hybrid supercapacitor
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2022 ◽  
Vol 46 ◽  
pp. 103869
Author(s):  
Deepu Jha ◽  
Vispi Nevile Karkaria ◽  
P.B. Karandikar ◽  
R.S. Desai

Author(s):  
Samah M. Bekhit ◽  
Saad G. Mohamed ◽  
Ibrahim M. Ghayad ◽  
Sayed Y. Attia ◽  
W. Metwally ◽  
...  

2022 ◽  
Vol 427 ◽  
pp. 131854
Author(s):  
Seung-Kyu Hwang ◽  
Swati J. Patil ◽  
Nilesh R. Chodankar ◽  
Yun Suk Huh ◽  
Young-Kyu Han

2022 ◽  
Vol 45 ◽  
pp. 103781
Author(s):  
J. Barqi ◽  
S.M. Masoudpanah ◽  
Ximeng Liu ◽  
M. Sh. Bafghi ◽  
C.K. Ong

RSC Advances ◽  
2022 ◽  
Vol 12 (3) ◽  
pp. 1471-1478
Author(s):  
Bei Jiang ◽  
Yang Liu ◽  
Jingchao Zhang ◽  
Yinhuan Wang ◽  
Xinyu Zhang ◽  
...  

The litchi-like Ni–Co selenide constructed Ni0.95Co2.05Se4//AC hybrid supercapacitor achieves an energy density of 37.22 W h kg−1 and a power density of 800.90 W kg−1. The ASC device can retain 95.21% of the original capacity after 4000 cycles.


2022 ◽  
pp. 122909
Author(s):  
Jiaying Zhang ◽  
Zhendong Yao ◽  
Wenzhen Zou ◽  
Qiang Shen ◽  
Meiqiang Fan ◽  
...  

2021 ◽  
Author(s):  
Huaiyan Wang ◽  
Chunli Guo ◽  
Xiaochuan Ren ◽  
Yuyu Zhang ◽  
Xinquan Shi

Author(s):  
Holly M Fruehwald, ◽  
Peter D Melino ◽  
Olena V Zenkina ◽  
E. Bradley Easton

Abstract Novel hybrid supercapacitor materials were made by the covalent immobilization of nitrogenous ligands onto the surface of commercial carbon support (Vulcan XC-72), then coordinated to iron. The covalent attachment of the nitrogenous ligands allows for the controlled deposition of nitrogen functionalities on the surface of the carbon. The supercapacitor tests in acidic media showed significant growth of the capacitance as a result of the nitrogenous ligands on the support. Notably, the increase of the capacitance values directly correlates with the molecular loading on the surface. Following coordination of the iron to the ligands on the surface further elevated the capacitance via Faradaic reactions of the metal center. Remarkably, the overall capacitance of materials significantly increased after the course of long-term cycling tests (ca. 110% or higher). At the beginning of durability studies, a small decline in capacitance was observed, due to some extent of molecular decomposition on the surface of the electrode. However, the intense cycling further propagates a steady growth of the overall capacitance. This could be attributed to the process of polymerization of physisorbed molecules/ radicals that result in the formation of a 3D network structure that eventually boosts the overall capacitance and charge storage of the electrode.


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