Kuang Pan-Yong, Zheng Xing-Jun, Lin Jia, Huang Xian-Biao, Li Nan, Li Xin, Liu Zhao-Qing
School of Chemistry and Chemical Engineering/Guangzhou Key Laboratory for Environmentally Functional Materials and Technology, Guangzhou University, Guangzhou 510006, P. R. China.
College of materials and energy, Key Laboratory of Energy Plants Resource and Utilization, Ministry of Agriculture, Key Laboratory of Biomass Energy of Guangdong Regular Higher Education Institutions, South China Agricultural University, Guangzhou 510642, P. R. China.
ACS Omega. 2017 Mar 10;2(3):852-863. doi: 10.1021/acsomega.6b00507. eCollection 2017 Mar 31.
With the gradually increasing demand for solving the environmental pollution problem and energy crisis, efficient photocatalysts with superior charge carrier separation and transfer ability have attracted extensive research attention. Herein, n-type CdS-decorated p-CuO/n-ZnO nanorod arrays (CdS/CuO/ZnO NRAs), integrating the merits of both highly ordered structure and synergistic effect derived from dual p-n junctions, were successfully fabricated and further applied to photoelectrocatalysis. In this ternary nanocomposite, fast generation, separation, and transfer of charge carriers were achieved in the CuO/ZnO and CuO/CdS dual p-n junction regions due to their built-in electric field and appropriate band structures. Moreover, both highly ordered ZnO NRAs and compact CdS shell play the role of an electron collector and a transport channel that efficiently consumes the photoinduced electrons in the conduction band of CuO, which considerably reduces the recombination rate of charge carriers. As expected, the perfect cooperation of the three participators leads to the highest photoconversion efficiency of 2.61% at -0.275 V (versus saturated calomel electrode) and an incident photon-to-current conversion efficiency of 14.51% at 380 nm as well as the photoelectrocatalytic degradation ability of the optimized 30 min CdS/CuO/ZnO NRAs photoanode as compared to that of the CuO/ZnO and ZnO NRAs photoanodes. It is believed that the induced synergistic effect between dual p-n junctions and ZnO NRAs caused the superior performances of the CdS/CuO/ZnO NRAs photoanode, and this ternary material with a unique structure may present a new way of thinking for potential applications in the photoelectrochemistry field.
随着解决环境污染问题和能源危机的需求逐渐增加,具有优异电荷载流子分离和转移能力的高效光催化剂引起了广泛的研究关注。在此,集成了高度有序结构的优点和源自双 p-n 结的协同效应的 n 型 CdS 修饰的 p-CuO/n-ZnO 纳米棒阵列(CdS/CuO/ZnO NRA)被成功制备,并进一步应用于光电催化。在这种三元纳米复合材料中,由于其内置电场和合适的能带结构,在 CuO/ZnO 和 CuO/CdS 双 p-n 结区域实现了电荷载流子的快速产生、分离和转移。此外,高度有序的 ZnO NRA 和致密的 CdS 壳层都起到了电子收集器和传输通道的作用,它们有效地消耗了 CuO 导带中的光生电子,这大大降低了电荷载流子的复合率。正如预期的那样,这三个参与者的完美配合导致在 -0.275 V(相对于饱和甘汞电极)时的最高光电转换效率为 2.61%,在 380 nm 时的入射光子到电流转换效率为 14.51%以及与 CuO/ZnO 和 ZnO NRA 光阳极相比,优化后的 30 分钟 CdS/CuO/ZnO NRA 光阳极具有光电催化降解能力。据信,双 p-n 结与 ZnO NRA 之间诱导的协同效应导致了 CdS/CuO/ZnO NRA 光阳极的优异性能,并且这种具有独特结构的三元材料可能为光电化学领域的潜在应用提供一种新的思路。