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一锅法合成Mn-Fe双金属氧化物异质结构作为用于高效全水解的双功能电极。

One-pot synthesis of Mn-Fe bimetallic oxide heterostructures as bifunctional electrodes for efficient overall water splitting.

作者信息

Luo Juan, Guo Wan Hui, Zhang Qing, Wang Xiao Hu, Shen Li, Fu Hong Chuan, Wu Li Li, Chen Xiao Hui, Luo Hong Qun, Li Nian Bing

机构信息

School of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, People's Republic of China.

出版信息

Nanoscale. 2020 Oct 8;12(38):19992-20001. doi: 10.1039/d0nr05864e.

DOI:10.1039/d0nr05864e
PMID:32996530
Abstract

The design of Earth-abundant and cost-effective electrocatalysts for highly active and stable electrochemical water splitting in practical production is the primary demand. Herein, bimetallic oxides anchored to three-dimensional (3D) porous conductive nickel foam (NF) are constructed using a simple in situ hydrothermal method for efficient overall water splitting. The vertically aligned Mn3O4/Fe2O3 heterojunction nanosheets have synergy between hierarchical metal oxides and heterogeneous interface, and show excellent performance toward the oxygen evolution reaction (OER) and hydrogen evolution reaction (HER) in an alkaline environment. By adjusting the molar ratio of Fe : Mn, the morphology, composition and electronic structure of MnFeO-NF-x composites (x represents the ratio of Fe : Mn) can be adjusted to exhibit diverse catalytic activities. In particular, MnFeO-NF-0.4 (0.4 indicates the Fe : Mn ratio of 0.4 : 1) and MnFeO-NF-0.8 display outstanding performance with ultralow overpotentials of 157 mV for the OER and 64 mV for the HER to achieve a current density of 10 mA cm-2, respectively. Furthermore, MnFeO-NF-0.4 and MnFeO-NF-0.8 are assembled into a water splitting electrolyzer, which can reach a current density of 10 mA cm-2 with a low voltage of 1.59 V. Interestingly, Mn-M (M = Co, Ni, and Mo) products can be obtained easily by using different metal salts, indicating the universality of the current one-pot hydrothermal method.

摘要

设计出在实际生产中用于高活性和稳定电化学水分解的地球丰富且具有成本效益的电催化剂是首要需求。在此,采用简单的原位水热法构建了锚定在三维(3D)多孔导电泡沫镍(NF)上的双金属氧化物,用于高效的全水分解。垂直排列的Mn3O4/Fe2O3异质结纳米片在分级金属氧化物和异质界面之间具有协同作用,并且在碱性环境中对析氧反应(OER)和析氢反应(HER)表现出优异的性能。通过调节Fe : Mn的摩尔比,可以调整MnFeO-NF-x复合材料(x表示Fe : Mn的比例)的形态、组成和电子结构,以展现出不同的催化活性。特别地,MnFeO-NF-0.4(0.4表示Fe : Mn的比例为0.4 : 1)和MnFeO-NF-0.8表现出优异的性能,在析氧反应中过电位低至157 mV,在析氢反应中过电位低至64 mV,分别实现了10 mA cm-2的电流密度。此外,将MnFeO-NF-0.4和MnFeO-NF-0.8组装成一个水分解电解槽,其在1.59 V的低电压下可达到10 mA cm-2的电流密度。有趣的是,通过使用不同的金属盐可以轻松获得Mn-M(M = Co、Ni和Mo)产物,这表明当前的一锅水热法具有通用性。

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