Yolk-Shell MnO@ZnMn2O4/N-C Nanorods Derived from α-MnO2/ZIF-8 as Anode Materials for Lithium Ion Batteries

Manganese oxides (MnOx) are promising anode materials for lithium ion batteries, but they generally exhibit mediocre performances due to intrinsic low ionic conductivity, high polarization, and poor stability. Herein, yolk–shell nanorods comprising of nitrogen‐doped carbon (N–C) coating on manganese...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:Small (Weinheim an der Bergstrasse, Germany) Germany), 2016-10, Vol.12 (40), p.5564-5571
Hauptverfasser: Zhong, Ming, Yang, Donghui, Xie, Chenchao, Zhang, Zhang, Zhou, Zhen, Bu, Xian-He
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:Manganese oxides (MnOx) are promising anode materials for lithium ion batteries, but they generally exhibit mediocre performances due to intrinsic low ionic conductivity, high polarization, and poor stability. Herein, yolk–shell nanorods comprising of nitrogen‐doped carbon (N–C) coating on manganese monoxide (MnO) coupled with zinc manganate (ZnMn2O4) nanoparticles are manufactured via one‐step carbonization of α‐MnO2/ZIF‐8 precursors. When evaluated as anodes for lithium ion batteries, MnO@ZnMn2O4/N–C exhibits an reversible capacity of 803 mAh g−1 at 50 mA g−1 after 100 cycles, excellent cyclability with a capacity of 595 mAh g−1 at 1000 mAg−1 after 200 cycles, as well as better rate capability compared with those non‐N–C shelled manganese oxides (MnOx). The outstanding electrochemical performance is attributed to the unique yolk–shell nanorod structure, the coating effect of N–C and nanoscale size. A one‐step carbonizing strategy is applied to prepare yolk–shell MnO@ZnMn2O4/N–C nanorods for lithium ion batteries. The predominant electrochemical performance originates from the unique yolk–shell nanorod structure and the coating effect of N–C, which buffers volume change and provides short ion diffusion distance and direct current pathways to accelerate reaction kinetics and improve electrical conductivity.
ISSN:1613-6810
1613-6829
DOI:10.1002/smll.201601959