Synthesis of Microscopic 3D Graphene for High‐Performance Supercapacitors with Ultra‐High Areal Capacitance

Author:

Pham Viet Hung12ORCID,Wang Congjun1,Gao Yuan12,Weidman Jennifer12,Kim Ki‐Joong12,Matranga Christopher1

Affiliation:

1. National Energy Technology Laboratory 626 Cochran Mill Road Pittsburgh PA 15236 USA

2. NETL Support Contractor 626 Cochran Mill Road Pittsburgh PA 15236 USA

Abstract

AbstractDespite graphene being considered an ideal supercapacitor electrode material, its use in commercial devices is limited because few methods exist to produce high‐quality graphene at a large scale and low cost. A simple method is reported to synthesize 3D graphene by graphenization of coal tar pitch with a K2CO3 catalyst. This produces 3D graphenes with high specific surface areas up to 2113 m2 g−1 and exceptional crystallinity (Raman ID/IG as low as ≈0.15). The material has an outstanding specific capacitance of 182.6 F g−1 at a current density of 1.0 A g−1. This occurs at a mass loading of 30 mg cm−2 which is 3 times higher than commercial requirements, yielding an ultra‐high areal capacitance of 5.48 F cm−2. The K2CO3 is recycled and reused over 10 cycles with material quality and electrocapacitive performance of 3D graphene retained and verified after each cycle. The synthesis method and resulting electrocapacitive performance properties create new opportunities for using 3D graphene more broadly in practical supercapacitor devices.

Publisher

Wiley

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