无机材料学报 ›› 2024, Vol. 39 ›› Issue (4): 383-389.DOI: 10.15541/jim20230457 CSTR: 32189.14.10.15541/jim20230457
所属专题: 【信息功能】MAX层状材料、MXene及其他二维材料(202409)
王兆阳1(), 秦鹏2, 蒋胤1, 冯小波1, 杨培志1(
), 黄富强3(
)
收稿日期:
2023-10-07
修回日期:
2023-12-13
出版日期:
2024-04-20
网络出版日期:
2023-12-25
通讯作者:
杨培志, 研究员. E-mail: pzhyang@hotmail.com;作者简介:
王兆阳(1999-), 男, 硕士研究生. E-mail: wang1143882613@163.com
基金资助:
WANG Zhaoyang1(), QIN Peng2, JIANG Yin1, FENG Xiaobo1, YANG Peizhi1(
), HUANG Fuqiang3(
)
Received:
2023-10-07
Revised:
2023-12-13
Published:
2024-04-20
Online:
2023-12-25
Contact:
YANG Peizhi, professor. E-mail: pzhyang@hotmail.com;About author:
WANG Zhaoyang (1999-), male, Master candidate. E-mail: wang1143882613@163.com
Supported by:
摘要:
纳米TiO2具有高催化活性、高化学稳定性、成本低廉和安全无毒等优势, 是目前广泛使用的一类光催化剂, 但较大的禁带宽度和较高的光生电子-空穴复合速率使其光子利用率偏低。本研究利用微刻蚀法设计合成了二维TiO2纳米片, 并进一步与Ru复合, 构建了三明治结构Ru@TiO2高效光催化剂。采用不同表征手段研究了三明治结构Ru@TiO2的表面形貌、电子结构、光电特性和光降解盐酸四环素的性能。结果表明: 插入Ru将TiO2的光响应范围由紫外光区拓展至整个可见-近红外光区, 光子吸收和载流子分离效率得以提升,同时提高了体系光催化活性。模拟太阳光(AM 1.5G, 100 mW·cm-2)照射80 min, 三明治结构Ru@TiO2高效光催化剂对盐酸四环素的降解效果出色, 降解效率达到91.91%。本研究为TiO2基高效光催化剂结构设计提供了一条有效途径。
中图分类号:
王兆阳, 秦鹏, 蒋胤, 冯小波, 杨培志, 黄富强. 三明治结构钌插层二氧化钛光催化四环素降解性能研究[J]. 无机材料学报, 2024, 39(4): 383-389.
WANG Zhaoyang, QIN Peng, JIANG Yin, FENG Xiaobo, YANG Peizhi, HUANG Fuqiang. Sandwich Structured Ru@TiO2 Composite for Efficient Photocatalytic Tetracycline Degradation[J]. Journal of Inorganic Materials, 2024, 39(4): 383-389.
图3 L-TiO2和L-Ru@TiO2的XRD、XPS、EPR和BET表征
Fig. 3 XRD, XPS, EPR, and BET characterizations of L-TiO2 and L-Ru@TiO2 (a) XRD patterns; (b) Ru3d XPS spectrum of L-Ru@TiO2; (c) O1s, and (d) Ti2p XPS spectra; (e) EPR spectra; (f) Nitrogen adsorption and desorption isotherms and corresponding pore size distribution curves. 1 Gs=10-4 T
图4 L-TiO2和L-Ru@TiO2的形貌表征
Fig. 4 Morphology characterization of L-TiO2 and L-Ru@TiO2 (a,b,d,e) TEM images of (a, b) L-TiO2 and (d, e) L-Ru@TiO2; (c, f) HRTEM images of (c) L-TiO2 and (f) L-Ru@TiO2 with insets showing lattice fringes of TiO2 (105); (g, h) HAADF images and (i) element distributions for L-Ru@TiO2
图5 L-TiO2和L-Ru@TiO2的光电特性
Fig. 5 Photoelectric properties of L-TiO2 and L-Ru@TiO2 (a) UV-Vis absorption spectra; (b) PL spectra; (c) Transient photocurrent responses; (d) Work functions
图6 L-TiO2和L-Ru@TiO2的催化降解性能
Fig. 6 Catalytic degradation performance of L-TiO2 and L-Ru@TiO2 (a) TC degradation and (b) TC photodegradation kinetics curves of photocatalytic raw materials TiO2, L-TiO2 and L-Ru@TiO2 under simulated sunlight; (c, d) Photocatalytic degradation efficiencies of TC by L-Ru@TiO2 at different (c) temperatures and (d) wavelengths; (e, f) Photocatalytic degradation efficiencies of TC in active species trapping experiment by L-Ru@TiO2 (Initial conditions: AO 1 mmol/L, LA 0.5 mmol/L)
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