Cai Mengdie, Zha Xiaoqing, Zhuo Zhenzhen, Bai Jiaqi, Wang Qin, Cheng Qin, Wei Yuxue, Sun Song
School of Chemistry and Chemical Engineering, Anhui University, Hefei 230601, China.
Materials (Basel). 2023 Mar 8;16(6):2168. doi: 10.3390/ma16062168.
Developing efficient and stable photocatalysts is crucial for photocatalytic hydrogen production. Cocatalyst loading is one of the effective strategies for improving photocatalytic efficiency. Here, TiCT (T = F, OH, O) nanosheets have been adopted as promising cocatalysts for photocatalytic hydrogen production due to their metallic conductivity and unique 2D characterization. In particular, surface functionalized TiC(OH) and TiCO cocatalysts were synthesized through the alkalization treatment with NaOH and a mild oxidation treatment of TiCF, respectively. ZnInS/TiCT composites, which were fabricated by the in-situ growth of ZnInS nanosheets on the TiCT surface, exhibited the promoted photocatalytic performance, compared with the parent ZnInS. The enhanced photocatalytic performance can be further optimized through the surface functionalization of TiCF. As a result, the optimized ZnInS/TiCO composite with oxygen functionalized TiCO cocatalyst demonstrated excellent photocatalytic hydrogen evolution activity. The characterizations and density functional theory calculation suggested that O-terminated TiCO could effectively facilitate the transfer and separation of photogenerated electrons and holes due to the formation of a Schottky junction, with the largest difference in work function between ZnInS and TiCO. This work paves the way for photocatalytic applications of MXene-based photocatalysts by tuning their surface termination groups.
开发高效稳定的光催化剂对于光催化制氢至关重要。助催化剂负载是提高光催化效率的有效策略之一。在此,TiCT(T = F、OH、O)纳米片因其金属导电性和独特的二维特性而被用作有前景的光催化制氢助催化剂。特别地,表面功能化的TiC(OH)和TiCO助催化剂分别通过用NaOH进行碱化处理和对TiCF进行温和氧化处理来合成。通过在TiCT表面原位生长ZnInS纳米片制备的ZnInS/TiCT复合材料与母体ZnInS相比,表现出增强的光催化性能。通过TiCF的表面功能化可以进一步优化增强的光催化性能。结果,具有氧功能化TiCO助催化剂的优化ZnInS/TiCO复合材料表现出优异的光催化析氢活性。表征和密度泛函理论计算表明,由于形成了肖特基结,O端接的TiCO能够有效地促进光生电子和空穴的转移与分离,ZnInS和TiCO之间的功函数差异最大。这项工作通过调节基于MXene的光催化剂的表面端基为其光催化应用铺平了道路。