| Literature DB >> 24751669 |
Rahul Mukherjee1, Abhay V Thomas1, Dibakar Datta2, Eklavya Singh3, Junwen Li4, Osman Eksik3, Vivek B Shenoy5, Nikhil Koratkar6.
Abstract
Lithium metal is known to possess a very high theoretical capacity of 3,842 mAh g(-1) in lithium batteries. However, the use of metallic lithium leads to extensive dendritic growth that poses serious safety hazards. Hence, lithium metal has long been replaced by layered lithium metal oxide and phospho-olivine cathodes that offer safer performance over extended cycling, although significantly compromising on the achievable capacities. Here we report the defect-induced plating of metallic lithium within the interior of a porous graphene network. The network acts as a caged entrapment for lithium metal that prevents dendritic growth, facilitating extended cycling of the electrode. The plating of lithium metal within the interior of the porous graphene structure results in very high specific capacities in excess of 850 mAh g(-1). Extended testing for over 1,000 charge/discharge cycles indicates excellent reversibility and coulombic efficiencies above 99%.Entities:
Year: 2014 PMID: 24751669 DOI: 10.1038/ncomms4710
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919