State Key Laboratory of Material Processing and Die & Mould Technology, Huazhong University of Science & Technology, Wuhan 430074, People's Republic of China.
J Am Chem Soc. 2010 Sep 15;132(36):12619-26. doi: 10.1021/ja1025112.
We report the fabrication and characterization of CdS/TiO(2) nanotube-array coaxial heterogeneous structures. Such structures may potentially be applied in various photocatalytic fields, such as water photocatalytic decomposition and toxic pollutant photocatalytic degradation. Thin films of CdS are conformally deposited onto TiO(2) nanotubes using a modified method of electrochemical atomic layer deposition. We propose that such nanostructured electrodes can overcome the poor absorption and high charge-carrier recombination observed with nanoparticulate films. The practical electrochemical deposition technique promotes the deposition of CdS onto the TiO(2) tube walls while minimizing deposition at the tube entrances, thus preventing pore clogging. The coaxial heterogeneous structure prepared by the new electrochemical process significantly enhances CdS/TiO(2) and CdS/electrolyte contact areas and reduces the distance that holes and electrons must travel to reach the electrolyte or underlying conducting substrate. This results in enhanced photon absorption and photocurrent generation. The detailed synthesis process and the surface morphology, structure, elemental analysis, and photoelectrochemical properties of the resulting films with the CdS/TiO(2) nanotube-array coaxial heterogeneous structure are discussed. In comparison with a pure TiO(2) nanotube array, a 5-fold enhancement in photoactivity was observed using the coaxial heterogeneous structure. This methodology may be useful in designing multijunction semiconductor materials for coating of highly structured substrates.
我们报告了 CdS/TiO(2) 纳米管阵列同轴异质结构的制造和特性。这种结构可能在各种光催化领域得到应用,如光催化水分解和有毒污染物光催化降解。使用改进的电化学原子层沉积方法,将 CdS 薄膜共形沉积在 TiO(2) 纳米管上。我们提出,这种纳米结构电极可以克服纳米颗粒薄膜中观察到的光吸收不良和载流子复合率高的问题。实际的电化学沉积技术促进了 CdS 在 TiO(2) 管壁上的沉积,同时最大限度地减少了在管入口处的沉积,从而防止了孔堵塞。通过新的电化学过程制备的同轴异质结构显著增加了 CdS/TiO(2)和 CdS/电解质的接触面积,减少了空穴和电子到达电解质或底层导电衬底所需的距离。这导致了增强的光子吸收和光电流产生。详细讨论了具有 CdS/TiO(2)纳米管阵列同轴异质结构的薄膜的详细合成过程、表面形貌、结构、元素分析和光电化学性能。与纯 TiO(2) 纳米管阵列相比,同轴异质结构的光活性提高了 5 倍。这种方法可能有助于设计用于高度结构化衬底的涂层的多结半导体材料。