Dai Lei, Sun Fazhe, Fu Peng, Li Hetong
School of Agricultural Engineering and Food Science, Shandong Research Center of Engineering & Technology for Clean Energy, Shandong University of Technology Zibo 255000 China
Analysis and Testing Center, Shandong University of Technology Zibo 255000 China
RSC Adv. 2022 May 4;12(21):13381-13392. doi: 10.1039/d2ra01918c. eCollection 2022 Apr 28.
The performance of semiconductor photocatalysts has been limited by rapid electron-hole recombination. One strategy to overcome this problem is to construct a heterojunction structure to improve the survival rate of electrons. In this context, a novel g-CN/TiO/CuO double-heterojunction photocatalyst was developed and characterized. Its photocatalytic activity for hydrogen production from water-methanol photocatalytic reforming was explored. Methanol is always used to eliminate semiconductor holes. The g-CN/TiO/CuO double-heterojunction photocatalyst with a narrow bandgap of ∼1.38 eV presented excellent photocatalytic activity for hydrogen evolution (97.48 μmol (g h)) under visible light irradiation. Compared with g-CN/TiO and CuO/TiO, the photocatalytic activity of g-CN/TiO/CuO for hydrogen production was increased approximately 7.6 times and 1.8 times, respectively. Below 240 °C, the sensitivity of g-CN/TiO/CuO to ammonia was approximately 90% and 46% higher than that of g-CN/TiO and CuO/TiO, respectively. The enhancement of the photocatalytic activity and gas sensing properties of the g-CN/TiO/CuO composite resulted from the close interface contact established by the double heterostructure. The trajectory of electrons in the double heterojunction conformed to the S-scheme. UV-vis, PL, and transient photocurrent characterization showed that the double heterostructure effectively inhibited the recombination of e/h pairs and enhanced the migration of photogenerated electrons.
半导体光催化剂的性能一直受到电子-空穴快速复合的限制。克服这一问题的一种策略是构建异质结结构以提高电子的存活率。在此背景下,开发并表征了一种新型的g-CN/TiO/CuO双异质结光催化剂。探索了其对水-甲醇光催化重整制氢的光催化活性。甲醇通常用于消除半导体空穴。带隙约为1.38 eV的g-CN/TiO/CuO双异质结光催化剂在可见光照射下表现出优异的析氢光催化活性(97.48 μmol/(g·h))。与g-CN/TiO和CuO/TiO相比,g-CN/TiO/CuO的制氢光催化活性分别提高了约7.6倍和1.8倍。在240℃以下,g-CN/TiO/CuO对氨的灵敏度分别比g-CN/TiO和CuO/TiO高约90%和46%。g-CN/TiO/CuO复合材料光催化活性和气体传感性能的增强源于双异质结构建立的紧密界面接触。双异质结中电子的轨迹符合S型。紫外-可见光谱、光致发光光谱和瞬态光电流表征表明,双异质结构有效地抑制了e/h对的复合,增强了光生电子的迁移。