Research Institute of Photocatalysis, State Key Laboratory Breeding Base of Photocatalysis, Fuzhou University , Fuzhou 350002, PR China.
Environ Sci Technol. 2013 Sep 3;47(17):9911-7. doi: 10.1021/es401479k. Epub 2013 Aug 16.
Coupling photocatalysts with photonic crystals structure is based on the unique property of photonic crystals in confining, controlling, and manipulating the incident photons. This combination enhances the light absorption in photocatalysts and thus greatly improves their photocatalytic performance. In this study, Ga2O3 photonic crystals with well-arranged skeleton structures were prepared via a dip-coating infiltration method. The positions of the electronic band absorption for Ga2O3 photonic crystals could be made to locate on the red edge, on the blue edge, and away from the edge of their photonic band gaps by changing the pore sizes of the samples, respectively. Particularly, the electronic band absorption of the Ga2O3 photonic crystal with a pore size of 135 nm was enhanced more than other samples by making it locate on the red edge of its photonic band gap, which was confirmed by the higher instantaneous photocurrent and photocatalytic activity for the degradation of various organic pollutants under ultraviolet light irradiation. Furthermore, the degradation mechanism over Ga2O3 photonic crystals was discussed. The design of Ga2O3 photonic crystals presents a prospective application of photonic crystals in photocatalysis to address light harvesting and quantum efficiency problems through manipulating photons or constructing photonic crystal structure as groundwork.
将光催化剂与光子晶体结构相结合是基于光子晶体在限制、控制和操纵入射光子方面的独特性质。这种组合增强了光催化剂的光吸收,从而大大提高了它们的光催化性能。在这项研究中,通过浸涂渗透法制备了具有良好排列骨架结构的 Ga2O3 光子晶体。通过改变样品的孔径,可以使 Ga2O3 光子晶体的电子能带吸收位置分别位于其光子带隙的红边、蓝边和远离边缘。特别是,当电子能带吸收位于 Ga2O3 光子晶体的光子带隙的红边时,其孔径为 135nm 的电子能带吸收得到了增强,这一点通过在紫外光照射下瞬时光电流和各种有机污染物降解的光催化活性更高得到了证实。此外,还讨论了 Ga2O3 光子晶体的降解机制。Ga2O3 光子晶体的设计为光子晶体在光催化中的应用提供了一种有前景的方法,通过操纵光子或构建光子晶体结构作为基础来解决光捕获和量子效率问题。