| Literature DB >> 29869451 |
Junhan Cheng1, Dan Zhao1, Lishuang Fan2, Xian Wu1, Maoxu Wang1, Hexian Wu1, Bin Guan1, Naiqing Zhang1,2, Kening Sun1,2.
Abstract
Sulfur cathodes have attracted significant attention as next-generation electrode material candidates due to their considerable theoretical energy density. The main challenge in developing long-life Li-S batteries is to simultaneously suppress the shuttle effect and high areal mass loading of sulfur required for practical applications. To solve this problem, we have designed a novel nickel phosphide nanoporous composite derived from metal-organic frameworks (MOFs) as sulfur host materials. Homogeneous distribution of Ni2 P nanoparticles significantly avoids soluble polysulfides migrating out of the framework through strong chemical interactions, and the conductive 3D skeleton offers an accelerating electron transport. As a result, S@Ni2 P/NC has exhibited an enhanced performance of 1357 mAh g-1 initially at 0.2 C (1 C=1675 mA g-1 ) and remaining at 946 mAh g-1 after 300 cycles. Even at an areal mass loading of sulfur as high as 4.6 mg cm-2 , the electrode still showed an excellent specific capacity of 918 mAh g-1 .Entities:
Keywords: 3D structure; Ni2P; batteries; metal-organic frameworks; polar host materials
Year: 2018 PMID: 29869451 DOI: 10.1002/chem.201801939
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236