Please use this identifier to cite or link to this item: http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/7427
Title: Highly Stable and End-group Tuneable Metal–Organic Framework/Polymer Composite for Superior Triboelectric Nanogenerator Application
Authors: MORE, YOGESHWAR D.
SAURABH, SATYAM
MOLLICK, SAMRAJ
DUTTA, SUBHAJIT
FAJAL, SAHEL
PRATHAMSHETTI, ANIL
WABLE, MINAL
OGALE, SATISHCHANDRA
GHOSH, SUJIT K.
Dept. of Chemistry
Dept. of Physics
Keywords: Composite
Functional group tuning
Isoreticular
Metal-organic frameworks
Mechanical energy harvesting
Micro-nano energy devices
Reusability
Self-powered sensors and systems
Stability
Tuneability
Triboelectric nanogenerators
2022-OCT-WEEK3
TOC-OCT-2022
2022
Issue Date: Dec-2022
Publisher: Wiley
Citation: Advanced Materials Interfaces, 9(34), 2201713.
Abstract: Triboelectric nanogenerators (TENGs) are receiving significant attention lately as efficient mechanical energy harvesting devices. They are finding multiple uses in numerous low-power applications. Current TENG designs, although innovative, fall short on practical demands like performance tunability, modulatory, and stability. This invites further research in the use of new materials for TENGs. Metal-organic frameworks (MOFs) offer a unique feature of molecular tunability to optimize energy conversion which has been exploited in this study. Prototypal hybridization strategy is deployed on underexplored isoreticular subfamily UiO-66(Zr) MOFs through UiO-66-X/PVDF (X = H or Br) composites for TENG output tuning and amplification. UiO-66-X/PVDF exhibits good aquatic and thermal stability accompanying substantial boost in TENG power. Functionalized H2BDC linker improved surface roughness and potential. UiO-66-Br encased in PVDF matrix boosted charge and TENG performance by enhancing electrification. Computational details support observations. Device captures waste energy in a vertical contact-separation mode and functions consistently amidst diverse environmental settings. Functionalized TENG-2 delivers a Vp–p of 110.41 V, which is 2.92 times and 14.12 times higher than unfunctionalized TENG-1 and PVDF film, respectively. Findings reveal maiden example of ligand-mediated functional group-driven performance tuning of TENG and mechanistic insight using isoreticular MOFs/PVDF composites.
URI: https://doi.org/10.1002/admi.202201713
http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/7427
ISSN: 2196-7350
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