TY - JOUR
T1 - Integrating Nanoreactor with O–Nb–C Heterointerface Design and Defects Engineering Toward High-Efficiency and Longevous Sodium Ion Battery
AU - Luo, Dan
AU - Ma, Chuyin
AU - Hou, Junfeng
AU - Zhang, Zhen
AU - Feng, Renfei
AU - Yang, Leixin
AU - Zhang, Xiaowen
AU - Lu, Han
AU - Liu, Jiabing
AU - Li, Yebao
AU - Zhang, Yongguang
AU - Wang, Xin
AU - Chen, Zhongwei
N1 - Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2022/5/12
Y1 - 2022/5/12
N2 - Sodium-ion batteries (SIBs) have attracted much attention for their advantages of high operating voltage, environmental friendliness and cost-effectiveness. However, the intrinsic defects of anode materials (such as poor electrical conductivity, sluggish kinetics, and large volume changes) hinder them from meeting the requirements for practical applications. Herein, a Nb2O5@carbon nanoreactor containing both a O–Nb–C heterointerface and oxygen vacancies (Nb2O5-x@MEC) as an anode material is designed to drive SIBs toward extraordinary capacity and ultra-long cycle life. The heterostructured nanoreactor both effectively immobilizes defective Nb2O5 by forming O-Nb-C heterointerface and offers homogeneous dispersion of Nb2O5 with desirable content to prevent their agglomeration. In addition, vast active interfaces, favored electrolyte infiltration, and a well-structured ion–electron transportation channel are enabled by the framework, improving sodium ion storage and enhancing redox reaction kinetics. The enhancement brought by spatial confinement, defect implantation and heterointerface design give the composites a highly reversible sodiation–desodiation process and remarkable structural stability. By virtue of these superiorities, Nb2O5-x@MEC delivers excellent performance, i.e., high areal capacity over 1.1 mAh cm-2, admirable rate capability up to 20 A g-1, and ultra-long cycling performance over 5000 cycles, holding great promise for utilization in practically viable SIBs.
AB - Sodium-ion batteries (SIBs) have attracted much attention for their advantages of high operating voltage, environmental friendliness and cost-effectiveness. However, the intrinsic defects of anode materials (such as poor electrical conductivity, sluggish kinetics, and large volume changes) hinder them from meeting the requirements for practical applications. Herein, a Nb2O5@carbon nanoreactor containing both a O–Nb–C heterointerface and oxygen vacancies (Nb2O5-x@MEC) as an anode material is designed to drive SIBs toward extraordinary capacity and ultra-long cycle life. The heterostructured nanoreactor both effectively immobilizes defective Nb2O5 by forming O-Nb-C heterointerface and offers homogeneous dispersion of Nb2O5 with desirable content to prevent their agglomeration. In addition, vast active interfaces, favored electrolyte infiltration, and a well-structured ion–electron transportation channel are enabled by the framework, improving sodium ion storage and enhancing redox reaction kinetics. The enhancement brought by spatial confinement, defect implantation and heterointerface design give the composites a highly reversible sodiation–desodiation process and remarkable structural stability. By virtue of these superiorities, Nb2O5-x@MEC delivers excellent performance, i.e., high areal capacity over 1.1 mAh cm-2, admirable rate capability up to 20 A g-1, and ultra-long cycling performance over 5000 cycles, holding great promise for utilization in practically viable SIBs.
KW - defects
KW - heterointerfaces
KW - niobium pentoxide
KW - sodium ion batteries
KW - structure design
UR - http://www.scopus.com/inward/record.url?scp=85124568872&partnerID=8YFLogxK
U2 - 10.1002/aenm.202103716
DO - 10.1002/aenm.202103716
M3 - 文章
AN - SCOPUS:85124568872
SN - 1614-6832
VL - 12
JO - Advanced Energy Materials
JF - Advanced Energy Materials
IS - 18
M1 - 2103716
ER -