Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/8974
Title: Robust heterostructures of a bimetallic sodium-zinc metal-organic framework and reduced graphene oxide for high-performance supercapacitors
Authors: Rajak, Richa
Saraf, Mohit
Mobin, Shaikh M.
Keywords: Crystal structure;Crystalline materials;Graphene;Metal ions;Metals;Organic polymers;Organometallics;Supercapacitor;Zinc compounds;Cycling efficiency;Electrochemical analysis;Layered Structures;Reduced graphene oxides;Room temperature synthesis;Specific capacitance;State of the art;Two Dimensional (2 D);Sodium compounds
Issue Date: 2019
Publisher: Royal Society of Chemistry
Citation: Rajak, R., Saraf, M., & Mobin, S. M. (2019). Robust heterostructures of a bimetallic sodium-zinc metal-organic framework and reduced graphene oxide for high-performance supercapacitors. Journal of Materials Chemistry A, 7(4), 1725-1736. doi:10.1039/c8ta09528k
Abstract: Two-dimensional (2D) mixed metal-organic frameworks (M-MOFs) have emerged as promising energy storage materials in the MOF family. Herein, we report the facile, room temperature synthesis of a Na/Zn-based bimetallic MOF, [NaZn 2 (μ 2 -BTC) 2 (μ 2 -O) 2 (Azopy)(H 2 O) 2 ] n (1, where BTC = trimesic acid and Azopy = 4,4′-azopyridine), grown through a slow diffusion technique. The crystal structure of 1 reveals the ratio of Zn(ii) to Na(i) metal ions to be 2 : 1, and the overall framework exhibits a 2D layered structure. In light of the poor conductivity of MOFs, and also to take full advantage of this 2D MOF for supercapacitor use, we assembled a unique robust heterostructure of 1 with another 2D material, i.e. reduced graphene oxide (2), using a simple-yet-effective ultra-sonication assisted approach. Electrochemical analyses reveal the notable specific capacitance (435.2 F g -1 at 1.6 A g -1 ) of the formed heterostructure (3), with exceptional cycling efficiency (no observed loss up to 4000 cycles in the absence of any binders). The obtained encouraging results were attributed to synergistically enhanced contributions from each participating 2D material and the formation of a robust heterostructure due to the proper stacking of the two different layered 2D materials. The results exceed those of related state-of-the-art structures and suggest the promising nomination of 2D MOFs and their heterostructures for application in the emerging world of next-generation supercapacitors. © 2019 The Royal Society of Chemistry.
URI: https://doi.org/10.1039/c8ta09528k
https://dspace.iiti.ac.in/handle/123456789/8974
ISSN: 2050-7488
Type of Material: Journal Article
Appears in Collections:Department of Chemistry

Files in This Item:
There are no files associated with this item.


Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

Altmetric Badge: