Han Qing, Du Shiwen, Wang Yumin, Han Ziwu, Li Hongjing, Xu Hu, Fang Pengfei
School of Physics and Technology, Key Laboratory of Nuclear Solid State Physics Hubei Province, Wuhan University, Wuhan 430072, China.
School of Physics and Technology, Key Laboratory of Nuclear Solid State Physics Hubei Province, Wuhan University, Wuhan 430072, China; State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China.
J Colloid Interface Sci. 2022 Sep 15;622:637-651. doi: 10.1016/j.jcis.2022.04.139. Epub 2022 Apr 29.
Nano-semiconductor materials coupled with piezoelectric effect have received extensive attention due to their wide application in catalysis. In this work, few-layered MoSe nanosheets were grown vertically on TiO nanorods (TNr) to synthesize a direct Z-scheme heterojunction, exhibiting efficient piezocatalytic and piezo-photocatalytic performance. The MoSe/TNr heterostructure exhibited superior piezoelectric degradation efficiency, successfully removing over 98% of RhB within 360 s under continuous magnetic stirring in dark. Compared with piezocatalysis, the piezo-photocatalytic system possessed higher degradation efficiency and cycle stability. Furthermore, a piezo-photoelectric synergistic effect of nanocomposites was observed by current outputs. Under stirring conditions, the current density of depleted MoSe/TNr and MoSe nanosheets were respectively 6.3 μA/cm and 5.5 μA/cm. When light and stirring were applied, the MoSe/TNr current density increased twice to 13.2 μA/cm, while the MoSe nanosheets didn't exhibit improvement. Through the direct Z-scheme heterojunction of MoSe/TNr, photoexcitation and piezoelectric polarization work together to effectively replenish carriers under light irradiation, and then rapidly separate free charges through piezopotential. This work broadens the application prospects of piezocatalysis and piezo-photocatalysis in renewable energy harvesting and water purification.
耦合压电效应的纳米半导体材料因其在催化领域的广泛应用而受到广泛关注。在这项工作中,少层MoSe纳米片垂直生长在TiO纳米棒(TNr)上,以合成直接Z型异质结,表现出高效的压电催化和压电光催化性能。MoSe/TNr异质结构表现出优异的压电降解效率,在黑暗中连续磁力搅拌下,360秒内成功去除了超过98%的罗丹明B(RhB)。与压电催化相比,压电光催化系统具有更高的降解效率和循环稳定性。此外,通过电流输出观察到纳米复合材料的压电光电协同效应。在搅拌条件下,耗尽的MoSe/TNr和MoSe纳米片的电流密度分别为6.3 μA/cm²和5.5 μA/cm²。当施加光照和搅拌时,MoSe/TNr的电流密度增加了两倍,达到13.2 μA/cm²,而MoSe纳米片则没有表现出改善。通过MoSe/TNr的直接Z型异质结,光激发和压电极化共同作用,在光照下有效地补充载流子,然后通过压电势迅速分离自由电荷。这项工作拓宽了压电催化和压电光催化在可再生能源收集和水净化中的应用前景。