Issue 57, 2020, Issue in Progress

MOF-derived manganese oxide/carbon nanocomposites with raised capacitance for stable asymmetric supercapacitor

Abstract

Owing to immense application potentials in electrochemical energy storages, metal organic framework (MOF)-derived metal oxide/carbon nanocomposites have attracted extensive interest of research. Although thermolysis has been widely employed to convert MOFs into various active materials, a large set of in situ changes in chemical composition, phase(s) and morphology requires delicate control over heating parameters. Through an innovative two-stage process, Mn-MIL-100 is first transformed into MnO@C by annealing at 700 °C under N2 flow, which is then transformed into Mn3O4@C at 200 °C in air, while retaining a high surface area. The appropriate retention of carbon content for Mn3O4@C can also be easily obtained with the control of heating time. In contrast, thermolysis of MnO@C at higher temperatures gives rise to manganese oxides with negligible carbon content and a greatly reduced surface area. The optimized Mn3O4@C-2 h, derived from MnO@C at 200 °C for 2 hours, showed the highest capacitance, far exceeding that of MnO@C and other derivatives. When combined with graphene oxide (GO) nanosheets to form a flexible Mn3O4@C/rGO paper electrode, it demonstrated a capacitance of 328.4 F cm−3. The Mn3O4@C/rGO-based asymmetric supercapacitor thus assembled also shows favorable performance. The present work demonstrates the excellent controllability afforded by the innovative two-stage thermolysis in optimizing the electrochemical performance of MOF-derived active materials as electrode materials in supercapacitors.

Graphical abstract: MOF-derived manganese oxide/carbon nanocomposites with raised capacitance for stable asymmetric supercapacitor

Supplementary files

Article information

Article type
Paper
Submitted
23 Jun 2020
Accepted
02 Sep 2020
First published
16 Sep 2020
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2020,10, 34403-34412

MOF-derived manganese oxide/carbon nanocomposites with raised capacitance for stable asymmetric supercapacitor

B. R. Wang, Y. Hu, Z. Pan and J. Wang, RSC Adv., 2020, 10, 34403 DOI: 10.1039/D0RA05494A

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