{"title":"定制Ni(OH)2/CuCo/Ni(OH)2复合界面用于高效持久的尿素氧化反应","authors":"Sahanaz Parvin, Emmanuel Aransiola, Mohamed Ammar, Seunghoon Lee, Lihua Zhang, Juliane Weber, Jonas Baltrusaitis","doi":"10.1021/acsami.4c14041","DOIUrl":null,"url":null,"abstract":"Electrocatalytic urea oxidation reaction is a promising alternative to water oxidation for more efficient hydrogen production due to its significantly lower thermodynamic potential. However, achieving efficient electrochemical urea oxidation remains a formidable challenge, and development of an improved electrocatalyst with an optimal physicochemical and electronic structure toward urea oxidation is desired. This can be accomplished by designing a tailored two-dimensional composite with an abundance of active sites in a favorable electronic environment. In this study, we demonstrate the fabrication of a self-supported, electrochemically grown metal/mixed metal hydroxide composite interface via a two-step electrodeposition method. Specifically, Ni(OH)<sub>2</sub> was electrodeposited on the top of the CuCo layer (Ni(OH)<sub>2</sub>/CuCo/Ni(OH)<sub>2</sub>), and the resultant 2D composite structure required 1.333 ± 0.006 V to oxidize urea electrochemically to achieve a current density of 10 mA cm<sup>–2</sup>, which outperformed the potential required for individual components, Ni(OH)<sub>2</sub> and CuCo. The high density of Ni<sup>3+</sup> active sites in the composite structure facilitated high electrocatalyst activity and stability. Ni(OH)<sub>2</sub>/CuCo/Ni(OH)<sub>2</sub> was stable for at least 50 h without any noticeable degradation in the activity or alteration of the morphology. As a bifunctional electrocatalyst, the material also exhibited excellent performance for water oxidation with 260 mV overpotential and 50 h stability. In a two-electrode configuration coupled with a NiMo cathode catalyst, the electrolyzer required 1.42 V cell voltage for overall urea splitting. Overall, the engineered Ni(OH)<sub>2</sub>/CuCo/Ni(OH)<sub>2</sub> composite demonstrated exceptional potential as an efficient and stable electrocatalyst for both urea and water oxidation reactions, paving the way for more effective hydrogen production technologies.","PeriodicalId":5,"journal":{"name":"ACS Applied Materials & Interfaces","volume":"13 1","pages":""},"PeriodicalIF":8.2000,"publicationDate":"2024-11-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Tailored Ni(OH)2/CuCo/Ni(OH)2 Composite Interfaces for Efficient and Durable Urea Oxidation Reaction\",\"authors\":\"Sahanaz Parvin, Emmanuel Aransiola, Mohamed Ammar, Seunghoon Lee, Lihua Zhang, Juliane Weber, Jonas Baltrusaitis\",\"doi\":\"10.1021/acsami.4c14041\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Electrocatalytic urea oxidation reaction is a promising alternative to water oxidation for more efficient hydrogen production due to its significantly lower thermodynamic potential. 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The high density of Ni<sup>3+</sup> active sites in the composite structure facilitated high electrocatalyst activity and stability. Ni(OH)<sub>2</sub>/CuCo/Ni(OH)<sub>2</sub> was stable for at least 50 h without any noticeable degradation in the activity or alteration of the morphology. As a bifunctional electrocatalyst, the material also exhibited excellent performance for water oxidation with 260 mV overpotential and 50 h stability. In a two-electrode configuration coupled with a NiMo cathode catalyst, the electrolyzer required 1.42 V cell voltage for overall urea splitting. 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引用次数: 0
摘要
电催化尿素氧化反应由于其显著降低的热力学势,是一种很有前途的替代水氧化制氢的方法。然而,实现高效的电化学尿素氧化仍然是一个艰巨的挑战,开发一种具有最佳物理化学和电子结构的改进的电催化剂是尿素氧化所需要的。这可以通过在有利的电子环境中设计具有丰富活性位点的定制二维复合材料来实现。在这项研究中,我们展示了通过两步电沉积方法制备自支撑的电化学生长金属/混合金属氢氧化物复合界面。具体来说,Ni(OH)2被电沉积在CuCo层的顶部(Ni(OH)2/CuCo/Ni(OH)2),所得到的二维复合结构需要1.333±0.006 V的电流来电化学氧化尿素,从而获得10 mA cm-2的电流密度,这优于Ni(OH)2和CuCo单个组分所需的电势。复合结构中高密度的Ni3+活性位点有助于提高电催化剂的活性和稳定性。Ni(OH)2/CuCo/Ni(OH)2在至少50小时内稳定,没有明显的活性下降或形貌改变。作为双功能电催化剂,该材料也表现出优异的水氧化性能,过电位为260 mV,稳定性为50 h。在双电极配置与NiMo阴极催化剂耦合的情况下,电解槽需要1.42 V的电池电压才能实现尿素的整体分解。总的来说,Ni(OH)2/CuCo/Ni(OH)2复合材料作为尿素和水氧化反应的高效稳定的电催化剂表现出了非凡的潜力,为更有效的制氢技术铺平了道路。
Tailored Ni(OH)2/CuCo/Ni(OH)2 Composite Interfaces for Efficient and Durable Urea Oxidation Reaction
Electrocatalytic urea oxidation reaction is a promising alternative to water oxidation for more efficient hydrogen production due to its significantly lower thermodynamic potential. However, achieving efficient electrochemical urea oxidation remains a formidable challenge, and development of an improved electrocatalyst with an optimal physicochemical and electronic structure toward urea oxidation is desired. This can be accomplished by designing a tailored two-dimensional composite with an abundance of active sites in a favorable electronic environment. In this study, we demonstrate the fabrication of a self-supported, electrochemically grown metal/mixed metal hydroxide composite interface via a two-step electrodeposition method. Specifically, Ni(OH)2 was electrodeposited on the top of the CuCo layer (Ni(OH)2/CuCo/Ni(OH)2), and the resultant 2D composite structure required 1.333 ± 0.006 V to oxidize urea electrochemically to achieve a current density of 10 mA cm–2, which outperformed the potential required for individual components, Ni(OH)2 and CuCo. The high density of Ni3+ active sites in the composite structure facilitated high electrocatalyst activity and stability. Ni(OH)2/CuCo/Ni(OH)2 was stable for at least 50 h without any noticeable degradation in the activity or alteration of the morphology. As a bifunctional electrocatalyst, the material also exhibited excellent performance for water oxidation with 260 mV overpotential and 50 h stability. In a two-electrode configuration coupled with a NiMo cathode catalyst, the electrolyzer required 1.42 V cell voltage for overall urea splitting. Overall, the engineered Ni(OH)2/CuCo/Ni(OH)2 composite demonstrated exceptional potential as an efficient and stable electrocatalyst for both urea and water oxidation reactions, paving the way for more effective hydrogen production technologies.
期刊介绍:
ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.