Li Guang-Lan, Miao Ying-Ying, Deng Fei, Wang Shen, Wang Rui-Xin, Lu Wei-Hang, Chen Ru-Liang
State Key Laboratory of Fine Chemicals, Dalian University of Technology, Dalian 116023, PR China; School of Chemical Engineering, Dalian University of Technology, Panjin 124221, PR China.
State Key Laboratory of Fine Chemicals, Dalian University of Technology, Dalian 116023, PR China; School of Chemical Engineering, Dalian University of Technology, Panjin 124221, PR China.
J Colloid Interface Sci. 2024 Aug;667:543-552. doi: 10.1016/j.jcis.2024.04.059. Epub 2024 Apr 10.
The electrocatalytic production of "green hydrogen", such as through the electrolysis of water or urea has been vigorously advocated to alleviate the energy crisis. However, their electrode reactions including oxygen evolution reaction (OER), urea oxidation reaction (UOR), and hydrogen evolution reaction (HER) all suffer from sluggish kinetics, which urgently need catalysts to accelerate the processes. Herein, we design and prepare an OER/UOR/HER trifunctional catalyst by transforming the homemade CoO nanorod into a two-dimensional (2D) ultrathin heterojunction nickel-iron-cobalt hybrid phosphides nanosheet (NiFeP/CoP) via a hydrothermal-phosphorization method. Consequently, a strong electronic interaction was found among the NiP/FeP/CoP heterogeneous interfaces, which regulates the electronic structure. Besides the high mass transfer property of 2D nanosheet, NiP/FeP/CoP displays improved OER/UOR/HER performance. At 10 mA cm, the OER overpotential reaches 274 mV in 1.0 M KOH, and the potential of UOR is only 1.389 V in 1.0 M KOH and 0.33 M urea. More strikingly, the two-electrode systems for electrolysis water and urea-assisted electrolysis water assembled by NiFeP/CoP could maintain long-term stability for 35 h and 12 h, respectively. This work may help to pave the way for upcoming research horizons of multifunctional electrocatalysts.
通过水或尿素的电解等方式进行电催化生产“绿色氢气”,已被大力倡导用于缓解能源危机。然而,其电极反应包括析氧反应(OER)、尿素氧化反应(UOR)和析氢反应(HER),动力学都较为迟缓,迫切需要催化剂来加速这些过程。在此,我们通过水热磷化法将自制的CoO纳米棒转化为二维(2D)超薄异质结镍铁钴混合磷化物纳米片(NiFeP/CoP),设计并制备了一种OER/UOR/HER三功能催化剂。结果发现,在NiP/FeP/CoP异质界面之间存在强烈的电子相互作用,这调节了电子结构。除了二维纳米片的高质量传输特性外,NiP/FeP/CoP还表现出改进的OER/UOR/HER性能。在10 mA cm时,在1.0 M KOH中OER过电位达到274 mV,在1.0 M KOH和0.33 M尿素中UOR的电位仅为1.389 V。更引人注目的是,由NiFeP/CoP组装的电解水和尿素辅助电解水的双电极系统分别可以保持35小时和12小时的长期稳定性。这项工作可能有助于为多功能电催化剂的未来研究开辟道路。