Issue 5, 2019

Sakura-based activated carbon preparation and its performance in supercapacitor applications

Abstract

3D porous carbonaceous materials were prepared by combining pre-carbonization and KOH activation with sakura petals as raw materials. The prepared porous sakura carbon (SAC-4) exhibits a high specific surface area, a suitable pore size distribution, a low proportion of oxygen-rich groups and N functional groups, and a partially graphitized phase, which are very beneficial for the electrochemical performance of the material as a supercapacitor electrode. In the activation step, when the mass ratio of KOH to sakura carbon (SC) is 4, a supercapacitor is prepared. A maximal specific capacitance of 265.8 F g−1 is obtained when the current density is 0.2 A g−1. When the current density is 1 A g−1, after 2000 cycles in succession, the capacitance retention rate is excellent and the cycling stability can reach as high as 90.2%. The obtained results indicate that porous carbon prepared with sakura blossom as the raw material is an effective and environmentally friendly electrode material for energy storage.

Graphical abstract: Sakura-based activated carbon preparation and its performance in supercapacitor applications

Article information

Article type
Paper
Submitted
25 Nov 2018
Accepted
28 Dec 2018
First published
18 Jan 2019
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2019,9, 2474-2483

Sakura-based activated carbon preparation and its performance in supercapacitor applications

F. Ma, S. Ding, H. Ren and Y. Liu, RSC Adv., 2019, 9, 2474 DOI: 10.1039/C8RA09685F

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