scholarly journals Study of electrochemical properties of thin film materials obtained using plasma technologies for production of electrodes for pacemakers

2016 ◽  
Vol 748 ◽  
pp. 012018 ◽  
Author(s):  
O I Obrezkov ◽  
V P Vinogradov ◽  
V I Krauz ◽  
D V Mozgrin ◽  
I A Guseva ◽  
...  
2021 ◽  
pp. 138726
Author(s):  
Indrė Aleknavičienė ◽  
Marija Jankunec ◽  
Tadas Penkauskas ◽  
Gintaras Valinčius

2015 ◽  
Vol 161 ◽  
pp. 694-697 ◽  
Author(s):  
Navaneethan Duraisamy ◽  
A. Numan ◽  
K. Ramesh ◽  
Kyung-Hyun Choi ◽  
S. Ramesh ◽  
...  

2014 ◽  
Vol 2014 ◽  
pp. 1-5 ◽  
Author(s):  
Gyu-bong Cho ◽  
Tae-hoon Kwon ◽  
Tae-hyun Nam ◽  
Sun-chul Huh ◽  
Byeong-keun Choi ◽  
...  

LiNiO2thin films were fabricated by RF magnetron sputtering. The microstructure of the films was determined by X-ray diffraction and field-emission scanning electron microscopy. The electrochemical properties were investigated with a battery cycler using coin-type half-cells. The LiNiO2thin films annealed below 500°C had the surface carbonate. The results suggest that surface carbonate interrupted the Li intercalation and deintercalation during charge/discharge. Although the annealing process enhanced the crystallization of LiNiO2, the capacity did not increase. When the annealing temperature was increased to 600°C, the FeCrNiO4oxide phase was generated and the discharge capacity decreased due to an oxygen deficiency in the LiNiO2thin film. The ZrO2-coated LiNiO2thin film provided an improved discharge capacity compared to bare LiNiO2thin film suggesting that the improved electrochemical characteristic may be attributed to the inhibition of surface carbonate by ZrO2coating layer.


2018 ◽  
Vol 33 (18) ◽  
pp. 2661-2670 ◽  
Author(s):  
Pierre Denis ◽  
Hans-Jörg Fecht ◽  
Yanpeng Xue ◽  
Eirini Maria Paschalidou ◽  
Paola Rizzi ◽  
...  

Abstract


Author(s):  
Wenbin Luo ◽  
Zisheng Chao ◽  
Shuangxing Lu ◽  
Yanhui Liu ◽  
Jincheng Fan

Polymers ◽  
2019 ◽  
Vol 11 (2) ◽  
pp. 232 ◽  
Author(s):  
Hoseong Han ◽  
Jun Seop Lee ◽  
Sunghun Cho

Poly(4-styrenesulfonate)-conducting polymer (PSS-CP) is advantageous for thin-film electrode manufacturing due to its high conductivity, high charge storage, structural stability, and excellent ink dispersion. In this work, comparative studies of two-electrode symmetric supercapacitors using Polypyrrole:Poly(4-styrenesulfonate) (PPy:PSS), with different molecular weights (Mw’s) of Poly(4-styrenesulfonate) (PSS) as the electrodes, were performed. PPy:PSS can be easily prepared using a simple solution process that enables the mass production of thin-film electrodes with improved electrical and electrochemical properties. As-prepared PPy:PSS, with different PSS molecular weights, were assembled into two-electrode supercapacitors based on coin cell structures. It was confirmed that the electrical and electrochemical properties of PPy:PSS were improved with increasing PSS molecular weight. The coin cell, using PPy:PSS with a PSS molecular weight of 1.0 × 106 g/mol, exhibited higher areal capacitance (175.3 mF/cm2), higher volumetric capacitance (584.2 F/cm3), and longer cycling stability (86.3% after 5000 cycles) compared to those of PPy:PSS with PSS molecular weights of 2.0 × 105 and 7.0 × 104 g/mol. This work provides an efficient approach for producing cost-effective and miniaturized supercapacitors with high conductivity and high specific capacitance for practical applications in a variety of electronic devices.


2011 ◽  
Vol 687 ◽  
pp. 729-733
Author(s):  
Shen Li Zhao ◽  
Ji Ne Zhu ◽  
J.B. Wen ◽  
Zhao Yang Wu

The NiO thin film was deposited on the stainless steel substrate by spin-coating compared with thermal treatment technique. Thermal decomposition behavior of gel precursor, the structure, morphology and electrochemical properties of NiO thin film were characterized by thermogravimetric/differential scanning calorimetry (TG-DSC), X-ray diffraction (XRD), scanning electron microscopy (SEM) and constant current charge-discharge techniques. The results show that the stable sol is synthesized by nickel acetate and PAA. The gel precursor completely decomposes and gradually forms the nanocrystalline NiO at 450°C during the sintering. The crystal structure of NiO films become more integrity and particles large with the increasing of sintering temperature. The morphology and structure of the NiO thin film sintered at 500°C for 2h is perfect and exhibits high discharge specific capacity and well cycle performance whose initial and stable discharge capacity after 20 cycles are 1147.5mAh/g and 741mAh/g , respectively.


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