High-performance multifunctional graphene yarns: toward wearable all-carbon energy storage textiles


Autoria(s): Aboutalebi,SH; Jalili,R; Esrafilzadeh,D; Salari,M; Gholamvand,Z; Aminorroaya Yamini,S; Konstantinov,K; Shepherd,RL; Chen,J; Moulton,SE; Innis,PC; Minett,AI; Razal,JM; Wallace,GG
Data(s)

25/03/2014

Resumo

The successful commercialization of smart wearable garments is hindered by the lack of fully integrated carbon-based energy storage devices into smart wearables. Since electrodes are the active components that determine the performance of energy storage systems, it is important to rationally design and engineer hierarchical architectures atboth the nano- and macroscale that can enjoy all of the necessary requirements for a perfect electrode. Here we demonstrate a large-scale flexible fabrication of highly porous high-performance multifunctional graphene oxide (GO) and rGO fibers and yarns by taking advantage of the intrinsic soft self-assembly behavior of ultralarge graphene oxide liquid crystalline dispersions. The produced yarns, which are the only practical form of these architectures for real-life device applications, were found to be mechanically robust (Young's modulus in excess of 29 GPa) and exhibited high native electrical conductivity (2508 ± 632 S m(-1)) and exceptionally high specific surface area (2605 m(2) g(-1) before reduction and 2210 m(2) g(-1) after reduction). Furthermore, the highly porous nature of these architectures enabled us to translate the superior electrochemical properties of individual graphene sheets into practical everyday use devices with complex geometrical architectures. The as-prepared final architectures exhibited an open network structure with a continuous ion transport network, resulting in unrivaled charge storage capacity (409 F g(-1) at 1 A g(-1)) and rate capability (56 F g(-1) at 100 A g(-1)) while maintaining their strong flexible nature.

Identificador

http://hdl.handle.net/10536/DRO/DU:30072409

Idioma(s)

eng

Publicador

American Chemical Society

Relação

http://dro.deakin.edu.au/eserv/DU:30072409/razal-highperfomance-2014.pdf

http://www.dx.doi.org/10.1021/nn406026z

http://www.ncbi.nlm.nih.gov/pubmed/24517282

Direitos

2014, American Chemical Society

Palavras-Chave #fiber #graphene #liquid crystals #multifunctional architectures #self-assembly #supercapacitor #textile #Science & Technology #Physical Sciences #Technology #Chemistry, Multidisciplinary #Chemistry, Physical #Nanoscience & Nanotechnology #Materials Science, Multidisciplinary #Chemistry #Science & Technology - Other Topics #Materials Science #OXIDE LIQUID-CRYSTALS #ORGANIC-MATTER NATURE #ELECTROCHEMICAL CAPACITORS #MICRO-SUPERCAPACITORS #DIFFUSION MECHANISMS #NEXT-GENERATION #GRAPHITE OXIDE #SURFACE-AREA #FACILE ROUTE #FIBERS
Tipo

Journal Article