Zhang Hao, Diao Jiefeng, Ouyang Mengzheng, Yadegari Hossein, Mao Mingxuan, Wang Mengnan, Henkelman Graeme, Xie Fang, Riley D Jason
Department of Materials and London Center for Nanotechnology, Imperial College London, London SW7 2AZ, U.K.
Department of Chemistry and the Oden Institute for Computational Engineering and Sciences, The University of Texas at Austin, Austin, Texas 78712 United States.
ACS Catal. 2023 Jan 9;13(2):1349-1358. doi: 10.1021/acscatal.2c05433. eCollection 2023 Jan 20.
The rational construction of efficient and low-cost electrocatalysts for the hydrogen evolution reaction (HER) is critical to seawater electrolysis. Herein, trimetallic heterostructured core-shell nanoboxes based on Prussian blue analogues (Ni-Co@Fe-Co PBA) were synthesized using an iterative coprecipitation strategy. The same coprecipitation procedure was used for the preparation of the PBA core and shell, with the synthesis of the shell involving chemical etching during the introduction of ferrous ions. Due to its unique structure and composition, the optimized trimetallic Ni-Co@Fe-Co PBA possesses more active interfacial sites and a high specific surface area. As a result, the developed Ni-Co@Fe-Co PBA electrocatalyst exhibits remarkable electrocatalytic HER performance with small overpotentials of 43 and 183 mV to drive a current density of 10 mA cm in alkaline freshwater and simulated seawater, respectively. Operando Raman spectroscopy demonstrates the evolution of Co from Co in the catalyst during HER. Density functional theory simulations reveal that the H*-N adsorption sites lower the barrier energy of the rate-limiting step, and the introduced Fe species improve the electron mobility of Ni-Co@Fe-Co PBA. The charge transfer at the core-shell interface leads to the generation of H* intermediates, thereby enhancing the HER activity. By pairing this HER catalyst (Ni-Co@Fe-Co PBA) with another core-shell PBA OER catalyst (NiCo@A-NiCo-PBA-AA) reported by our group, the fabricated two-electrode electrolyzer was found to achieve high output current densities of 44 and 30 mA cm at a low voltage of 1.6 V in alkaline freshwater and simulated seawater, respectively, exhibiting remarkable durability over a 100 h test.
构建高效低成本的析氢反应(HER)电催化剂对海水电解至关重要。在此,采用迭代共沉淀策略合成了基于普鲁士蓝类似物的三金属异质结构核壳纳米盒(Ni-Co@Fe-Co PBA)。制备PBA核和壳采用相同的共沉淀程序,壳的合成在引入亚铁离子过程中涉及化学蚀刻。由于其独特的结构和组成,优化后的三金属Ni-Co@Fe-Co PBA具有更多的活性界面位点和高比表面积。因此,所开发的Ni-Co@Fe-Co PBA电催化剂表现出卓越的电催化HER性能,在碱性淡水和模拟海水中驱动10 mA cm电流密度时的过电位分别低至43和183 mV。原位拉曼光谱表明析氢反应过程中催化剂中的Co从Co发生了演变。密度泛函理论模拟表明,H*-N吸附位点降低了限速步骤的势垒能量,引入的Fe物种提高了Ni-Co@Fe-Co PBA的电子迁移率。核壳界面处的电荷转移导致H*中间体的产生,从而增强了析氢反应活性。通过将这种析氢反应催化剂(Ni-Co@Fe-Co PBA)与我们团队报道的另一种核壳PBA析氧反应催化剂(NiCo@A-NiCo-PBA-AA)配对,发现制备的双电极电解槽在碱性淡水和模拟海水中分别在1.6 V的低电压下实现了44和30 mA cm的高输出电流密度,在100小时的测试中表现出显著的耐久性。