| Literature DB >> 34145746 |
Do Van Lam1, Uyen Nhat Trieu Nguyen1,2, Euijin Roh3, Wanuk Choi3, Jae-Hyun Kim1,2, Hyunuk Kim2,3, Seung-Mo Lee1,2.
Abstract
Pseudocapacitive materials encapsulated in conductive carbon matrix are of paramount importance to develop energy storage devices with high performance and long lifespan. Here, via simple laser-scribing, the Mn-based metal-organic framework [EG-MOF-74(Mn)] is transformed into pseudocapacitive hybrid MnO/Mn7 C3 encapsulated in highly conductive graphitic carbon. It is revealed that the rapid carbothermic reduction of MnO (C + MnO → C' + Mn7 C3 + CO) leads to the formation of the intermediate pseudocapacitive MnO/Mn7 C3 and the concurrent catalytic graphitization of disordered carbon. This reaction produces a new type of pseudocapacitive material in the form of MnO/Mn7 C3 fully embedded in highly conductive graphitic carbon. Thanks to the synergistic effect of the MnO/Mn7 C3 nanoparticles and the graphitic carbon, the composite exhibits a high specific capacitance of 403 F g-1 with excellent stability. Asymmetric coin-cell supercapacitors based on the composite demonstrate high energy (29.2 Wh kg-1 ) and power densities (8000 W kg-1 ) with a long lifespan. Prototypes of flexible paper-based supercapacitors made of the composite also show great potential toward applications of flexible electronics.Entities:
Keywords: carbothermic reduction; catalytic graphitization; graphitic carbon; laser-scribing; metal-organic frameworks; supercapacitors
Year: 2021 PMID: 34145746 DOI: 10.1002/smll.202100670
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281