Directly Sputtered Nickel Electrodes for Alkaline Water Electrolysis

2021 ◽  
pp. 138458
Author(s):  
Won-Bi Han ◽  
Ik-Sun Kim ◽  
MinJoong Kim ◽  
Won Chul Cho ◽  
Sang-Kyung Kim ◽  
...  
2013 ◽  
Vol 38 (4) ◽  
pp. 1758-1764 ◽  
Author(s):  
Milica P. Marčeta Kaninski ◽  
Mina M. Seović ◽  
Snežana M. Miulović ◽  
Dragana L. Žugić ◽  
Gvozden S. Tasić ◽  
...  

1992 ◽  
Vol 22 (11) ◽  
pp. 1049-1054 ◽  
Author(s):  
H. Dumont ◽  
P. W. Wrona ◽  
J. M. Lalancette ◽  
H. M�nard ◽  
L. Brossard

2019 ◽  
Vol 166 (6) ◽  
pp. F357-F363
Author(s):  
Christian Immanuel Bernäcker ◽  
Thomas Rauscher ◽  
Tilo Büttner ◽  
Bernd Kieback ◽  
Lars Röntzsch

CORROSION ◽  
10.5006/3289 ◽  
2020 ◽  
Author(s):  
César Sequeira ◽  
David Cardoso ◽  
Luís Amaral ◽  
Biljana Sljukic ◽  
Diogo Santos

Commercially available materials for fabricating cell bodies, electrodes, pipes, and pumps for alkaline water electrolyzers, include conventional steels and stainless steels, nickel, valve metals, polymers, and other materials. In this review paper, most of these construction materials are briefly described and discussed. Special attention is given to presently produced nickel electrodes and novel nickel-based electrocatalysts for the hydrogen and oxygen evolution reactions in alkaline water electrolysis. It is shown that their electrocatalytic activity and corrosion resistance need to be improved in order to increase their commercial interest for alkaline water electrolyzers.


2018 ◽  
Vol 1 (2) ◽  
pp. 9-14
Author(s):  
Marisol Cervantes-Bobadilla ◽  
Ricardo Fabricio Escobar Jiménez ◽  
José Francisco Gómez Aguilar ◽  
Tomas Emmanuel Higareda Pliego ◽  
Alberto Armando Alvares Gallegos

In this research, an alkaline water electrolysis process is modelled. The electrochemical electrolysis is carried out in an electrolyzer composed of 12 series-connected steel cells with a solution 30% wt of potassium hydroxide. The electrolysis process model was developed using a nonlinear identification technique based on the Hammerstein structure. This structure consists of a nonlinear static block and a linear dynamic block. In this work, the nonlinear static function is modelled by a polynomial approximation equation, and the linear dynamic is modelled using the ARX structure. To control the current feed to the electrolyzer an unconstraint predictive controller was implemented, once the unconstrained MPC was simulated, some restrictions are proposed to design a constrained MPC (CMPC). The CMPC aim is to reduce the electrolyzer's energy consumption (power supply current). Simulation results showed the advantages of using the CMPC since the energy (current) overshoots are avoided.


2021 ◽  
Vol 119 (1) ◽  
pp. 013901
Author(s):  
Qinpeng Zhu ◽  
Peihua Yang ◽  
Tao Zhang ◽  
Zehua Yu ◽  
Kang Liu ◽  
...  

Energies ◽  
2021 ◽  
Vol 14 (11) ◽  
pp. 3193
Author(s):  
Ana L. Santos ◽  
Maria-João Cebola ◽  
Diogo M. F. Santos

Environmental issues make the quest for better and cleaner energy sources a priority. Worldwide, researchers and companies are continuously working on this matter, taking one of two approaches: either finding new energy sources or improving the efficiency of existing ones. Hydrogen is a well-known energy carrier due to its high energy content, but a somewhat elusive one for being a gas with low molecular weight. This review examines the current electrolysis processes for obtaining hydrogen, with an emphasis on alkaline water electrolysis. This process is far from being new, but research shows that there is still plenty of room for improvement. The efficiency of an electrolyzer mainly relates to the overpotential and resistances in the cell. This work shows that the path to better electrolyzer efficiency is through the optimization of the cell components and operating conditions. Following a brief introduction to the thermodynamics and kinetics of water electrolysis, the most recent developments on several parameters (e.g., electrocatalysts, electrolyte composition, separator, interelectrode distance) are highlighted.


2020 ◽  
Vol 1683 ◽  
pp. 052011
Author(s):  
V N Kuleshov ◽  
S V Kurochkin ◽  
N V Kuleshov ◽  
D V Blinov ◽  
O Y Grigorieva

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