材料科学
光催化
载流子
结晶度
有机半导体
纳米颗粒
异质结
重组
半导体
化学物理
光化学
电荷(物理)
光电子学
载流子寿命
电子迁移率
纳米技术
氢
可见光谱
电子转移
化学工程
吸收(声学)
超快激光光谱学
作者
Huixiang Sheng,J Zhou,Xingxing Shen,Bo Li,Yongqiang Chai,Jun Luo,Dan He,Minghua Li,Ruiyang Xiao,Xiang Xiong,Chunru Wang,Fuwen Zhao
摘要
ABSTRACT Organic semiconductor bulk‐heterojunction nanoparticles have emerged as promising photocatalysts, due to their strong visible absorption in the Vis–NIR region, excellent optical/electronic adjustability, and spatially abundant interfaces for charge carrier separation. However, organic semiconductors generally suffer from inferior crystallinity and high lattice's susceptibility to molecular vibrations, which leads to the localization of separated charge carriers and severe recombination in nanoparticles, limiting the further improvement of photocatalytic H 2 evolution rate. Herein, a methoxy‐functionalized electron acceptor, ITIC‐OMe, is developed and presents enhanced crystallinity, more compact molecular packing and weaker electron–phonon coupling, compared to the parent ITIC. This enables ZnTPP‐3O:ITIC‐OMe bulk‐heterojunction nanoparticles to afford more ordered molecular stacking, reduced charge transfer resistance, and inhibited charge back transfer for triplet state formation, thereby suppressing charge carrier recombination and facilitating charge transport to the nanoparticle surface for proton reduction. Consequently, the photocatalyst based on ZnTPP‐3O:ITIC‐OMe bulk‐heterojunction nanoparticles achieves an impressive hydrogen evolution rate up to 1017.7 mmol g −1 h −1 under AM 1.5G illumination, which is the record for organic photocatalysts so far. It highlights that suppressing charge carrier recombination via finely molecular design is a powerful route to enhance the photocatalytic H 2 evolution performance.
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