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在泡沫镍上电化学合成铁氰化镍和硫化镍作为通过尿素电解制氢的可持续电催化剂。

Electrochemical Synthesis of Nickel Hexacyanoferrate and Nickel Sulfide on Nickel Foam as Sustainable Electrocatalysts for Hydrogen Generation via Urea Electrolysis.

作者信息

Kalaiyarasan Gopi, Lee Doyeon, Lee Jae W, Ko Min Jae

机构信息

Department of Chemical Engineering, Hanyang University (Seoul Campus), 222 Wangsimni-ro, Seongdong-gu, Seoul 04763, Republic of Korea.

Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291, Daehak-ro, Yuseong-gu, Daejeon 34141, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2024 Dec 18;16(50):69142-69152. doi: 10.1021/acsami.4c12763. Epub 2024 Dec 7.

DOI:10.1021/acsami.4c12763
PMID:39644226
Abstract

A promising approach to energy-efficient hydrogen production is coupling the hydrogen evolution reaction (HER) with the urea oxidation reaction (UOR), significantly reducing the energy requirements. However, achieving a low-cost yet high-performance electrocatalyst for both HER and UOR remains challenging. Here, we present a facile method for synthesizing nanoporous nickel sulfide (NiS) and nickel hexacyanoferrate (NiHCF) nanocubes directly on nickel foam (NF) without any added nickel source using a cyclic voltammetry technique. In this approach, NF serves simultaneously as the substrate and nickel source, streamlining the synthesis process. The unique nanoarchitecture of NiHCF and NiS promotes highly efficient catalytic activity for both UOR and HER. NiHCF catalyzes urea oxidation by dual active sites of Ni and Fe with its synergistic interaction, without the formation of NiOOH or FeOOH. For hydrogen production, the self-supporting NiHCF/NF||NiS/NF-coupled system achieves a notably low cell voltage of 1.8 V at 100 mA cm, which is approximately 487 mV lower than traditional IrO/NF||Pt/C/NF water electrolysis. This innovative electrochemical method enables the controlled synthesis of Ni-based nanoelectrocatalysts, offering a sustainable, energy-efficient pathway for H production from urea-rich wastewater. This environmentally friendly strategy holds significant potential to reduce the global carbon footprint, paving the way for a greener future.

摘要

一种有前景的节能制氢方法是将析氢反应(HER)与尿素氧化反应(UOR)耦合,从而显著降低能量需求。然而,要实现一种低成本且高性能的用于HER和UOR的电催化剂仍然具有挑战性。在此,我们展示了一种简便的方法,通过循环伏安法在泡沫镍(NF)上直接合成纳米多孔硫化镍(NiS)和六氰合铁酸镍(NiHCF)纳米立方体,无需添加任何镍源。在这种方法中,NF同时作为基底和镍源,简化了合成过程。NiHCF和NiS独特的纳米结构促进了UOR和HER的高效催化活性。NiHCF通过Ni和Fe的双活性位点及其协同相互作用催化尿素氧化,不会形成NiOOH或FeOOH。对于制氢,自支撑的NiHCF/NF||NiS/NF耦合系统在100 mA cm时实现了显著低的电池电压1.8 V,这比传统的IrO/NF||Pt/C/NF水电解低约487 mV。这种创新的电化学方法能够可控合成镍基纳米电催化剂,为从富含尿素的废水中制氢提供了一条可持续、节能的途径。这种环保策略具有显著潜力来减少全球碳足迹,为更绿色的未来铺平道路。

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