材料科学
分解水
光电流
钝化
掺杂剂
可逆氢电极
介电谱
电解质
化学工程
兴奋剂
电化学
纳米技术
光电子学
电极
光催化
化学
物理化学
工作电极
图层(电子)
工程类
催化作用
生物化学
作者
Jun Beom Hwang,Periyasamy Anushkkaran,Weon‐Sik Chae,Sun Hee Choi,Hyun Hwi Lee,Jum Suk Jang
标识
DOI:10.1021/acsaem.3c01079
摘要
Photoelectrochemical (PEC) water splitting activity of Fe 2 O 3 is restricted by the rapid recombination of photocarriers both in bulk and on the surface and slack water oxidation kinetics. Herein, this work describes a method for designing and constructing a Fe 2 O 3 photoanode by sequential in-situ and ex-situ incorporation of dopants for an effective PEC water splitting strategy. In-situ Zr doping can be used to improve the bulk conductivity of the photoanode by augmenting the majority carriers while generating surface defects that limit effective water oxidation at the photoelectrode/electrolyte interface. Therefore, the main emphasis of this study is on ex-situ codoping with Be, which boosts the surface charge transfer properties via the passivation of surface-trapping states, thus leading to effective hole migration to the electrolyte. As a consequence, the Zr/Be codoped Fe 2 O 3 photoanode (Zr/Be-HT) attained an 83% improved photocurrent density (1.92 mA/cm 2 ) than that of bare-Fe 2 O 3 at a water oxidation potential of 1.23 V vs. RHE. Mott–Schottky plots, electrochemical impedance spectroscopy, a transient time constant, and bulk and surface charge separation efficiency evaluations were conducted to comprehend the functions of Zr and Be dopants. Finally, the Co–Pi cocatalyst-coated Zr/Be-HT photoanode produced 33.75 and 17.76 μmol/h H 2 and O 2 gases, respectively, at 1.23 V vs. RHE. This codoping strategy could lead to a more sustainable and efficient method for producing hydrogen fuel.
科研通智能强力驱动
Strongly Powered by AbleSci AI