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具有增强可见光光催化效率的核壳结构酚醛聚合物@TiO纳米球

Core-Shell Structured Phenolic Polymer@TiO Nanosphere with Enhanced Visible-Light Photocatalytic Efficiency.

作者信息

Xu Xiankui, Zhang Lei, Zhang Shihua, Wang Yanpeng, Liu Baoying, Ren Yanrong

机构信息

Henan Engineering Laboratory of Flame-retardant and Functional Materials, Institute of Functional Polymer Composites, College of Chemistry and Chemical Engineering, Henan University, Kaifeng 475004, China.

出版信息

Nanomaterials (Basel). 2020 Mar 5;10(3):467. doi: 10.3390/nano10030467.

Abstract

Core-shell structured TiO is a promising solution to promote the photocatalytic effectiveness in visible light. Compared to metal or semiconductor materials, polymers are rarely used as the core materials for fabricating core-shell TiO materials. A novel core-shell structured polymer@TiO was developed by using phenolic polymer (PP) colloid nanoparticles as the core material. The PP nanoparticles were synthesized by an enzyme-catalyzed polymerization in water. A subsequent sol-gel and hydrothermal reaction was utilized to cover the TiO shell on the surfaces of PP particles. The thickness of the TiO shell was controlled by the amount of TiO precursor. The covalent connection between PP and TiO was established after the hydrothermal reaction. The core-shell structure allowed the absorption spectra of PP@TiO to extend to the visible-light region. Under visible-light irradiation, the core-shell nanosphere displayed enhanced photocatalytic efficiency for rhodamine B degradation and good recycle stability. The interfacial C-O-Ti bonds and the π-conjugated structures in the PP@TiO nanosphere played a key role in the quick transfer of the excited electrons between PP and TiO, which greatly improved the photocatalytic efficiency in visible light.

摘要

核壳结构的TiO是提高可见光光催化效率的一种很有前景的解决方案。与金属或半导体材料相比,聚合物很少用作制备核壳TiO材料的核心材料。通过使用酚醛聚合物(PP)胶体纳米颗粒作为核心材料,开发了一种新型的核壳结构聚合物@TiO。PP纳米颗粒是通过在水中的酶催化聚合反应合成的。随后利用溶胶-凝胶和水热反应在PP颗粒表面覆盖TiO壳层。TiO壳层的厚度由TiO前驱体的量控制。水热反应后在PP和TiO之间建立了共价连接。核壳结构使PP@TiO的吸收光谱扩展到可见光区域。在可见光照射下,核壳纳米球对罗丹明B降解显示出增强的光催化效率和良好的循环稳定性。PP@TiO纳米球中的界面C-O-Ti键和π共轭结构在PP和TiO之间激发电子的快速转移中起关键作用,这大大提高了可见光下的光催化效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5665/7153608/9c5257b37b29/nanomaterials-10-00467-g001.jpg

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