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三维多孔气凝胶由 g-C3N4 和氧化石墨烯纳米片构建,具有优异的可见光光催化性能。

Three-Dimensional Porous Aerogel Constructed by g-C3N4 and Graphene Oxide Nanosheets with Excellent Visible-Light Photocatalytic Performance.

机构信息

Key Laboratory for Green Technology, School of Chemical Engineering and Technology, Tianjin University , Tianjin 300072, China.

Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) , Tianjin 300072, China.

出版信息

ACS Appl Mater Interfaces. 2015 Nov 25;7(46):25693-701. doi: 10.1021/acsami.5b09503. Epub 2015 Nov 16.

Abstract

It is curial to develop a high-efficient, low-cost visible-light responsive photocatalyst for the application in solar energy conversion and environment remediation. Here, a three-dimensional (3D) porous g-C3N4/graphene oxide aerogel (CNGA) has been prepared by the hydrothermal coassembly of two-dimensional g-C3N4 and graphene oxide (GO) nanosheets, in which g-C3N4 acts as an efficient photocatalyst, and GO supports the 3D framework and promotes the electron transfer simultaneously. In CNGA, the highly interconnected porous network renders numerous pathways for rapid mass transport, strong adsorption and multireflection of incident light; meanwhile, the large planar interface between g-C3N4 and GO nanosheets increases the active site and electron transfer rate. Consequently, the methyl orange removal ratio over the CNGA photocatalyst reaches up to 92% within 4 h, which is much higher than that of pure g-C3N4 (12%), 2D hybrid counterpart (30%) and most of representative g-C3N4-based photocatalysts. In addition, the dye is mostly decomposed into CO2 under natural sunlight irradiation, and the catalyst can also be easily recycled from solution. Significantly, when utilized for CO2 photoreduction, the optimized CNGA sample could reduce CO2 into CO with a high yield of 23 mmol g(-1) (within 6 h), exhibiting about 2.3-fold increment compared to pure g-C3N4. The photocatalyst exploited in this study may become an attractive material in many environmental and energy related applications.

摘要

开发高效、低成本的可见光响应光催化剂对于太阳能转换和环境修复的应用至关重要。在这里,通过二维 g-C3N4 和氧化石墨烯(GO)纳米片的水热共组装,制备了一种三维(3D)多孔 g-C3N4/氧化石墨烯气凝胶(CNGA),其中 g-C3N4 用作高效光催化剂,GO 支撑 3D 框架并同时促进电子转移。在 CNGA 中,高度互连的多孔网络为快速传质、强吸附和入射光的多次反射提供了众多途径;同时,g-C3N4 和 GO 纳米片之间的大平面界面增加了活性位点和电子转移速率。因此,CNGA 光催化剂在 4 小时内将甲基橙的去除率高达 92%,远高于纯 g-C3N4(12%)、二维混合对应物(30%)和大多数代表性的 g-C3N4 基光催化剂。此外,在自然光照射下,染料大部分分解为 CO2,催化剂也可以很容易地从溶液中回收。值得注意的是,当用于 CO2 光还原时,优化后的 CNGA 样品可将 CO2 高效还原为 CO,产率为 23 mmol g-1(6 小时内),与纯 g-C3N4 相比增加了约 2.3 倍。本研究中所利用的光催化剂在许多环境和能源相关应用中可能成为一种有吸引力的材料。

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