Reddy Kumbam Lingeshwar, Kumar Suneel, Kumar Ajay, Krishnan Venkata
School of Basic Sciences and Advanced Materials Research Center, Indian Institute of Technology Mandi, Kamand, Mandi-175005, Himachal Pradesh, India.
School of Basic Sciences and Advanced Materials Research Center, Indian Institute of Technology Mandi, Kamand, Mandi-175005, Himachal Pradesh, India.
J Hazard Mater. 2019 Apr 5;367:694-705. doi: 10.1016/j.jhazmat.2019.01.004. Epub 2019 Jan 3.
Approaches towards maximum utilization of solar light spectrum for photocatalysis have currently attracted great interest. The combination of profoundly different properties, such as, upconversion, semiconducting and plasmonic properties can produce a favorable path in efficient utilization of the different regions of solar light reaching to earth. In this regard, design and fabrication of microstructures consisting of upconverting lanthanide doped nanophosphors coated with porous semiconducting material, TiO and decorated with plasmonic Ag-Cu bimetallic nanoparticles is presented in this work. These microstructures display great stability and exceptional photocatalytic activity by absorbing wide spectrum from ultraviolet to near infrared. The photocatalytic activity could be attributed to the synergistic effects between the different components and the efficient energy transfer between them. The development of such sort of hybrid microstructures could pave way for the development of new materials for the efficient utilization of the wide spectrum of sunlight.
目前,实现光催化对太阳光光谱的最大利用的方法引起了极大关注。将诸如上转换、半导体和等离子体等截然不同的性质相结合,能够在有效利用到达地球的太阳光不同区域方面开辟一条有利途径。在这方面,本文介绍了由涂覆有多孔半导体材料TiO的上转换镧系掺杂纳米磷光体组成并装饰有等离子体Ag-Cu双金属纳米颗粒的微结构的设计与制造。这些微结构通过吸收从紫外到近红外的宽光谱,展现出极高的稳定性和卓越的光催化活性。光催化活性可归因于不同组分之间的协同效应以及它们之间的高效能量转移。这类混合微结构的开发可为高效利用宽光谱太阳光的新材料的开发铺平道路。