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通过量子限域效应优化具有海绵状结构的 S 掺杂聚(六嗪亚胺)的能带结构以提高可见光光催化 H2 生成。

Optimizing the band structure of sponge-like S-doped poly(heptazine imide) with quantum confinement effect towards boosting visible-light photocatalytic H generation.

机构信息

School of Chemistry and Chemical Engineering, Institute of Advanced Functional Materials for Energy, Jiangsu University of Technology, Changzhou 213001, Jiangsu Province, PR China.

School of Chemistry and Chemical Engineering, Institute of Advanced Functional Materials for Energy, Jiangsu University of Technology, Changzhou 213001, Jiangsu Province, PR China.

出版信息

J Colloid Interface Sci. 2023 Aug 15;644:116-123. doi: 10.1016/j.jcis.2023.03.208. Epub 2023 Apr 12.

Abstract

Simultaneously manipulating the nanostructure and band structure of semiconductors for boosting the photocatalytic performance of photocatalyts is highly desirable. Herein, a series of hierarchical sponge-like S-doped poly(heptazine imide) (HS-SPHI) assembled by ultrathin nanosheets were successfully fabricated via a facile bottom-up supramolecular preassembly approach using melamine (MA) and trithiocyanuric acid (TTCA) as precursors. Benefiting from the synergistic effect of the S-doping and their unique hierarchical porous structure coupled with quantum confinement effect, the as-obtained HS-SPHIs are endowed with extended visible-light response, improved charge separation efficiency, enlarged specific surface area, and enhanced thermodynamic driving force for water reduction. As a result, all the HS-SPHIs exhibit remarkable boosting visible-light (>420 nm) photocatalytic Hevolution (PHE). The maximum PHE rate achieved by HS-SPHI-650 can be up to 3584.2 μmol gh, with an apparent quantum efficiency (AQE) of 14.67 % at 420 nm, which is about 22.4 times than that of pristine bulk g-CN (B-GCN). We believe that this work will provide a significant strategy for optimizing the band structure of PCN in order to improve its photocatalytic performance.

摘要

同时操纵半导体的纳米结构和能带结构以提高光催化剂的光催化性能是非常理想的。在此,通过使用三聚氰胺(MA)和三聚氰酸(TTCA)作为前体的简便的自下而上的超分子预组装方法,成功地制备了一系列由超薄纳米片组装而成的分级海绵状 S 掺杂聚(嗪二亚胺)(HS-SPHI)。得益于 S 掺杂和其独特的分级多孔结构与量子限制效应的协同作用,所获得的 HS-SPHI 具有扩展的可见光响应、提高的电荷分离效率、增大的比表面积和增强的还原水的热力学驱动力。结果,所有 HS-SPHI 都表现出显著的可见光(>420nm)光催化析氢(PHE)增强。HS-SPHI-650 的最大 PHE 速率可高达 3584.2μmolgh,在 420nm 时的表观量子效率(AQE)为 14.67%,约为原始块状 g-CN(B-GCN)的 22.4 倍。我们相信,这项工作将为优化 PCN 的能带结构以提高其光催化性能提供一个重要的策略。

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