α-Fe2O3 nanorods decorated with NiMnO3 co-catalyst as photoanode for enhanced oxygen evolution reaction in photoelectrochemical water splitting

2021 ◽  
pp. 102231
Author(s):  
Aditya Singh ◽  
Ravi Tejasvi ◽  
Sujay Karmakar ◽  
Suddhasatwa Basu
Catalysts ◽  
2020 ◽  
Vol 10 (5) ◽  
pp. 525 ◽  
Author(s):  
Carmelo Lo Vecchio ◽  
Stefano Trocino ◽  
Sabrina Campagna Zignani ◽  
Vincenzo Baglio ◽  
Alessandra Carbone ◽  
...  

Tandem photoelectrochemical cells (PECs), made up of a solid electrolyte membrane between two low-cost photoelectrodes, were investigated to produce “green” hydrogen by exploiting renewable solar energy. The assembly of the PEC consisted of an anionic solid polymer electrolyte membrane (gas separator) clamped between an n-type Fe2O3 photoanode and a p-type CuO photocathode. The semiconductors were deposited on fluorine-doped tin oxide (FTO) transparent substrates and the cell was investigated with the hematite surface directly exposed to a solar simulator. Ionomer dispersions obtained from the dissolution of commercial polymers in the appropriate solvents were employed as an ionic interface with the photoelectrodes. Thus, the overall photoelectrochemical water splitting occurred in two membrane-separated compartments, i.e., the oxygen evolution reaction (OER) at the anode and the hydrogen evolution reaction (HER) at the cathode. A cost-effective NiFeOx co-catalyst was deposited on the hematite photoanode surface and investigated as a surface catalytic enhancer in order to improve the OER kinetics, this reaction being the rate-determining step of the entire process. The co-catalyst was compared with other well-known OER electrocatalysts such as La0.6Sr0.4Fe0.8CoO3 (LSFCO) perovskite and IrRuOx. The Ni-Fe oxide was the most promising co-catalyst for the oxygen evolution in the anionic environment in terms of an enhanced PEC photocurrent and efficiency. The materials were physico-chemically characterized by X-ray diffraction (XRD), transmission electron microscopy (TEM) and scanning electron microscopy (SEM).


2014 ◽  
Vol 136 (7) ◽  
pp. 2843-2850 ◽  
Author(s):  
William D. Chemelewski ◽  
Heung-Chan Lee ◽  
Jung-Fu Lin ◽  
Allen J. Bard ◽  
C. Buddie Mullins

Nanoscale ◽  
2020 ◽  
Vol 12 (16) ◽  
pp. 8875-8882 ◽  
Author(s):  
Ruolin Hu ◽  
Linxing Meng ◽  
Jiaxu Zhang ◽  
Xiang Wang ◽  
Sijie Wu ◽  
...  

High-activity bimetallic oxygen evolution reaction (OER) cocatalyst for efficient photoelectrochemical water splitting of BiVO4.


Author(s):  
Xiao-Xia Wu ◽  
Jiaxu Wei ◽  
Tong Zhang ◽  
Qingyi Liu ◽  
Yuchen Yang ◽  
...  

CeOx as a (co-)catalyst has been proved a promising material toward oxygen evolution reaction (OER) in water splitting. In this study, a novel and simple method was designed that CeOx...


2021 ◽  
Author(s):  
Zihao Liu ◽  
Shifeng Li ◽  
Fangfang Wang ◽  
Mingxia Li ◽  
Yonghong Ni

FeNi-layered double hydroxide (LDH) is thought to be an excellent electrocatalyst for oxygen evolution reaction (OER), but it always shows extremely poor electrocatalytic activity toward hydrogen evolution reaction (HER) in...


Nanoscale ◽  
2021 ◽  
Author(s):  
Peng Wang ◽  
Feng Li ◽  
Xuefeng Long ◽  
Tong Wang ◽  
Huan Chai ◽  
...  

Surface modification by loading a water oxidation co-catalyst (WOC) is generally considered to be an efficient means to optimize the sluggish surface oxygen evolution reaction (OER) of hematite photoanode for...


Author(s):  
Sisir Maity ◽  
Dheeraj Kumar Singh ◽  
Divya Bhutani ◽  
Suchitra Prasad ◽  
Umesh V. Waghmare ◽  
...  

Author(s):  
Kaiyao Wu ◽  
Fei Chu ◽  
Yuying Meng ◽  
Kaveh Edalati ◽  
Qingsheng Gao ◽  
...  

Transition metal-based amorphous alloys have attracted increasing attention as precious-metal-free electrocatalysts for oxygen evolution reaction (OER) of water splitting due to their high macro-conductivity and abundant surface active sites. However,...


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