Detailed Information

Cited 50 time in webofscience Cited 51 time in scopus
Metadata Downloads

Potentiodynamic polarization assisted phosphorus-containing amorphous trimetal hydroxide nanofibers for highly efficient hybrid supercapacitors

Authors
Chodankar, Nilesh R.Raju, Ganji Seeta RamaPark, BumjunShinde, Pragati A.Jun, Seong ChanDubal, Deepak P.Huh, Yun SukHan, Young-Kyu
Issue Date
21-Mar-2020
Publisher
ROYAL SOC CHEMISTRY
Citation
JOURNAL OF MATERIALS CHEMISTRY A, v.8, no.11, pp 5721 - 5733
Pages
13
Indexed
SCIE
SCOPUS
Journal Title
JOURNAL OF MATERIALS CHEMISTRY A
Volume
8
Number
11
Start Page
5721
End Page
5733
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/6785
DOI
10.1039/c9ta13225b
ISSN
2050-7488
2050-7496
Abstract
Due to their high capacity, nickel-cobalt-based cathode materials have attracted significant attention as potential components of hybrid solid-state supercapacitors (HSSCs). However, their poor cycling stability and low rate capability have impeded their implementation. In the present study, a single-step, binder-free potentiodynamic polarization approach is presented for the preparation of battery-type phosphorus-containing amorphous trimetal nickel-ruthenium-cobalt hydroxide (P@NRC-OH) nanofibers on Ni foam for use in high-energy, stable HSSCs. The phosphate dopant and the trimetal-rich electrode surface increase the intrinsic electron conductivity and redox activity and generate a large number of active defects. As a consequence, a P@NRC-OH electrode exhibited enhanced energy storage properties in terms of specific capacity (541.66 mA h g(-1) at 3 mA cm(-2)), cycling durability (90.35% over 20 000 cycles), and rate capability (308.64 mA h g(-1) at 20 mA cm(-2)). An assembled full-cell HSSC with P@NRC-OH nanofibers as the cathode material and porous activated carbon as the anode material produced a maximum specific energy of 90.02 W h kg(-1) at a specific power of 1363 W kg(-1) which remained as high as 37.87 W h kg(-1) at a power density of 6818.18 W kg(-1), with remarkable cycling stability over 15 000 charge-discharge cycles. The proposed approach thus represents a scalable and efficient strategy for the design of electrodes and devices with superior electrochemical performance.
Files in This Item
There are no files associated with this item.
Appears in
Collections
College of Engineering > Department of Energy and Materials Engineering > 1. Journal Articles

qrcode

Items in ScholarWorks are protected by copyright, with all rights reserved, unless otherwise indicated.

Related Researcher

Researcher Raju, Ganji Seeta Rama photo

Raju, Ganji Seeta Rama
College of Engineering (Department of Energy and Materials Engineering)
Read more

Altmetrics

Total Views & Downloads

BROWSE