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Tunable capacitance in all-inkjet-printed nanosheet heterostructures

Authors :
Bernard A. Boukamp
Melvin A. Timmerman
Peng Yu Xu
Johan E. ten Elshof
Yizhou Zhang
Mohammad Mehrali
Yang Wang
MESA+ Institute
Inorganic Materials Science
Thermal Engineering
Catalytic Processes and Materials
Source :
Energy Storage Materials, 36, 318-325. Elsevier
Publication Year :
2021
Publisher :
Elsevier BV, 2021.

Abstract

Heterostructures constructed from two-dimensional building blocks have shown promise for field-effect transistors, memory devices, photosensors and other electronic applications1,2. 2D nanosheet crystals can be constructed into multilayer heterostructures using layer-by-layer methods3, but that method cannot be used to fabricate large-scale and thick heterostructures, due to the time-consuming nature and low efficiency of the process. An alternative approach to deposit different two-dimensional materials is by inkjet printing4-7. Here we show the fabrication of a nanosheet supercapacitor by inkjet printing Ti3C2Tx MXene nanosheets as electrodes, and graphene oxide nanosheets as solid-state electrolyte. The free water molecules trapped between graphene oxide sheets facilitate proton movement through the layered solid electrolyte8. The as-made supercapacitor shows high areal capacitance, good cycling stability and high areal energy and power densities comparable with existing printed supercapacitors. Moreover, the specific capacitance can be increased further by addition of liquid electrolytes.<br />Comment: original article including supporting information file

Details

ISSN :
24058297
Volume :
36
Database :
OpenAIRE
Journal :
Energy Storage Materials
Accession number :
edsair.doi.dedup.....4ce0d7015fac848ea284a48dc541158f
Full Text :
https://doi.org/10.1016/j.ensm.2021.01.009