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Heterolayered, one-dimensional nanobuilding block mat batteries.

Authors :
Choi KH
Cho SJ
Chun SJ
Yoo JT
Lee CK
Kim W
Wu Q
Park SB
Choi DH
Lee SY
Lee SY
Source :
Nano letters [Nano Lett] 2014 Oct 08; Vol. 14 (10), pp. 5677-86. Date of Electronic Publication: 2014 Sep 22.
Publication Year :
2014

Abstract

The rapidly approaching smart/wearable energy era necessitates advanced rechargeable power sources with reliable electrochemical properties and versatile form factors. Here, as a unique and promising energy storage system to address this issue, we demonstrate a new class of heterolayered, one-dimensional (1D) nanobuilding block mat (h-nanomat) battery based on unitized separator/electrode assembly (SEA) architecture. The unitized SEAs consist of wood cellulose nanofibril (CNF) separator membranes and metallic current collector-/polymeric binder-free electrodes comprising solely single-walled carbon nanotube (SWNT)-netted electrode active materials (LiFePO4 (cathode) and Li4Ti5O12 (anode) powders are chosen as model systems to explore the proof of concept for h-nanomat batteries). The nanoporous CNF separator plays a critical role in securing the tightly interlocked electrode-separator interface. The SWNTs in the SEAs exhibit multifunctional roles as electron conductive additives, binders, current collectors and also non-Faradaic active materials. This structural/physicochemical uniqueness of the SEAs allows significant improvements in the mass loading of electrode active materials, electron transport pathways, electrolyte accessibility and misalignment-proof of separator/electrode interface. As a result, the h-nanomat batteries, which are easily fabricated by stacking anode SEA and cathode SEA, provide unprecedented advances in the electrochemical performance, shape flexibility and safety tolerance far beyond those achievable with conventional battery technologies. We anticipate that the h-nanomat batteries will open 1D nanobuilding block-driven new architectural design/opportunity for development of next-generation energy storage systems.

Details

Language :
English
ISSN :
1530-6992
Volume :
14
Issue :
10
Database :
MEDLINE
Journal :
Nano letters
Publication Type :
Academic Journal
Accession number :
25226349
Full Text :
https://doi.org/10.1021/nl5024029