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Updated: Feb 8, 2026

Preparation of Carbon Nanosheets at Room Temperature
Published on: March 8, 2016
In-Situ Gas Exfoliation Chemistry Engineering of Oxygen/Nitrogen-Functionalized Porous Carbon Nanosheet Frameworks
Caiwei Wang1, Jie Qiao1, Bo Chen1
1School of Chemistry and Chemical Engineering, University Engineering Research Center of Green Chemical New Materials Guangxi Key Laboratory of Petrochemical Resource Processing and Process Intensification Technology Guangxi University (GXU), 100 Daxuedong Road, Xixiangtang, Nanning 530004, China.
Abstract:
Oxygen (O)/nitrogen (N) codoped porous carbons are promising electrode materials for supercapacitors. The simultaneous construction of the O/N functionalized sites and efficient porous structure remains challenging. Herein, a novel in situ gas exfoliation chemistry engineering, including self-assembly synthesis and NaNO3/CaC2O4 activation, is designed to construct an O/N functionalized lignosulfonate sodium (LS)-derived porous carbon nanosheet framework. Ca2+ ions first coordinate with -SO3/-OH groups to disperse LS, and then partially combine with C2O42- ions to form elliptical CaC2O4@LS. NaNO3 is precipitated within CaC2O4@LS to form uniformly mixed precursor. The uniform mixing enhances NaNO3 and CaC2O4 activation to construct a porous carbon nanosheet framework (LPCA-Ca-Na) with 0.7-0.9 and 1-2 nm micropores, 8-200 nm meso-macropores, and high C═O (6.0 at. %) and edge N (6.3 at. %) contents. LPCA-Ca-Na delivers a high capacitance of 369 F g-1 at 0.5 A g-1, good rate capability, and outstanding cycling stability, due to the high micropore volume and high C═O and edge N contents providing sufficient adsorption sites and meso-macropores accelerating kinetics. The symmetric supercapacitor achieves a high energy density of 17 Wh kg-1 at 238 W kg-1 and excellent temperature adaptability. This work demonstrates a sustainable strategy for the efficient preparation of O/N-doped lignin-derived porous carbons for supercapacitors.
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