制氢
能量转换效率
材料科学
光催化
太阳能
氢
无定形固体
化学工程
磷化物
催化作用
黑磷
能量转换
分解水
磷
纳米技术
氢燃料
化学
光电子学
有机化学
工程类
冶金
物理
热力学
生物
生态学
作者
Bin Tian,Bining Tian,Bethany Smith,Mary Scott,Ruinian Hua,Lei Qin,Yue Tian
标识
DOI:10.1038/s41467-018-03737-4
摘要
Abstract Solar-driven water splitting using powdered catalysts is considered as the most economical means for hydrogen generation. However, four-electron-driven oxidation half-reaction showing slow kinetics, accompanying with insufficient light absorption and rapid carrier combination in photocatalysts leads to low solar-to-hydrogen energy conversion efficiency. Here, we report amorphous cobalt phosphide (Co-P)-supported black phosphorus nanosheets employed as photocatalysts can simultaneously address these issues. The nanosheets exhibit robust hydrogen evolution from pure water (pH = 6.8) without bias and hole scavengers, achieving an apparent quantum efficiency of 42.55% at 430 nm and energy conversion efficiency of over 5.4% at 353 K. This photocatalytic activity is attributed to extremely efficient utilization of solar energy (~75% of solar energy) by black phosphorus nanosheets and high-carrier separation efficiency by amorphous Co-P. The hybrid material design realizes efficient solar-to-chemical energy conversion in suspension, demonstrating the potential of black phosphorus-based materials as catalysts for solar hydrogen production.
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