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Ag3PO4 球形颗粒的可见光光催化活性和失活动力学。

Visible-light photocatalytic activity and deactivation mechanism of Ag3PO4 spherical particles.

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan 430070, P. R. China.

出版信息

Chem Asian J. 2012 Aug;7(8):1902-8. doi: 10.1002/asia.201200197. Epub 2012 Jun 8.

Abstract

Ag(3)PO(4) spherical particles were synthesized by a facile precipitation method using silver nitrate and Na(2) HPO(4) as precursors. The as-prepared samples had a high photocatalytic activity toward Rhodamine B (RhB) degradation under visible-light illumination. With increasing recycling times the photocatalytic activity first increased and then decreased. Based on systematic characterization of particles by X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), UV/Vis absorption spectroscopy, scanning electron microscopy (SEM), and transmission electron microscopy (TEM), a possible mechanism responsible for the improvement and subsequent decline of the photocatalytic performance of Ag(3)PO(4) is proposed. Ag(3)PO(4) spherical particles recycled for four times showed the highest photocatalytic activity because, according to our mechanism, Ag nanoparticles deposited on Ag(3)PO(4) acted as electron trapping centers to prevent photogenerated electron-hole pairs from recombination. A further increase in the recycle times decreases the photocatalytic activity owing to the shielding effect by Ag layers on the surface of Ag(3)PO(4). The results presented herein shed new light on the photostability of Ag(3) PO(4) spherical particles and are potentially applicable to other photocatalytically active composites.

摘要

采用硝酸银和磷酸氢二钠为前驱体,通过简便的沉淀法合成了 Ag(3)PO(4) 球形颗粒。所制备的样品在可见光照射下对 Rhodamine B(RhB)降解具有很高的光催化活性。随着循环次数的增加,光催化活性先增加后降低。通过对颗粒进行 X 射线衍射(XRD)、X 射线光电子能谱(XPS)、紫外可见吸收光谱、扫描电子显微镜(SEM)和透射电子显微镜(TEM)的系统表征,提出了一种可能的机制,解释了 Ag(3)PO(4)光催化性能的提高和随后的下降。Ag(3)PO(4) 球形颗粒循环使用四次后表现出最高的光催化活性,因为根据我们的机理,沉积在 Ag(3)PO(4)上的 Ag 纳米颗粒充当电子俘获中心,防止光生电子-空穴对的复合。进一步增加循环次数会降低光催化活性,这是由于 Ag 层对 Ag(3)PO(4)表面的屏蔽效应所致。本文的结果为 Ag(3)PO(4) 球形颗粒的光稳定性提供了新的认识,并可能适用于其他光催化活性复合材料。

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