| Literature DB >> 29021575 |
Guoxing Li1, Yue Gao1, Xin He2, Qingquan Huang1, Shuru Chen1, Seong H Kim2, Donghai Wang3.
Abstract
Lithium metal is a promising anode candidate for the next-generation rechargeable battery due to its highest specific capacity (3860 mA h g-1) and lowest potentiEntities:
Year: 2017 PMID: 29021575 PMCID: PMC5636837 DOI: 10.1038/s41467-017-00974-x
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Schematic illustration of the formation of stable inorganic/organic hybrid SEI layer. a SCP provides organic units (organosulfide/organopolysulfide) and inorganic units (Li2S/Li2S2) in the electrolyte. b Schematics of the formation of organosulfides/organopolysulfides-Li2S/Li2S2 hybrid SEI layer. c The protection of the Li metal by the stable inorganic/organic hybrid SEI layer
Fig. 2Morphologies of Li metal deposited onto stainless steel substrates. SEM images of Li metal deposited onto bare stainless steel substrates in the control electrolyte (a–c), S-Electrolyte (d–f), and PST-90-Electolyte (g–i) at a current density of 2 mA cm−2 and a deposition capacity of 2 mA h cm−2. Scale bars in a, b, c: 50, 10, and 10 µm. Scale bars in d, e, f: 50, 10, and 10 µm. Scale bars in g, h, i: 50, 10, and 5 µm. The data shows dense and dendrite-free Li made of highly packed Li is obtained after 10 cycles using PST-90-Electrolyte
Fig. 3The morphology and XPS spectra of SEI layers formed from the electrolytes containing different additives. a SEM image of C-SEI layer. b SEM image of S-SEI layer. c SEM image of PST-90-SEI layer. S 2p XPS spectra (d), C 1s XPS spectra (e), and F 1s XPS spectra (f) of the SEI layers formed from different electrolytes. Scale bar in a, b, c: 10 µm
Fig. 4Surface morphology and mechanical property of the SEI layers formed from the different electrolytes. AFM images (10 × 10 µm2 scan size) of the C-SEI layer (a), S-SEI layer (b), and PST-90-SEI layer (c). Indentation curves of the C-SEI layer (d), S-SEI layer (e), and PST-90-SEI layer (f). The SEI layers were obtained after 100 cycles of Li plating/stripping, and Li was stripped completely before the AFM characterization
Fig. 5Characterization of electrochemical performance. Cycling performances of the cells using PST-90-Electrolyte (magenta symbols) at a current density of 2 mA cm−2 with a deposition capacity of 1 mA h cm−2 (a); at a current density of 2 mA cm−2 with a deposition capacity of 2 mA h cm−2 (b); at a current density of 2 mA cm−2 with a deposition capacity of 3 mA h cm−2 (c). The black and blue symbols represent data of the samples using the control electrolyte and the S-Electrolyte, respectively. d The electrochemical performance of the Li-S batteries using electrolytes containing different additives at a rate of 1C. The Ketjen Black (KB) containing 70 wt% S was used as the cathode material. The areal sulfur loading is 1.5 mg cm−2