download0 view1,257
twitter facebook

공공누리This item is licensed Korea Open Government License

dc.contributor.author
최동신
dc.contributor.author
정유성
dc.contributor.author
김용태
dc.contributor.author
김희진
dc.contributor.author
염민선
dc.date.accessioned
2019-08-28T07:42:19Z
dc.date.available
2019-08-28T07:42:19Z
dc.date.issued
2018-01-27
dc.identifier.issn
0020-1669
dc.identifier.uri
https://repository.kisti.re.kr/handle/10580/14787
dc.identifier.uri
http://www.ndsl.kr/ndsl/search/detail/article/articleSearchResultDetail.do?cn=NART80497865
dc.description.abstract
While selenium has recently been proposed as a lithium battery cathode as a promising alternative to a lithium–sulfur battery, dissolution of intermediate species should be resolved to improve its cycle stability. Here, we report the promising results of transition-metal disulfides as an anchoring material and the underlying origin for preventing active material loss from the electrode using density functional theory calculations. Group 5 and 4 disulfides (VS2, NbS2, TaS2, TiS2, ZrS2, and HfS2) in particular show anchoring capabilities superior to those of group 6 disulfides (CrS2, MoS2, and WS2). The governing interaction controlling the latter relative anchoring strengths is shown to be charge transfer as understood by crystal-field theory. The current findings and methodologies provide novel chemical insight for the further design of inorganic anchoring materials for both lithium–selenium and lithium–sulfur batteries.
dc.language
eng
dc.relation.ispartofseries
Inorganic Chemistry
dc.title
Polyselenide Anchoring Using Transition-Metal Disulfides for Enhanced Lithium−Selenium Batteries
dc.citation.endPage
2156
dc.citation.number
4
dc.citation.startPage
2149
dc.citation.volume
57
dc.subject.keyword
Polyselenide Anchoring
dc.subject.keyword
Lithium−Selenium Batteries
Appears in Collections:
7. KISTI 연구성과 > 학술지 발표논문
Files in This Item:
There are no files associated with this item.

Browse