Qiu Chuntian, Sun Yangyang, Xu Yangsen, Zhang Bing, Zhang Xu, Yu Lei, Su Chenliang
SZU-NUS Collaborative Center and International Collaborative Laboratory of 2D Materials for Optoelectronic Science & Technology of Ministry of Education, Institute of Microscale Optoelectronics, Shenzhen University, Shenzhen, 518060, P. R. China.
School of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou, 225002, P. R. China.
ChemSusChem. 2021 Aug 23;14(16):3344-3350. doi: 10.1002/cssc.202101041. Epub 2021 Jul 22.
Booming of photocatalytic water splitting technology (PWST) opens a new avenue for the sustainable synthesis of high-value-added hydrogenated and oxidized fine chemicals, in which the design of efficient semiconductors for the in-situ and synergistic utilization of photogenerated redox centers are key roles. Herein, a porous polymeric carbon nitride (PPCN) with a crystalline backbone was constructed for visible light-induced photocatalytic hydrogen generation by photoexcited electrons, followed by in-situ utilization for olefin hydrogenation. Simultaneously, various alcohols were selectively transformed to valuable aldehydes or ketones by photoexcited holes. The porosity of PPCN provided it with a large surface area and a short transfer path for photogenerated carriers from the bulk to the surface, and the crystalline structure facilitated photogenerated charge transfer and separation, thus enhancing the overall photocatalytic performance. High reactivity and selectivity, good functionality tolerance, and broad reaction scope were achieved by this concerted photocatalysis system. The results contribute to the development of highly efficient semiconductor photocatalysts and synergistic redox reaction systems based on PWST for high-value-added fine chemical production.
光催化水分解技术(PWST)的蓬勃发展为高附加值氢化和氧化精细化学品的可持续合成开辟了一条新途径,其中设计用于原位和协同利用光生氧化还原中心的高效半导体起着关键作用。在此,构建了一种具有结晶骨架的多孔聚合物氮化碳(PPCN),用于通过光激发电子进行可见光诱导的光催化产氢,随后原位用于烯烃氢化。同时,各种醇通过光激发空穴被选择性地转化为有价值的醛或酮。PPCN的孔隙率为其提供了大表面积以及光生载流子从体相到表面的短传输路径,并且晶体结构促进了光生电荷转移和分离,从而提高了整体光催化性能。这种协同光催化体系实现了高反应活性和选择性、良好的官能团耐受性以及广泛的反应范围。这些结果有助于基于PWST开发用于高附加值精细化学品生产的高效半导体光催化剂和协同氧化还原反应体系。