Lee Sher Ling, Chang Chi-Jung
Department of Chemical Engineering, Feng Chia University, 100, Wenhwa Road, Seatwen, Taichung 40724, Taiwan.
Polymers (Basel). 2019 Jan 24;11(2):206. doi: 10.3390/polym11020206.
Conductive polymers have been widely investigated in various applications. Several conductive polymers, such as polyaniline (PANI), polypyrrole (PPy), poly(3,4-ethylenedioxythiophene) (PEDOT)), and polythiophene (PTh) have been loaded with various semiconductor nanomaterials to prepare the composite photocatalysts. However, a critical review of conductive polymer-based composite photocatalysts has not been available yet. Therefore, in this review, we summarized the applications of conductive polymers in the preparation of composite photocatalysts for photocatalytic degradation of hazardous chemicals, antibacterial, and photocatalytic hydrogen production. Various materials were systematically surveyed to illustrate their preparation methods, morphologies, and photocatalytic performances. The synergic effect between conductive polymers and semiconductor nanomaterials were observed for a lot of composite photocatalysts. The band structures of the composite photocatalysts can be analyzed to explain the mechanism of their enhanced photocatalytic activity. The incorporation of conductive polymers can result in significantly improved visible-light driven photocatalytic activity by enhancing the separation of photoexcited charge carriers, extending the light absorption range, increasing the adsorption of reactants, inhibiting photo-corrosion, and reducing the formation of large aggregates. This review provides a systematic concept about how conductive polymers can improve the performance of composite photocatalysts.
导电聚合物已在各种应用中得到广泛研究。几种导电聚合物,如聚苯胺(PANI)、聚吡咯(PPy)、聚(3,4-乙撑二氧噻吩)(PEDOT)和聚噻吩(PTh),已负载各种半导体纳米材料以制备复合光催化剂。然而,尚未有对基于导电聚合物的复合光催化剂的批判性综述。因此,在本综述中,我们总结了导电聚合物在制备用于光催化降解有害化学物质、抗菌和光催化制氢的复合光催化剂中的应用。系统地研究了各种材料,以说明它们的制备方法、形态和光催化性能。许多复合光催化剂都观察到了导电聚合物与半导体纳米材料之间的协同效应。可以分析复合光催化剂的能带结构来解释其光催化活性增强的机理。导电聚合物的掺入可通过增强光激发电荷载流子的分离、扩展光吸收范围、增加反应物的吸附、抑制光腐蚀以及减少大聚集体的形成,从而显著提高可见光驱动的光催化活性。本综述提供了一个关于导电聚合物如何提高复合光催化剂性能的系统概念。