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Graphene Oxide Hybrid with Sulfur–Nitrogen Polymer for High-Performance Pseudocapacitors
Author(s) -
Samanta Witomska,
Zhaoyang Liu,
Włodzimierz Czepa,
Alessandro Aliprandi,
Dawid Pakulski,
Piotr Pawluć,
Artur Ciesielski,
Paolo Samorı́
Publication year - 2018
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.8b11181
Subject(s) - pseudocapacitor , pseudocapacitance , graphene , chemistry , oxide , capacitance , supercapacitor , chemical engineering , redox , horizontal scan rate , electrochemistry , carbon fibers , inorganic chemistry , cyclic voltammetry , nanotechnology , electrode , materials science , organic chemistry , composite material , composite number , engineering
Toward the introduction of fast faradaic pseudocapacitive behavior and the increase of the specific capacitance of carbon-based electrodes, we covalently functionalized graphene oxide with a redox active thiourea-formaldehyde polymer, yielding a multifunctional hybrid system. The multiscale physical and chemical characterization of the novel 3-dimensional hybrid revealed high material porosity with high specific surface area (402 m 2 g -1 ) and homogeneous element distribution. The presence of multiple functional groups comprising sulfur, nitrogen, and oxygen provide additional contribution of Faradaic redox reaction in supercapacity performance, leading to a high effective electrochemical pseudocapacitance. Significantly, our graphene-based 3-dimensional thiourea-formaldehyde hybrid exhibited specific capacitance as high as 400 F g -1 , areal capacitance of 160 mF cm -2 , and an energy density of 11.1 mWh cm -3 at scan rate of 1 mV s -1 with great capacitance retention (100%) after 5000 cycles at scan rate of 100 mV s -1 .

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