| Literature DB >> 32463691 |
Zihan Shen1, Zili Zhang1, Matthew Li2, Yifei Yuan2, Yue Zhao1, Shuo Zhang1, Chenglin Zhong1, Jia Zhu1, Jun Lu2, Huigang Zhang1.
Abstract
Slow kinetics of polysulfide conversion reactions lead to severe issues for lithium-sulfur (Li-S) batteries, for example, low rate capability, polysulfide migration, and low Coulombic efficiencies. These challenges hinder the practical applications of Li-S batteries. In this study, we proposed a rational strategy of tuning the d-band of catalysts to accelerate the conversion of polysulfides. Nitrogen vacancies were engineered in hexagonal Ni3N (space group P6322) to tune its d-band center, leading to the strong interaction between polysulfides and Ni3N. Because of the greater electron population in the lowest occupied molecular orbital of Li2S4, the terminal S-S bonds were weakened for breaking. Temperature-dependent experiments confirm that Ni3N0.85 demonstrates a much low activation energy, thereby accelerating the conversion of polysulfides. A Li-S cell using Ni3N0.85 can deliver a high initial discharge capacity of 1445.9 mAh g-1 (at 0.02 C) and low decay per cycle (0.039%). The Ni3N0.85 cell can also demonstrate an initial capacity of 1200.4 mAh g-1 for up to 100 cycles at a high loading of 5.2 mg cm-2. The high efficiency of rationally designed Ni3N0.85 demonstrates the effectiveness of the d-band tuning strategy to develop low-activation-energy catalysts and to promote the atomic understanding of polysulfide conversion in Li-S batteries.Entities:
Keywords: Ni3N0.85; electrocatalyst; lithium−sulfur batteries; nanocubes; polysulfide conversion
Year: 2020 PMID: 32463691 DOI: 10.1021/acsnano.9b09371
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881