Cobalt-Based Molecular Catalysts Designed for Significantly Enhanced Low-Bias Photoelectrochemical Water Oxidation over BiVO 4

光电流 双功能 催化作用 析氧 材料科学 法拉第效率 光电化学 电解质 化学工程 光化学 分解水 氧化还原 密度泛函理论 分子动力学 化学 光电化学电池 太阳能燃料 离域电子 协同催化 纳米技术 无机化学 电子转移 甲烷厌氧氧化 人工光合作用 动力学
作者
Tahir Naveed Jahangir,Muhammad Ashraf,Safwat Abdel‐Azeim,Sardaraz Khan,Nisar Ullah,Tarek A. Kandiel
出处
期刊:ACS Catalysis [American Chemical Society]
卷期号:16 (1): 356-369 被引量:1
标识
DOI:10.1021/acscatal.5c06139
摘要

The development of molecular oxygen evolution catalysts (OECs) that function efficiently at a low applied potential and can be readily anchored to photoelectrodes is crucial for building bias-free photoelectrochemical (PEC) water-splitting devices. In this work, we designed three robust cobalt-based molecular OECs using distinct organic bifunctional linkers: dipicolyl alanine acid (DPAA), dipicolyl glycine acid (DPGA), and dipicolyl-4-aminobenzoic acid (DABA). These linkers were immobilized onto BiVO4 photoanodes to coordinate Co2+ ions. All modified photoanodes exhibited enhanced PEC activity, with Co-DABA/BiVO4 achieving the highest photocurrent density of 3.45 mA cm–2 at 0.6 VRHE─representing enhancements of 1.66-, 1.63-, and 8.92-fold over Co-DPAA/BiVO4, Co-DPGA/BiVO4, and pristine BiVO4, respectively. At this potential, Co-DABA/BiVO4 also attained a Faradaic efficiency of 91% and a turnover frequency (TOF) of 4.54 s–1. Spectroscopic and photoelectrochemical analyses revealed prolonged hole lifetimes, improved charge separation, and accelerated charge transfer kinetics. The superior performance is attributed to the phenylene group in DABA, which promotes hole transfer and increases the oxidation capability, as supported by DFT calculations. Solid-state simulations confirmed hole localization at Co-DABA, with partial delocalization extending to the BiVO4 surface, indicating strong electronic coupling that promotes hole transfer from BiVO4 to the electrolyte across the Co-DABA molecular OEC. The Co-DABA/BiVO4 demonstrated significant operational stability and a TOF surpassing many of the best-performing Ru- and Co-based molecular OECs, highlighting its strong potential for efficient, scalable solar fuel generation.
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