayer aerogel constructed with konjac glucomannan to integrate a photothermal lower layer of reduced graphene oxide (rGO) and a catalytic upper layer of keto-form anthraquinone covalent organic framework (Kf-AQ-COF). Owing to its hydrophobic mesoporous structure, the bilayer aerogel forms a robust gas-liquid-solid triphase interface on a porous substrate. Under alkaline conditions, the hydroxide clusters adsorbed onto ketone moieties can drive the anthraquinone-anthrahydroquinone cycle of Kf-AQ-COF for enabling electron transfer and H2O2 production. Meanwhile, the underlying rGO layer functions primarily as a localized photothermal converter and lightweight structural matrix, raising the interfacial temperature to accelerate reaction kinetics and driving rapid vapor escape without altering the intrinsic band structure of the top photocatalyst. As a result, this photothermal-synergistic triphase interface achieves an H2O2 production rate of 15.0 mmol m-2∙h-1 under air without sacrificial agents within 60 min, which is 1.43 times that of the conventional solid-liquid diphase system. This work demonstrates a new photocatalytic strategy integrating molecular reaction regulation with interfacial engineering.

