College of Material and Chemical Engineering, Pingxiang University, Pingxiang 337055, China.
Key Laboratory of Applied Surface and Colloid Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, Shaanxi Normal University, Xi'an 710062, China.
Molecules. 2023 Jun 20;28(12):4862. doi: 10.3390/molecules28124862.
Regulating bulk polymeric carbon nitride (PCN) into nanostructured PCN has long been proven effective in enhancing its photocatalytic activity. However, simplifying the synthesis of nanostructured PCN remains a considerable challenge and has drawn widespread attention. This work reported the one-step green and sustainable synthesis of nanostructured PCN in the direct thermal polymerization of the guanidine thiocyanate precursor via the judicious introduction of hot water vapor's dual function as gas-bubble templates along with a green etching reagent. By optimizing the temperature of the water vapor and polymerization reaction time, the as-prepared nanostructured PCN exhibited a highly boosted visible-light-driven photocatalytic hydrogen evolution activity. The highest H evolution rate achieved was 4.81mmol∙g∙h, which is over four times larger than that of the bulk PCN (1.19 mmol∙g∙h) prepared only by thermal polymerization of the guanidine thiocyanate precursor without the assistance of bifunctional hot water vapor. The enhanced photocatalytic activity might be attributed to the enlarged BET specific surface area, increased active site quantity, and highly accelerated photo-excited charge-carrier transfer and separation. Moreover, the sustainability of this environmentally friendly hot water vapor dual-function mediated method was also shown to be versatile in preparing other nanostructured PCN photocatalysts derived from other precursors such as dicyandiamide and melamine. This work is expected to provide a novel pathway for exploring the rational design of nanostructured PCN for highly efficient solar energy conversion.
将块状聚合碳氮化物(PCN)调节为纳米结构 PCN 已被证明可以有效提高其光催化活性。然而,简化纳米结构 PCN 的合成仍然是一个相当大的挑战,引起了广泛关注。本工作报道了通过在胍基硫氰酸盐前体的直接热聚合中巧妙引入热水蒸气的双重功能(作为气泡模板和绿色蚀刻试剂),一步绿色可持续合成纳米结构 PCN。通过优化水蒸汽温度和聚合反应时间,所制备的纳米结构 PCN 表现出显著增强的可见光驱动光催化析氢活性。所获得的最高 H2 析出速率为 4.81mmol∙g∙h,是仅通过热聚合胍基硫氰酸盐前体(没有双功能热水蒸气的辅助)制备的块状 PCN(1.19 mmol∙g∙h)的四倍以上。增强的光催化活性可能归因于较大的 BET 比表面积、增加的活性位点数量以及光激发载流子的快速转移和分离。此外,这种环保的热水蒸气双重功能介导方法的可持续性也被证明在制备其他源自其他前体(如双氰胺和三聚氰胺)的纳米结构 PCN 光催化剂方面具有多功能性。这项工作有望为探索高效太阳能转化用的纳米结构 PCN 的合理设计提供新途径。