材料科学
光催化
双金属片
异质结
电子转移
制氢
化学工程
半导体
三元运算
光催化分解水
纳米点
催化作用
化学物理
纳米技术
硫化物
光化学
光敏剂
量子点
分解水
混合材料
硫化氢
铂金
硫化锌
电子供体
量子产额
激子
氢
电场
作者
Hao Yu,Yi Chang,Lei Zhang,Guanglei Ma,Mingjun Ren,Xueqing Ren,Yuming Guo,Xiaoming Ma
摘要
ABSTRACT The interaction between different components in the hybrid photocatalytic material system may modulate the interfacial charge transfer behaviors and thus exerts an influence on the overall photocatalytic performance. However, developing effective strategies to enhance interfacial charge transfer in hybrid material systems for improved photocatalytic performance remains a challenging topic. Herein, a proof‐of‐concept photocatalytic hydrogen evolution system has been fabricated by the hybridization of platinum tetracaboxyporphyrin (PtTCPP), as photosensitizer and electron‐transporting carrier, and the ternary bimetallic sulfide nanodot Cd 0.5 Zn 0.5 S (nCZS), as catalytic center. The strong coupled interfacial molecule/inorganic semiconductor heterostructure establishes molecular‐level electron transfer channels and accelerates charge migration. By virtue of the coordination bonds between nCZS and PtTCPP, a substantial electrostatic potential difference is set‐up and helps to form a 3.48 times higher interfacial electric field than that in pristine nCZS, which promotes the rapid transfer of electrons to nCZS. Resultantly, the nCZS/PtTCPP shows an extremely high hydrogen production rate of 86.7 mmol·g −1 ·h −1 , surprising all the related hybrid photocatalysts. Notably, an outstanding apparent quantum yield (AQY) up to 82.63% and excellent long‐term photocatalytic stability are also achieved in this hybrid system. The work provides a new insight on design of interfacial molecule/inorganic semiconductor heterostructures for efficient solar‐to‐chemical energy conversion.
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