A Commercial Conducting Polymer as Both Binder and Conductive Additive for Silicon Nanoparticle-Based Lithium-Ion Battery Negative Electrodes
Thomas M Higgins
1, 2
,
Sang-Hoon Park
1, 3
,
Paul J King
1, 4
,
Yury Gogotsi
1, 3
,
Niall McEvoy
1, 3
,
Nina C. Berner
1, 3
,
Dermot Daly
1, 2
,
Aleksey Shmeliov
1, 3
,
UMAR KHAN
1, 2
,
Xiang Qi Xiang Qi
1, 3
,
Valeria Nicolosi
1, 3
,
Jonathan Coleman
1, 2
4
Efficient Energy Transfer Deptmartment, Bell Labs Research, Nokia, Blanchardstown Business & Technology Park, Snugborough Road, Dublin 15, Ireland
|
Publication type: Journal Article
Publication date: 2016-03-08
scimago Q1
wos Q1
SJR: 4.497
CiteScore: 24.2
Impact factor: 16.0
ISSN: 19360851, 1936086X
PubMed ID:
26937766
General Physics and Astronomy
General Materials Science
General Engineering
Abstract
This work describes silicon nanoparticle-based lithium-ion battery negative electrodes where multiple nonactive electrode additives (usually carbon black and an inert polymer binder) are replaced with a single conductive binder, in this case, the conducting polymerPSS. While enabling the production of well-mixed slurry-cast electrodes with high silicon content (up to 95 wt %), this combination eliminates the well-known occurrence of capacity losses due to physical separation of the silicon and traditional inorganic conductive additives during repeated lithiation/delithiation processes. Using an in situ secondary doping treatment of thePSS with small quantities of formic acid, electrodes containing 80 wt % SiNPs can be prepared with electrical conductivity as high as 4.2 S/cm. Even at the relatively high areal loading of 1 mg/cm(2), this system demonstrated a first cycle lithiation capacity of 3685 mA·h/g (based on the SiNP mass) and a first cycle efficiency of ∼78%. After 100 repeated cycles at 1 A/g this electrode was still able to store an impressive 1950 mA·h/g normalized to Si mass (∼75% capacity retention), corresponding to 1542 mA·h/g when the capacity is normalized by the total electrode mass. At the maximum electrode thickness studied (∼1.5 mg/cm(2)), a high areal capacity of 3 mA·h/cm(2) was achieved. Importantly, these electrodes are based on commercially available components and are produced by the standard slurry coating methods required for large-scale electrode production. Hence, the results presented here are highly relevant for the realization of commercial LiB negative electrodes that surpass the performance of current graphite-based negative electrode systems.
Found
Nothing found, try to update filter.
Found
Nothing found, try to update filter.
Top-30
Journals
|
5
10
15
20
25
|
|
|
ACS applied materials & interfaces
24 publications, 5.48%
|
|
|
Advanced Energy Materials
23 publications, 5.25%
|
|
|
Electrochimica Acta
19 publications, 4.34%
|
|
|
Energy Storage Materials
17 publications, 3.88%
|
|
|
Journal of Power Sources
15 publications, 3.42%
|
|
|
Small
15 publications, 3.42%
|
|
|
ACS Applied Energy Materials
11 publications, 2.51%
|
|
|
Journal of Materials Chemistry A
9 publications, 2.05%
|
|
|
Chemical Engineering Journal
8 publications, 1.83%
|
|
|
ACS Nano
8 publications, 1.83%
|
|
|
Advanced Materials
7 publications, 1.6%
|
|
|
ChemElectroChem
7 publications, 1.6%
|
|
|
Nano Energy
6 publications, 1.37%
|
|
|
Journal of the Electrochemical Society
5 publications, 1.14%
|
|
|
Ionics
5 publications, 1.14%
|
|
|
Journal of Energy Storage
5 publications, 1.14%
|
|
|
Chemistry of Materials
5 publications, 1.14%
|
|
|
RSC Advances
4 publications, 0.91%
|
|
|
Batteries
4 publications, 0.91%
|
|
|
Scientific Reports
4 publications, 0.91%
|
|
|
Nano Research
4 publications, 0.91%
|
|
|
Journal of Alloys and Compounds
4 publications, 0.91%
|
|
|
Carbon
4 publications, 0.91%
|
|
|
Materials
4 publications, 0.91%
|
|
|
ChemSusChem
4 publications, 0.91%
|
|
|
Small Methods
4 publications, 0.91%
|
|
|
Advanced Functional Materials
3 publications, 0.68%
|
|
|
Nano-Micro Letters
3 publications, 0.68%
|
|
|
Materials Today Chemistry
3 publications, 0.68%
|
|
|
5
10
15
20
25
|
Publishers
|
20
40
60
80
100
120
140
|
|
|
Elsevier
126 publications, 28.77%
|
|
|
Wiley
101 publications, 23.06%
|
|
|
American Chemical Society (ACS)
67 publications, 15.3%
|
|
|
Springer Nature
35 publications, 7.99%
|
|
|
Royal Society of Chemistry (RSC)
33 publications, 7.53%
|
|
|
MDPI
15 publications, 3.42%
|
|
|
The Electrochemical Society
5 publications, 1.14%
|
|
|
IOP Publishing
4 publications, 0.91%
|
|
|
AIP Publishing
1 publication, 0.23%
|
|
|
Polymer Society of Korea
1 publication, 0.23%
|
|
|
OOO Zhurnal "Mendeleevskie Soobshcheniya"
1 publication, 0.23%
|
|
|
Chinese Ceramic Society
1 publication, 0.23%
|
|
|
Taylor & Francis
1 publication, 0.23%
|
|
|
Institute of Electrical and Electronics Engineers (IEEE)
1 publication, 0.23%
|
|
|
Trans Tech Publications
1 publication, 0.23%
|
|
|
Tsinghua University Press
1 publication, 0.23%
|
|
|
20
40
60
80
100
120
140
|
- We do not take into account publications without a DOI.
- Statistics recalculated weekly.
Are you a researcher?
Create a profile to get free access to personal recommendations for colleagues and new articles.
Metrics
438
Total citations:
438
Citations from 2025:
40
(9.13%)
Cite this
GOST |
RIS |
BibTex |
MLA
Cite this
GOST
Copy
Higgins T. M. et al. A Commercial Conducting Polymer as Both Binder and Conductive Additive for Silicon Nanoparticle-Based Lithium-Ion Battery Negative Electrodes // ACS Nano. 2016. Vol. 10. No. 3. pp. 3702-3713.
GOST all authors (up to 50)
Copy
Higgins T. M., Park S., King P. J., Gogotsi Y., McEvoy N., Berner N. C., Daly D., Shmeliov A., KHAN U., Xiang Qi X. Q., Nicolosi V., Coleman J. A Commercial Conducting Polymer as Both Binder and Conductive Additive for Silicon Nanoparticle-Based Lithium-Ion Battery Negative Electrodes // ACS Nano. 2016. Vol. 10. No. 3. pp. 3702-3713.
Cite this
RIS
Copy
TY - JOUR
DO - 10.1021/acsnano.6b00218
UR - https://doi.org/10.1021/acsnano.6b00218
TI - A Commercial Conducting Polymer as Both Binder and Conductive Additive for Silicon Nanoparticle-Based Lithium-Ion Battery Negative Electrodes
T2 - ACS Nano
AU - Higgins, Thomas M
AU - Park, Sang-Hoon
AU - King, Paul J
AU - Gogotsi, Yury
AU - McEvoy, Niall
AU - Berner, Nina C.
AU - Daly, Dermot
AU - Shmeliov, Aleksey
AU - KHAN, UMAR
AU - Xiang Qi, Xiang Qi
AU - Nicolosi, Valeria
AU - Coleman, Jonathan
PY - 2016
DA - 2016/03/08
PB - American Chemical Society (ACS)
SP - 3702-3713
IS - 3
VL - 10
PMID - 26937766
SN - 1936-0851
SN - 1936-086X
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2016_Higgins,
author = {Thomas M Higgins and Sang-Hoon Park and Paul J King and Yury Gogotsi and Niall McEvoy and Nina C. Berner and Dermot Daly and Aleksey Shmeliov and UMAR KHAN and Xiang Qi Xiang Qi and Valeria Nicolosi and Jonathan Coleman},
title = {A Commercial Conducting Polymer as Both Binder and Conductive Additive for Silicon Nanoparticle-Based Lithium-Ion Battery Negative Electrodes},
journal = {ACS Nano},
year = {2016},
volume = {10},
publisher = {American Chemical Society (ACS)},
month = {mar},
url = {https://doi.org/10.1021/acsnano.6b00218},
number = {3},
pages = {3702--3713},
doi = {10.1021/acsnano.6b00218}
}
Cite this
MLA
Copy
Higgins, Thomas M., et al. “A Commercial Conducting Polymer as Both Binder and Conductive Additive for Silicon Nanoparticle-Based Lithium-Ion Battery Negative Electrodes.” ACS Nano, vol. 10, no. 3, Mar. 2016, pp. 3702-3713. https://doi.org/10.1021/acsnano.6b00218.