光电阴极
石墨烯
材料科学
氧化物
能量转换效率
氢
光电子学
制氢
肖特基势垒
纳米技术
分解水
氢燃料
化学工程
催化作用
光催化
化学
物理
有机化学
量子力学
二极管
工程类
冶金
电子
作者
Junxia Shen,Yongjie Wang,Cong Chen,Zhihe Wei,Pengfei Song,Shuai Zou,Wen Dong,Xiaodong Su,Yang Peng,Ronglei Fan,Mingrong Shen
摘要
Photoelectrochemical (PEC) water splitting has been intensively studied as a sustainable approach to directly convert intermittent solar energy into storable hydrogen fuels. Its practical application, however, has been tethered by the trade-off between photoelectrode efficiency and stability. Herein, this work demonstrates a facile strategy to design highly efficient and stable Si photocathodes by utilizing the reduced graphene oxide (rGO) as a multifunctional interlayer to bridge the Pt catalysts and p-Si. The covalently grafted rGO layer forms a Schottky junction with p-Si allowing effective charge carrier extraction required for high efficiency, and, simultaneously, protects the Si surface and anchors Pt catalysts with enhanced stability. Consequently, the as-fabricated Pt/rGO/p-Si photocathodes exhibit an impressive PEC performance under simulated AM1.5G illumination with a high applied bias photon-to-current efficiency (ABPE) of 4.9% and stability of over 110 hours, outperforming the Pt/p-Si control sample and state-of-the-art p-Si based photocathodes. In summary, this work offers a viable path for developing high-performance solar-to-fuel conversion devices in the future.
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