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Reduced Graphene-Oxide-Encapsulated MoS2/Carbon Nanofiber Composite Electrode for High-Performance Na-Ion Batteries

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Abstract
Sodium-ion batteries (SIBs) have been increasingly studied due to sodium (Na) being an inexpensive ionic resource (Na) and their battery chemistry being similar to that of current lithium-ion batteries (LIBs). However, SIBs have faced substantial challenges in developing high-performance anode materials that can reversibly store Na+ in the host structure. To address these challenges, molybdenum sulfide (MoS2)-based active materials have been considered as promising anodes, owing to the two-dimensional layered structure of MoS2 for stably (de)inserting Na+. Nevertheless, intrinsic issues of MoS2-such as low electronic conductivity and the loss of active S elements after a conversion reaction-have limited the viability of MoS2 in practical SIBs. Here, we report MoS2 embedded in carbon nanofibers encapsulated with a reduced graphene oxide (MoS2@CNFs@rGO) composite for SIB anodes. The MoS2@CNFs@rGO delivered a high capacity of 345.8 mAh g(-1) at a current density of 100 mA g(-1) for 90 cycles. The CNFs and rGO were synergistically taken into account for providing rapid pathways for electrons and preventing the dissolution of S sources during repetitive conversion reactions. This work offers a new point of view to realize MoS2-based anode materials in practical SIBs.
Author(s)
조수호김종헌김일규박정호정지원김현석김일두
Issued Date
2021
Type
Article
Keyword
molybdenum sulfidescarbon nanofibersreduced graphene oxidesanodessodium-ion batteries
DOI
10.3390/nano11102691
URI
https://oak.ulsan.ac.kr/handle/2021.oak/9003
https://ulsan-primo.hosted.exlibrisgroup.com/primo-explore/fulldisplay?docid=TN_cdi_doaj_primary_oai_doaj_org_article_71ee406b95164960a815604492042620&context=PC&vid=ULSAN&lang=ko_KR&search_scope=default_scope&adaptor=primo_central_multiple_fe&tab=default_tab&query=any,contains,Reduced%20Graphene-Oxide-Encapsulated%20MoS2%2FCarbon%20Nanofiber%20Composite%20Electrode%20for%20High-Performance%20Na-Ion%20Batteries&offset=0&pcAvailability=true
Publisher
NANOMATERIALS
Location
스위스
Language
영어
ISSN
2079-4991
Citation Volume
11
Citation Number
10
Citation Start Page
2691
Citation End Page
2691
Appears in Collections:
Engineering > Material Engineering
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