用CoTiO3钙钛矿作为双功能电催化剂,通过持久的水裂解促进氢和氧的析出

IF 2.4 4区 化学 Q3 CHEMISTRY, PHYSICAL
Ionics Pub Date : 2025-02-11 DOI:10.1007/s11581-025-06143-1
Suhriday Barman, Partha Pratim Sahu
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引用次数: 0

摘要

通过水分解生产氢作为清洁能源是应对全球变暖问题的重要步骤之一。在这里,我们提出了一种利用铁(Fe)螺距圆柱形电极涂覆钛酸钴(CoTiO3)钙钛矿纳米颗粒的新方法,该方法采用微波辅助湿化学方法合成。由于电极边缘锋利,电极的铁螺距减轻了电极表面气泡的积聚。因此,在其电极表面涂覆CoTiO3纳米颗粒可以增强电催化活性。值得注意的是,析氢反应(HER)和析氧反应(OER)分别需要66 mV和77 mV的低过电位才能实现10 mA/cm2的电流密度,HER和OER的塔菲斜率分别为34.81 mV/dec和31.73 mV/dec。令人印象深刻的是,在500 h的电化学水分解中,氢的转化效率为61.27%,波动最小(±5%)。这些发现为大规模生产氢能提供了一条有希望的途径,使用地球上可用的材料,并确保工业应用的高电流密度和长期耐用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancement of hydrogen and oxygen evolution through durable water splitting using CoTiO3 perovskite as a bifunctional electrocatalyst

The production of hydrogen as a clean energy source through water splitting is one of the essential steps to deal with the problems of global warming. Here, we present a novel approach utilizing iron (Fe) screw pitch cylindrical electrodes coated with cobalt titanate (CoTiO3) perovskite nanoparticles, which was synthesized using a microwave-assisted wet chemical method. The Fe screw pitch of electrode mitigates bubble accumulation on electrode surfaces due to the sharp edges. Hence, electro-catalytic activity is enhanced by using coated CoTiO3 nanoparticles on its electrode surface. Notably, low overpotentials of 66 mV and 77 mV are required for hydrogen evolution reaction (HER) and oxygen evolution reaction (OER), respectively, to achieve a current density of 10 mA/cm2, and low Tafel slopes of 34.81 mV/dec and 31.73 mV/dec are obtained for HER and OER, respectively. Impressively, a hydrogen conversion efficiency of 61.27% is obtained over 500 h of electrochemical water splitting with minimal fluctuation (± 5%). These findings demonstrate a promising avenue for the mass production of hydrogen energy, using earth available materials, and assure high current density and long-term durability for industrial applications.

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来源期刊
Ionics
Ionics 化学-电化学
CiteScore
5.30
自引率
7.10%
发文量
427
审稿时长
2.2 months
期刊介绍: Ionics is publishing original results in the fields of science and technology of ionic motion. This includes theoretical, experimental and practical work on electrolytes, electrode, ionic/electronic interfaces, ionic transport aspects of corrosion, galvanic cells, e.g. for thermodynamic and kinetic studies, batteries, fuel cells, sensors and electrochromics. Fast solid ionic conductors are presently providing new opportunities in view of several advantages, in addition to conventional liquid electrolytes.
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