| Literature DB >> 34937010 |
Shenghong Liu1, Wenrui Zheng1, Mingyue Huang1, Yaning Xu1, Wenhe Xie1, Haibin Sun1, Yanming Zhao2,3.
Abstract
Defect engineering have profound influence on the energy storage properties of electrode hybrids by adjusting their intrinsic electronic characteristics. For iron carbide based materials, however, the effect of defect (especially cation vacancies) toward their electrochemical performance are still unclear. Herein, the feasible and scalable synthesis of FexC@NC with 3D honeycomb-like carbon architecture and abundant Fe vacancies via template etching is reported. Such structure enable outstanding lithium-ion storage properties owing to hierarchical pores, improved intrinsic electrochemical activity, as well as the introduction of more active sites. As a result, the FexC@NC-2 presents a high reversible specific capacity of 1079 mAh g-1after 1000 cycles. Moreover, an excellent cycling stability can be achieved via maintaining a high-capacity retention (689 mAh g-1, 98.4%) over 1000 cycles at 5 A g-1. This study provides a feasible strategy for developing high-performance hybrids with hierarchical pore and rich defects structures.Entities:
Keywords: Fe-based materials; iron vacancies; lithium ion batteries; nitrogen doping
Year: 2022 PMID: 34937010 DOI: 10.1088/1361-6528/ac45c4
Source DB: PubMed Journal: Nanotechnology ISSN: 0957-4484 Impact factor: 3.874