Back to Search Start Over

3D Printing of Porous Nitrogen-Doped Ti 3 C 2 MXene Scaffolds for High-Performance Sodium-Ion Hybrid Capacitors.

Authors :
Fan Z
Wei C
Yu L
Xia Z
Cai J
Tian Z
Zou G
Dou SX
Sun J
Source :
ACS nano [ACS Nano] 2020 Jan 28; Vol. 14 (1), pp. 867-876. Date of Electronic Publication: 2020 Jan 07.
Publication Year :
2020

Abstract

3D printing technology has stimulated a burgeoning interest to fabricate customized architectures in a facile and scalable manner targeting wide ranged energy storage applications. Nevertheless, 3D-printed hybrid capacitor devices synergizing favorable energy/power density have not yet been explored thus far. Herein, we demonstrate a 3D-printed sodium-ion hybrid capacitor (SIC) based on nitrogen-doped MXene ( N -Ti <subscript>3</subscript> C <subscript>2</subscript> T <subscript> x </subscript> ) anode and activated carbon cathode. N-Ti <subscript>3</subscript> C <subscript>2</subscript> T <subscript> x </subscript> affording a well-defined porous structure and uniform nitrogen doping can be obtained via a sacrificial template method. Thus-formulated ink can be directly printed to form electrode architecture without the request of a conventional current collector. The 3D-printed SICs, with a large areal mass loading up to 15.2 mg cm <superscript>-2</superscript> , can harvest an areal energy/power density of 1.18 mWh cm <superscript>-2</superscript> /40.15 mW cm <superscript>-2</superscript> , outperforming the state-of-the-art 3D-printed energy storage devices. Furthermore, our SIC also achieves a gravimetric energy/power density of 101.6 Wh kg <superscript>-1</superscript> /3269 W kg <superscript>-1</superscript> . This work demonstrates that the 3D printing technology is versatile enough to construct emerging energy storage systems reconciling high energy and power density.

Details

Language :
English
ISSN :
1936-086X
Volume :
14
Issue :
1
Database :
MEDLINE
Journal :
ACS nano
Publication Type :
Academic Journal
Accession number :
31898892
Full Text :
https://doi.org/10.1021/acsnano.9b08030