Literature DB >> 26937766

A Commercial Conducting Polymer as Both Binder and Conductive Additive for Silicon Nanoparticle-Based Lithium-Ion Battery Negative Electrodes.

Thomas M Higgins1,2, Sang-Hoon Park1,3, Paul J King1,4, Chuanfang John Zhang1,3, Niall McEvoy1,3, Nina C Berner1,3, Dermot Daly1,2, Aleksey Shmeliov1,3, Umar Khan1,2, Georg Duesberg1,3, Valeria Nicolosi1,3, Jonathan N Coleman1,2.   

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 polymer PEDOT: PSS. 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 the PEDOT: PSS 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.

Entities:  

Keywords:  PEDOT:PSS; anode; battery; binder; conducting additive; conducting polymer; negative electrode; silicon

Year:  2016        PMID: 26937766     DOI: 10.1021/acsnano.6b00218

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  13 in total

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Journal:  RSC Adv       Date:  2021-11-03       Impact factor: 4.036

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Journal:  Nanomicro Lett       Date:  2017-03-17

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Authors:  Georgiana Sandu; Michael Coulombier; Vishank Kumar; Hailu G Kassa; Ionel Avram; Ran Ye; Antoine Stopin; Davide Bonifazi; Jean-François Gohy; Philippe Leclère; Xavier Gonze; Thomas Pardoen; Alexandru Vlad; Sorin Melinte
Journal:  Sci Rep       Date:  2018-06-28       Impact factor: 4.379

5.  Silicon Surface Tethered Polymer as Artificial Solid Electrolyte Interface.

Authors:  Brian H Shen; Gabriel M Veith; Wyatt E Tenhaeff
Journal:  Sci Rep       Date:  2018-08-01       Impact factor: 4.379

6.  Construction of 3D architectures with Ni(HCO3)2 nanocubes wrapped by reduced graphene oxide for LIBs: ultrahigh capacity, ultrafast rate capability and ultralong cycle stability.

Authors:  Yutao Dong; Yuhang Ma; Dan Li; Yushan Liu; Weihua Chen; Xiangming Feng; Jianmin Zhang
Journal:  Chem Sci       Date:  2018-09-13       Impact factor: 9.825

7.  Characteristics and electrochemical performances of silicon/carbon nanofiber/graphene composite films as anode materials for binder-free lithium-ion batteries.

Authors:  Ruye Cong; Jin-Yeong Choi; Ju-Beom Song; Minsang Jo; Hochun Lee; Chang-Seop Lee
Journal:  Sci Rep       Date:  2021-01-14       Impact factor: 4.379

8.  Chitosan-grafted-poly(aniline-co-anthranilic acid) as a water soluble binder to form 3D structures for Si anodes.

Authors:  Eunsoo Kim; Rajeev K K; Jaebin Nam; Junyoung Mun; Tae-Hyun Kim
Journal:  RSC Adv       Date:  2020-02-19       Impact factor: 4.036

9.  Low Dispersity and High Conductivity Poly(4-styrenesulfonic acid) Membranes Obtained by Inexpensive Free Radical Polymerization of Sodium 4-styrenesulfonate.

Authors:  Victor Raul Sepulveda; Ligia Sierra; Betty Lucy López
Journal:  Membranes (Basel)       Date:  2018-08-07

10.  Conducting Polymer-Reinforced Laser-Irradiated Graphene as a Heterostructured 3D Transducer for Flexible Skin Patch Biosensors.

Authors:  Lingyin Meng; Anthony P F Turner; Wing Cheung Mak
Journal:  ACS Appl Mater Interfaces       Date:  2021-11-02       Impact factor: 9.229

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