Tailoring the nanostructure and electronic configuration of metal phosphides for efficient electrocatalytic oxygen evolution reactions

Nano Energy ◽  
2020 ◽  
Vol 69 ◽  
pp. 104453 ◽  
Author(s):  
Changshui Wang ◽  
Weibin Chen ◽  
Ding Yuan ◽  
Shangshu Qian ◽  
Dandan Cai ◽  
...  
2021 ◽  
Author(s):  
Chandana C.W. Kananke-Gamage ◽  
Farshid Ramezanipour

The effect of the electronic configuration of transition metal on electrocatalytic activity, charge transport, and magnetic properties is demonstrated through investigation of Sr2LaFeMnO7 and Sr2LaCoMnO7. The two compounds are isostructural...


2019 ◽  
Vol 55 (60) ◽  
pp. 8744-8763 ◽  
Author(s):  
Wei Li ◽  
Dehua Xiong ◽  
Xuefei Gao ◽  
Lifeng Liu

Dynamic morphological, structural and compositional changes will occur when transition metal phosphides and chalcogenides are used to catalyze the oxygen evolution reaction, which can substantially enhance their electrocatalytic performance.


Author(s):  
Ping Yan ◽  
Qian Liu ◽  
Hui Zhang ◽  
Luchun Qiu ◽  
Hao Bin Wu ◽  
...  

Transition metal phosphides (TMPs) have been reported as efficient pre-catalysts for oxygen evolution reaction (OER) in alkaline media. The in-situ generated metal oxyhydroxides on the surface of TMPs serve as...


Author(s):  
Shivaraju Guddehalli Chandrappa ◽  
Prabu Moni ◽  
Dehong Chen ◽  
Guruprakash Karkera ◽  
Kunkanadu R. Prakasha ◽  
...  

Nano Research ◽  
2021 ◽  
Author(s):  
Jie Zhang ◽  
Shoushuang Huang ◽  
Ping Ning ◽  
Peijun Xin ◽  
Zhiwen Chen ◽  
...  

AbstractTailoring the nanostructure/morphology and chemical composition is important to regulate the electronic configuration of electrocatalysts and thus enhance their performance for water and urea electrolysis. Herein, the nitrogen-doped carbon-decorated tricomponent metal phosphides of FeP4 nanotube@Ni-Co-P nanocage (NC-FNCP) with unique nested hollow architectures are fabricated by a self-sacrifice template strategy. Benefiting from the multi-component synergy, the modification of nitrogen-doped carbon, and the modulation of nested porous hollow morphology, NC-FNCP facilitates rapid electron/mass transport in water and urea electrolysis. NC-FNCP-based anode shows low potentials of 248 mV and 1.37 V (vs. reversible hydrogen electrode) to attain 10 mA/cm2 for oxygen evolution reaction (OER) and urea oxidation reaction (UOR), respectively. In addition, the overall urea electrolysis drives 10 mA/cm2 at a comparatively low voltage of 1.52 V (vs. RHE) that is 110 mV lower than that of overall water electrolysis, as well as exhibits excellent stability over 20 h. This work strategizes a multi-shell-structured electrocatalyst with multi-compositions and explores its applications in a sustainable combination of hydrogen production and sewage remediation.


Sign in / Sign up

Export Citation Format

Share Document