As an ion-embedded material with small strain and low transport energy barrier, the limited ion transport rate and conductivity of niobium pentaoxide (Nb O ) are the main factors limiting its application in lithium/sodium storage systems. In this work, the microsphere composites (N-Nb O @CNTs) are prepared by combining Nb O , rich in nitrogen doping and vacancy defects, with carbon nanotubes (CNTs) penetrating the bulk phase. With the capillary effect, CNTs can enable the rapid electrolyte infiltration into the microspheres, thus shorting the Li /Na transport path. In addition, CNTs also hinder the direct contact between the electrolyte and Nb O , and inhibit the irreversible reaction. Meanwhile, nitrogen doping and oxygen vacancy defects reduce the energy barrier of Li /Na transport, and improve their transport rate, proved by density functional theory. Highly conductive CNTs and unpaired electrons from defects also ameliorate the insulation property of Nb O . Therefore, N-Nb O @CNTs display good electrochemical performance in both Li/Na half-cell and Li/Na hybrid capacitors. Interestingly, kilogram-scale microsphere composites can be produced in laboratory conditions by using industrial grade raw materials, implying its potential for practical application.

Download full-text PDF

Source
http://dx.doi.org/10.1002/smll.202201450DOI Listing

Publication Analysis

Top Keywords

n-nb @cnts
12
energy barrier
8
transport rate
8
microsphere composites
8
nitrogen doping
8
vacancy defects
8
/na transport
8
transport
6
multidefect n-nb
4
@cnts incorporated
4

Similar Publications

As an ion-embedded material with small strain and low transport energy barrier, the limited ion transport rate and conductivity of niobium pentaoxide (Nb O ) are the main factors limiting its application in lithium/sodium storage systems. In this work, the microsphere composites (N-Nb O @CNTs) are prepared by combining Nb O , rich in nitrogen doping and vacancy defects, with carbon nanotubes (CNTs) penetrating the bulk phase. With the capillary effect, CNTs can enable the rapid electrolyte infiltration into the microspheres, thus shorting the Li /Na transport path.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!