Pham Tuyet Nhung, Thi Hue Nguyen, Lee Young-Chul, Huy Tran Quang, Thi Thu Thuy Nguyen, Tuan Hoang Van, Khi Nguyen Tien, Phan Vu Ngoc, Thanh Tran Dang, Lam Vu Dinh, Le Anh-Tuan
Phenikaa University Nano Institute (PHENA), PHENIKAA University Hanoi 12116 Vietnam
Department of BioNano Technology, Gachon University 1342 Seongnam-Daero, Sujeong-Gu Seongnam-Si Gyeonggi-do 13120 Republic of Korea.
RSC Adv. 2021 Nov 30;11(61):38578-38588. doi: 10.1039/d1ra08365a. eCollection 2021 Nov 29.
In this work, Ag@ZnO and Ag@ZnO/MgAC photocatalysts were synthesized using a simple two-step electrochemical method by the addition of magnesium aminoclay (MgAC) as a great stabilizer and a Lewis base, which could donate electrons for reduction of Ag and Zn ions, facilitating uniform formation as well as effective inhibition of aggregation of Ag@ZnO nanoparticles (NPs) on the MgAC matrix. Ag@ZnO and Ag@ZnO/MgAC were investigated for photocatalytic degradation of MB and their antibacterial efficiencies. Ag@ZnO/MgAC showed excellent photocatalytic MB degradation with a performance of 98.56% after 80 min of visible-light irradiation and good antibacterial activity against () and () bacterial strains, providing promising high application potential. Herein, different from the bare ZnO NPs, for Ag@ZnO/MgAC nanocomposites, Ag@ZnO NPs functioned as an effective photocatalyst under visible light illumination, in which, incorporated Ag atoms in the ZnO crystal structure caused the increase in a larger number of lattice defect sites. Benefiting from the strong surface plasmon resonance (SPR) effect of Ag and energy band matching between ZnO and Ag, the visible light absorption capacity and the separation of the photogenerated charge carriers were promoted. Therefore, the MB degradation efficiency of Ag@ZnO/MgAC was considerably accelerated in the presence of produced radicals from visible light illumination.
在本工作中,通过添加氨基镁粘土(MgAC)作为一种出色的稳定剂和路易斯碱,采用简单的两步电化学方法合成了Ag@ZnO和Ag@ZnO/MgAC光催化剂,MgAC可以为Ag和Zn离子的还原提供电子,促进Ag@ZnO纳米颗粒(NPs)在MgAC基质上均匀形成并有效抑制其聚集。研究了Ag@ZnO和Ag@ZnO/MgAC对亚甲基蓝(MB)的光催化降解及其抗菌效率。Ag@ZnO/MgAC在可见光照射80分钟后表现出优异的光催化MB降解性能,降解率为98.56%,并且对()和()细菌菌株具有良好的抗菌活性,具有很高的应用潜力。在此,与裸ZnO NPs不同,对于Ag@ZnO/MgAC纳米复合材料,Ag@ZnO NPs在可见光照射下作为有效的光催化剂,其中,ZnO晶体结构中掺入的Ag原子导致大量晶格缺陷位点增加。受益于Ag的强表面等离子体共振(SPR)效应以及ZnO和Ag之间的能带匹配,促进了可见光吸收能力和光生载流子的分离。因此,在可见光照射产生自由基的情况下,Ag@ZnO/MgAC对MB的降解效率大大加快。