Back to Search Start Over

3D Crumpled Ultrathin 1T MoS 2 for Inkjet Printing of Mg-Ion Asymmetric Micro-supercapacitors.

Authors :
Shao Y
Fu JH
Cao Z
Song K
Sun R
Wan Y
Shamim A
Cavallo L
Han Y
Kaner RB
Tung VC
Source :
ACS nano [ACS Nano] 2020 Jun 23; Vol. 14 (6), pp. 7308-7318. Date of Electronic Publication: 2020 Jun 08.
Publication Year :
2020

Abstract

Metallic molybdenum disulfide (MoS <subscript>2</subscript> ), e . g ., 1T phase, is touted as a highly promising material for energy storage that already displays a great capacitive performance. However, due to its tendency to aggregate and restack, it remains a formidable challenge to assemble a high-performance electrode without scrambling the intrinsic structure. Here, we report an electrohydrodynamic-assisted fabrication of 3D crumpled MoS <subscript>2</subscript> (c-MoS <subscript>2</subscript> ) and its formation of an additive-free stable ink for scalable inkjet printing. The 3D c-MoS <subscript>2</subscript> powders exhibited a high concentration of metallic 1T phase and an ultrathin structure. The aggregation-resistant properties of the 3D crumpled particles endow the electrodes with open space for electrolyte ion transport. Importantly, we experimentally discovered and theoretically validated that 3D 1T c-MoS <subscript>2</subscript> enables an extended electrochemical stable working potential range and enhanced capacitive performance in a bivalent magnesium-ion aqueous electrolyte. With reduced graphene oxide (rGO) as the positive electrode material, we inkjet-printed 96 rigid asymmetric micro-supercapacitors (AMSCs) on a 4-in. Si/SiO <subscript>2</subscript> wafer and 100 flexible AMSCs on photo paper. These AMSCs exhibited a wide stable working voltage of 1.75 V and excellent capacitance retention of 96% over 20 000 cycles for a single device. Our work highlights the promise of 3D layered materials as well-dispersed functional materials for large-scale printed flexible energy storage devices.

Details

Language :
English
ISSN :
1936-086X
Volume :
14
Issue :
6
Database :
MEDLINE
Journal :
ACS nano
Publication Type :
Academic Journal
Accession number :
32478507
Full Text :
https://doi.org/10.1021/acsnano.0c02585