The electrochemical performance of super P carbon black in reversible Li/Na ion uptake

Journal Article (2017)
Author(s)

Bo Peng (TU Delft - ChemE/Materials for Energy Conversion and Storage, Renmin University of China)

Yao Lin Xu (TU Delft - ChemE/Materials for Energy Conversion and Storage)

Xiaoqun Wang (Renmin University of China, Shanghai Jiao Tong University)

Xinghua Shi (National Center for Nanoscience and Technology (NCNST))

FM Mulder (TU Delft - ChemE/Materials for Energy Conversion and Storage)

Research Group
ChemE/Materials for Energy Conversion and Storage
Copyright
© 2017 B. Peng, Y. Xu, Xiaoqun Wang, Xinghua Shi, F.M. Mulder
DOI related publication
https://doi.org/10.1007/s11433-017-9022-y
More Info
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Publication Year
2017
Language
English
Copyright
© 2017 B. Peng, Y. Xu, Xiaoqun Wang, Xinghua Shi, F.M. Mulder
Research Group
ChemE/Materials for Energy Conversion and Storage
Issue number
6
Volume number
60
Pages (from-to)
1-8
Reuse Rights

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Abstract

Super P carbon black (SPCB) has been widely used as a conducting additive in Li/Na ion batteries to improve the electronic conductivity. However, there has not yet been a comprehensive study on its structure and electrochemical properties for Li/Na ion uptake, though it is important to characterize its contribution in any study of active materials that uses this additive in non-negligible amounts. In this article the structure of SPCB has been characterized and a comprehensive study on the electrochemical Li/Na ion uptake capability and reaction mechanisms are reported. SPCB exhibits a considerable lithiation capacity (up to 310 mAh g–1) from the Li ion intercalation in the graphite structure. Sodiation in SPCB undergoes two stages: Na ion intercalation into the layers between the graphene sheets and the Na plating in the pores between the nano-graphitic domains, and a sodiation capacity up to 145 mAh g–1 has been achieved. Moreover, the influence of the type and content of binders on the lithiation and sodiation properties has been investigated. The cycling stability is much enhanced with sodium carboxymethyl cellulose (NaCMC) binder in the electrode and fluoroethylene carbonate (FEC) in the electrolyte; and a higher content of binder improves the Coulombic efficiency during dis-/charge.

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