Surface modification of nickel hydroxide particles by micro-sized cobalt oxide hydroxide and properties as electrode materials

2005 ◽  
Vol 200 (7) ◽  
pp. 2376-2379 ◽  
Author(s):  
Taokai Ying
2020 ◽  
Vol 12 (49) ◽  
pp. 54524-54536
Author(s):  
Jitendra Shashikant Samdani ◽  
Tong-Hyun Kang ◽  
Byong-June Lee ◽  
Yun Hee Jang ◽  
Jong-Sung Yu ◽  
...  

2011 ◽  
Vol 697-698 ◽  
pp. 450-453
Author(s):  
G. Qin ◽  
Ya Xiong Liu ◽  
Z.X. Bai ◽  
H.Y. Wang ◽  
R.K. Du

For bio-electrodes implanted in deep brain, electrode materials will affect the fibrous encapsulation formed on the interface of bio-electrodes and brain tissue which would reduce the operating effect of the bio-electrodes. To reduce or eliminate the fibrous encapsulation layer, N2/H2 plasma treatment process is used to modify the polyurethane which is the most materials of the bio-electrode. The amino groups are produced on the polyurethane surface. After these amino groups have a polymerization reaction with the polypeptide molecule, a layer of the polypeptide molecule is formed on the polyurethane surface of the bio-electrode. These modified bio-electrodes are implanted in the deep brain of the rats for two weeks to observe the immune response and the morphology of the cells on the interface of the bio-electrodes. The results of the experiments indicate that the polypeptide molecules on the polyurethane can improve the immune response of the cells and affect the growth of the fibrous encapsulation on the interface of the bio-electrodes.


1997 ◽  
Vol 67 (1-2) ◽  
pp. 343
Author(s):  
R Ovshinsky Stanford ◽  
Michael Fetcenko ◽  
Cristia Fierro ◽  
Paul Gifford ◽  
Dennis Corrigan ◽  
...  

Nanomaterials ◽  
2021 ◽  
Vol 11 (3) ◽  
pp. 609
Author(s):  
Xing-Qun Liao ◽  
Feng Li ◽  
Chang-Ming Zhang ◽  
Zhou-Lan Yin ◽  
Guo-Cong Liu ◽  
...  

In recent years, various attempts have been made to meet the increasing demand for high energy density of lithium-ion batteries (LIBs). The increase in voltage can improve the capacity and the voltage platform performance of the electrode materials. However, as the charging voltage increases, the stabilization of the interface between the cathode material and the electrolyte will decrease, causing side reactions on both sides during the charge–discharge cycling, which seriously affects the high-temperature storage and the cycle performance of LIBs. In this study, a sulfate additive, dihydro-1,3,2-dioxathiolo[1,3,2]dioxathiole 2,2,5,5-tetraoxide (DDDT), was used as an efficient multifunctional electrolyte additive for high-voltage lithium cobalt oxide (LiCoO2). Nanoscale protective layers were formed on the surfaces of both the cathode and the anode electrodes by the electrochemical redox reactions, which greatly decreased the side reactions and improved the voltage stability of the electrodes. By adding 2% (wt.%) DDDT into the electrolyte, LiCoO2 exhibited improved Li-storage performance at the relatively high temperature of 60 °C, controlled swelling behavior (less than 10% for 7 days), and excellent cycling performance (capacity retention rate of 76.4% at elevated temperature even after 150 cycles).


Nanoscale ◽  
2021 ◽  
Author(s):  
Parvin Asen ◽  
Ali Esfandiar ◽  
Hamid Mehdipour

Synthesizing efficient electrode materials for water splitting and supercapacitors is essential for developing clean electrochemical energy conversion/storage devices. In the present work, we report the construction of ruthenium cobalt oxide...


1989 ◽  
Vol 37 ◽  
pp. 39-54 ◽  
Author(s):  
Shigeharu Kittaka ◽  
Naoki Uchida ◽  
Iwao Miyashita ◽  
Takaya Wakayama

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