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反蛋白石结构的g-C3N4可控合成及其优异的光催化产氢性能

陈一文 李铃铃 徐全龙 Tina D(u)ren 范佳杰 马德琨

物理化学学报2021,Vol.37Issue(6):128-136,9.
物理化学学报2021,Vol.37Issue(6):128-136,9.DOI:10.3866/PKU.WHXB202009080

反蛋白石结构的g-C3N4可控合成及其优异的光催化产氢性能

Controllable Synthesis of g-C3N4 Inverse Opal Photocatalysts for Superior Hydrogen Evolution

陈一文 1李铃铃 2徐全龙 3Tina D(u)ren 4范佳杰 1马德琨4

作者信息

  • 1. 郑州大学,材料科学与工程学院,郑州450002
  • 2. 广东工业大学,材料与能源学院,广州510006
  • 3. 温州大学,化学与材料工程学院,浙江省碳材料重点实验室,浙江温州325027
  • 4. Centre for Advanced Separations Engineering,Department of Chemical Engineering,University of Bath,Bath BA27AY,UK
  • 折叠

摘要

Abstract

The growing frustration from facing energy shortages and unbalanced environmental issues has obstructed the long-term development of human society.Semiconductor-based photocatalysis,such as water splitting,transfers solar energy to storable chemical energy and is widely considered an economic and clean solution.Although regarded as a promising photocatalyst,the low specific surface area of g-C3N4 crucially restrains its photocatalytic performance.The macro-mesoporous architecture provides effective channels for mass transfer and full-light utilization and improved the efficiency of the photocatalytic reaction.Herein,g-C3N4 with an inverse opal (IO) structure was rationally fabricated using a well-packed SiO2 template,which displayed an ultrahigh surface area (450.2 m2·g-1) and exhibited a higher photocatalytic H2 evolution rate (21.22 μmol·h-1),almost six times higher than that of bulk g-C3N4 (3.65μmol·h-1).The IO g-C3N4 demonstrates better light absorption capacity than bulk g-C3N4,primarily in the visible spectra range,owing to the multiple light scattering effect of the three-dimensional (3D) porous structure.Meanwhile,a lower PL intensity,longer emission lifetime,smaller Nyquist semicircle,and stronger photocurrent response (which synergistically give rise to the suppressed recombination of charge carriers) decrease the interfacial charge transfer resistance and boost the formation of photogenerated electron-hole pairs.Moreover,the existing N vacancies intensify the local electron density,helping increase the number of photoexcitons.The N2 adsorption-desorption test revealed the existence of ample mesopores and macropores and high specific surface area in IO g-C3N4,which exposes more active edges and catalytic sites.Optical behavior,electron paramagnetic resonance,and electrochemical characterization results revealed positive factors,including enhanced light utilization,improved photogenerated charge separation,prolonged lifetime,and fortified IO g-C3N4 with excellent photocatalytic performance.This work provides an important contribution to the structural design and property modulation of photocatalysts.

关键词

g-C3N4/反蛋白(IO)/光催化/产氢

Key words

g-C3N4/Inverse opal (IO)/Photocatalysis/H2 evolution

分类

化学化工

引用本文复制引用

陈一文,李铃铃,徐全龙,Tina D(u)ren,范佳杰,马德琨..反蛋白石结构的g-C3N4可控合成及其优异的光催化产氢性能[J].物理化学学报,2021,37(6):128-136,9.

基金项目

This work was supported by the Foundation of National Nature Science Foundation of China (21905209,21673160,52073263),Zhejiang Provincial Natural Science Foundation of China for Distinguished Young Scholars (LR16B010002),and China Scholarship Council (201907045030).国家自然科学基金(21905209,21673160,52073263),浙江省自然科学基金(LR16B010002)与国家留学基金(201907045030)资助 (21905209,21673160,52073263)

物理化学学报

OA北大核心CSCDCSTPCDSCI

1000-6818

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