Wang Hanmei, Zhao Ran, Hu Haoxuan, Fan Xianwei, Zhang Dajie, Wang Dong
Hubei Key Laboratory of Advanced Textile Materials & Application, Wuhan 430200, Hubei, China.
School of Environmental Engineering, Wuhan Textile University, Wuhan 430200, Hubei, China.
ACS Appl Mater Interfaces. 2020 Sep 9;12(36):40176-40185. doi: 10.1021/acsami.0c01013. Epub 2020 Aug 28.
In this work, a novel heterojunction catalyst was constructed by introducing TiC MXene quantum dots (QDs) into SiC. The TiC MXene QDs/SiC composite showed 74.6% efficiency in NO pollutant removal under visible light irradiation, which is 3.1 and 3.7 times higher than those of the bare TiC MXene quantum dots and SiC, respectively. The TiC MXene quantum dots existing in SiC can function as a channel for electron and hole transfer. The enhanced visible light absorption, increased superoxide radical, and strong oxidization ability endow the TiC MXene QDs/SiC composite with a superior photocatalytic performance for NOx removal. The increased superoxide radical formation and enhanced oxidization ability of TiC MXene QDs/SiC were demonstrated by theoretical calculations. The robust stability in both photocatalytic performance and crystal structures was revealed in the TiC MXene QDs/SiC composite using the cycling test, transient photocurrent response, XRD, and TG.
在本工作中,通过将TiC MXene量子点(QDs)引入SiC构建了一种新型异质结催化剂。TiC MXene QDs/SiC复合材料在可见光照射下对NO污染物的去除效率为74.6%,分别比裸TiC MXene量子点和SiC高3.1倍和3.7倍。存在于SiC中的TiC MXene量子点可作为电子和空穴转移的通道。增强的可见光吸收、增加的超氧自由基以及强大的氧化能力赋予TiC MXene QDs/SiC复合材料优异的光催化去除NOx性能。通过理论计算证明了TiC MXene QDs/SiC中超氧自由基形成的增加和氧化能力的增强。使用循环测试、瞬态光电流响应、XRD和TG在TiC MXene QDs/SiC复合材料中揭示了光催化性能和晶体结构的稳健稳定性。