NTT Hi-Tech Institute, Nguyen Tat Thanh University, 300A Nguyen Tat Thanh, Ward 13, District 4, Ho Chi Minh City, Viet Nam.
Institute of Environmental Sciences, Nguyen Tat Thanh University, Ho Chi Minh City, Viet Nam; Faculty of Environmental and Food Engineering, Nguyen Tat Thanh University, Ho Chi Minh City, Viet Nam.
Chemosphere. 2021 Dec;285:131429. doi: 10.1016/j.chemosphere.2021.131429. Epub 2021 Jul 6.
Photocatalytic hydrogen (H) generation derived by water has been considered as a renewable energy to solve environmental problems and global energy crises. Thus, it is necessary to explore the most effective photocatalysts by using multi-cocatalysts, due to an intimate interaction between different components. Therefore, we already synthesized the TiO/TiC/g-CN (TTC) photocatalyst from g-CN and TiC MXene via a calcination technique, and applied this composite for H evolution. By making use of titanium atom from TiC MXene, titanium dioxide (TiO) was in-body developed, which leads to form a close heterostructure between metallic material and semiconductors. Besides, g-CN amorphous with highly surface area also contributes to harvest light irradiation during photocatalytic activity. The optimized TTC-450 heterostructure showed a super H generation efficiency than those of pure g-CN and other samples. Besides, TTC-450 sample also exhibited great recyclability after 4 runs. The proposed mechanism illustrates the efficient movement of generated electrons in TTC system, which leads to high H evolution efficiency. Moreover, the obtained results consistently emphasize the TiO/TiC/g-CN composite would be a unique material for H production and broaden applications of MXene materials.
光催化制氢(H)是一种可再生能源,它可以用来解决环境问题和全球能源危机。因此,有必要通过使用多助催化剂来探索最有效的光催化剂,因为不同组分之间存在密切的相互作用。因此,我们已经通过煅烧技术从 g-CN 和 TiC MXene 合成了 TiO/TiC/g-CN(TTC)光催化剂,并将该复合材料用于 H 的产生。利用 TiC MXene 中的钛原子,在体内开发了二氧化钛(TiO),这导致了金属材料和半导体之间形成紧密的异质结构。此外,具有高表面积的 g-CN 非晶态也有助于在光催化活性过程中收集光辐射。优化后的 TTC-450 异质结构的 H 产生效率高于纯 g-CN 和其他样品。此外,TTC-450 样品在经过 4 次循环后仍具有很好的可回收性。所提出的机制说明了在 TTC 体系中生成电子的有效迁移,这导致了高的 H 产生效率。此外,所得结果一致强调 TiO/TiC/g-CN 复合材料将是用于 H 生产的独特材料,并拓宽了 MXene 材料的应用。