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原位衍生自 NaCo(PO)PO 的 CoO(OH)/C 纳米复合材料作为可持续水分解的电催化剂。

CoO(OH)/C nanocomposites in situ derived from NaCo(PO)PO as sustainable electrocatalysts for water splitting.

机构信息

Jilin Supercapacitor Engineering Laboratory, College of Physics, Jilin University, 2699 Qianjin str., 130012 Changchun, P.R. China.

出版信息

Dalton Trans. 2018 Nov 13;47(44):15703-15713. doi: 10.1039/c8dt03593h.

Abstract

The great interest in developing efficient and stable bifunctional electrodes for electrocatalytic water splitting is due to the rapid growth in demand for sustainable and renewable energy sources. Here, we present an original electrode design strategy which can be used for the oxygen evolution reaction (OER) and the hydrogen evolution reaction (HER). This strategy is based on the direct formation of active catalytic material on the electrode surface during electrolysis. In our case, cobalt hydroxides (β-Co(OH)2 and CoO(OH) for HER and OER, respectively) in a carbon matrix are produced by the chemical and electrochemical transformation of various forms (glass, glass-ceramic and polycrystalline) of Na4Co3(PO4)2P2O7 during electrolysis in 1 M NaOH solution. The CoOx(OH)y/C composites demonstrate remarkable stability over time (more than 50 h), and bifunctional catalytic activity with an overall water splitting potential close to 1.8 V at a current density of 10 mA cm-2. The range of overpotentials for OER and HER is 346-365 and 326-369 mV, respectively. These electrodes can invert the OER and HER processes with a total overpotential of 0.6 V in the cell. This remarkable CoO(OH) ↔ Co(OH)2 inversion in the carbon matrix its further utility for creating bifunctional electrodes for long-life water splitting cells.

摘要

开发高效稳定的双功能电极用于电催化水分解的巨大兴趣源于对可持续和可再生能源的需求迅速增长。在这里,我们提出了一种原始的电极设计策略,可用于析氧反应(OER)和析氢反应(HER)。该策略基于在电解过程中在电极表面上直接形成活性催化材料。在我们的情况下,通过在 1 M NaOH 溶液中电解时各种形式(玻璃,玻璃陶瓷和多晶)的 Na4Co3(PO4)2P2O7 的化学和电化学转化,在碳基质中生成钴氢氧化物(β-Co(OH)2 和 CoO(OH),分别用于 HER 和 OER)。CoOx(OH)y/C 复合材料表现出随着时间的推移显著的稳定性(超过 50 小时),并且在 10 mA cm-2 的电流密度下具有接近 1.8 V 的整体水分解电势的双功能催化活性。OER 和 HER 的过电势范围分别为 346-365 mV 和 326-369 mV。这些电极可以在电池中以 0.6 V 的总过电势反转 OER 和 HER 过程。这种在碳基质中的 CoO(OH) ↔ Co(OH)2 显著反转及其在用于长寿命水分解电池的双功能电极中的进一步应用。

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