Li Ye, Zhao Dan, Shi Yue, Sun Zhicheng, Liu Ruping
Beijing Institute of Graphic Communication, School of New Media, Beijing 102600, China.
Beijing Institute of Graphic Communication, School of Printing and Packaging Engineering, Beijing 102600, China.
Materials (Basel). 2021 Jan 4;14(1):207. doi: 10.3390/ma14010207.
Monolayer nanosheets have gained significant attention as functional materials and also in photo/electrocatalysis due to their unique physical/chemical properties, abundance of highly exposed coordination sites, edges, and corner sites, motivating the pursuit of highly active monolayer nanosheets. NiFe-based layered double hydroxide (NiFe-LDH) nanosheets have been regarded as the most efficient electrocatalysis for oxygen evolution. However, the limited catalytic active site and the stacking layer limited the performance. Therefore, by introducing highly electroactive Co ions into monolayer NiFe-LDH, the obtained ternary NiFeCo-LDH monolayer structure possessed an increased concentration of defect (oxygen and metal vacancies), providing enough unsaturated coordination sites, benefitting the electrocatalytic water oxidation, as also explained by the density functional theory (DFT). This work reported an efficient strategy for the synthesis of ternary monolayer LDH in the application of energy conversion and storage.
单层纳米片因其独特的物理/化学性质、大量高度暴露的配位位点、边缘和角位点,作为功能材料以及在光/电催化方面受到了广泛关注,这激发了人们对高活性单层纳米片的追求。基于镍铁的层状双氢氧化物(NiFe-LDH)纳米片被认为是最有效的析氧电催化剂。然而,有限的催化活性位点和堆叠层限制了其性能。因此,通过将高电活性的钴离子引入单层NiFe-LDH中,所得到的三元NiFeCo-LDH单层结构具有更高浓度的缺陷(氧和金属空位),提供了足够的不饱和配位位点,有利于电催化水氧化,密度泛函理论(DFT)也对此进行了解释。这项工作报道了一种在能量转换和存储应用中合成三元单层LDH的有效策略。