Zhao Qianqian, Zhao Bin, Long Xin, Feng Renfei, Shakouri Mohsen, Paterson Alisa, Xiao Qunfeng, Zhang Yu, Fu Xian-Zhu, Luo Jing-Li
Shenzhen Key Laboratory of Energy Electrocatalytic Materials, Shenzhen Key Laboratory of Polymer Science and Technology, Guangdong Research Center for Interfacial Engineering of Functional Materials, College of Materials Science and Engineering, Shenzhen University, Shenzhen, 518060, People's Republic of China.
Canadian Light Source Inc., Saskatoon, SK, S7N 0X4, Canada.
Nanomicro Lett. 2024 Jan 11;16(1):80. doi: 10.1007/s40820-023-01282-4.
Constructing the efficacious and applicable bi-functional electrocatalysts and establishing out the mechanisms of organic electro-oxidation by replacing anodic oxygen evolution reaction (OER) are critical to the development of electrochemically-driven technologies for efficient hydrogen production and avoid CO emission. Herein, the hetero-nanocrystals between monodispersed Pt (~ 2 nm) and NiS (~ 9.6 nm) are constructed as active electrocatalysts through interfacial electronic modulation, which exhibit superior bi-functional activities for methanol selective oxidation and H generation. The experimental and theoretical studies reveal that the asymmetrical charge distribution at Pt-NiS could be modulated by the electronic interaction at the interface of dual-monodispersed heterojunctions, which thus promote the adsorption/desorption of the chemical intermediates at the interface. As a result, the selective conversion from CHOH to formate is accomplished at very low potentials (1.45 V) to attain 100 mA cm with high electronic utilization rate (~ 98%) and without CO emission. Meanwhile, the Pt-NiS can simultaneously exhibit a broad potential window with outstanding stability and large current densities for hydrogen evolution reaction (HER) at the cathode. Further, the excellent bi-functional performance is also indicated in the coupled methanol oxidation reaction (MOR)//HER reactor by only requiring a cell voltage of 1.60 V to achieve a current density of 50 mA cm with good reusability.
构建高效且适用的双功能电催化剂,并通过替代阳极析氧反应(OER)来阐明有机电氧化的机制,对于高效制氢且无CO排放的电化学驱动技术的发展至关重要。在此,通过界面电子调制构建了单分散Pt(约2nm)和NiS(约9.6nm)之间的异质纳米晶体作为活性电催化剂,其对甲醇选择性氧化和析氢表现出优异的双功能活性。实验和理论研究表明,Pt-NiS处的不对称电荷分布可通过双单分散异质结界面处的电子相互作用进行调制,从而促进化学中间体在界面处的吸附/解吸。结果,在非常低的电位(1.45V)下实现了从CHOH到甲酸盐的选择性转化,以高电子利用率(约98%)达到100mA cm且无CO排放。同时,Pt-NiS在阴极析氢反应(HER)中可同时展现出宽电位窗口、出色的稳定性和大电流密度。此外,在耦合甲醇氧化反应(MOR)//HER反应器中也表明了优异的双功能性能,仅需1.60V的电池电压即可实现50mA cm的电流密度且具有良好的可重复使用性。