Jump to main content
US EPA
United States Environmental Protection Agency
Search
Search
Main menu
Environmental Topics
Laws & Regulations
About EPA
Health & Environmental Research Online (HERO)
Contact Us
Print
Feedback
Export to File
Search:
This record has one attached file:
Add More Files
Attach File(s):
Display Name for File*:
Save
Citation
Tags
HERO ID
7002046
Reference Type
Journal Article
Title
3D-Printed Stretchable Micro-Supercapacitor with Remarkable Areal Performance
Author(s)
Li, X; Li, H; Fan, X; Shi, X; Liang, J; ,
Year
2020
Publisher
WILEY-V C H VERLAG GMBH
Location
WEINHEIM
Volume
10
Issue
14
DOI
10.1002/aenm.201903794
Web of Science Id
WOS:000510051600001
Abstract
While stretchable micro-supercapacitors (MSCs) have been realized, they have suffered from limited areal electrochemical performance, thus greatly restricting their practical electronic application. Herein, a facile strategy of 3D printing and unidirectional freezing of a pseudoplastic nanocomposite gel composed of Ti3C2Tx MXene nanosheets, manganese dioxide nanowire, silver nanowires, and fullerene to construct intrinsically stretchable MSCs with thick and honeycomb-like porous interdigitated electrodes is introduced. The unique architecture utilizes thick electrodes and a 3D porous conductive scaffold in conjunction with interacting material properties to achieve higher loading of active materials, larger interfacial area, and faster ion transport for significantly improved areal energy and power density. Moreover, the oriented cellular scaffold with fullerene-induced slippage cell wall structure prompts the printed electrode to withstand large deformations without breaking or exhibiting obvious performance degradation. When imbued with a polymer gel electrolyte, the 3D-printed MSC achieves an unprecedented areal capacitance of 216.2 mF cm(-2) at a scan rate of 10 mV s(-1), and remains stable when stretched up to 50% and after 1000 stretch/release cycles. This intrinsically stretchable MSC also exhibits high rate capability and outstanding areal energy density of 19.2 mu Wh cm(-2) and power density of 58.3 mW cm(-2), outperforming all reported stretchable MSCs.
Keywords
3D printing; MXene; stretchable micro-supercapacitor; thick electrode; wearable electronics
Home
Learn about HERO
Using HERO
Search HERO
Projects in HERO
Risk Assessment
Transparency & Integrity