葡萄糖酸
微型多孔材料
量子点
光催化
材料科学
化学工程
量子效率
异质结
纳米颗粒
光化学
光电子学
纳米技术
催化作用
化学
复合材料
有机化学
工程类
作者
Fang-Yuan Bai,Jingru Han,Jun Chen,Yue Yuan,Ke Wei,Yuan-Sheng Shen,Yi‐Fu Huang,Heng Zhao,Jing Liu,Zhi‐Yi Hu,Yu Li,Bao‐Lian Su
标识
DOI:10.1016/j.jcis.2023.01.123
摘要
Glucose conversion assisted photocatalytic water splitting technology to simultaneously produce H2 and high value-added chemicals is a promising method for alleviating the energy shortage and environmental crisis. In this work, we constructing type II heterojunction by in-situ coupling Zn0.3Cd0.7S quantum dots (ZCS QDs) on three-dimensionally ordered microporous CaTiO3 (3DOM CTO) for photocatalytic H2 production and glucose conversion. The DFT calculations demonstrate that substitution of Zn on the Cd site improves the separation and transmission of photogenerated carriers. Therefore, 3DOM CTO-ZCS composite exhibits best H2 production performance (2.81 mmol g-1h-1) and highest apparent quantum efficiency (AQY) (5.56 %) at 365 nm, which are about 47 and 18 times that of CTO nanoparticles (NPs). The improved catalytic performance ascribed to not only good mass diffusion and exchange, highly efficient light harvesting of 3DOM structure, but also the efficient charges separation of type Ⅱ heterojunction. The investigation on photocatalytic mechanism indicates that the glucose is mainly converted to gluconic acid and lactic acid, and the control reaction step is gluconic acid to lactic acid. The selectivity for gluconic acid on 3DOM CTO-ZCS is 85.65 %. Our work here proposes a green sustainable method to achieve highly efficient H2 production and selective conversion of glucose to gluconic acid.
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