Issue 32, 2015

Solution-processed assembly of ultrathin transparent conductive cellulose nanopaper embedding AgNWs

Abstract

Natural biomass based cellulose nanopaper is becoming a promising transparent substrate to supersede traditional petroleum based polymer films in realizing future flexible paper-electronics. Here, ultrathin, highly transparent, outstanding conductive hybrid nanopaper with excellent mechanical flexibility was synthesized by the assembly of nanofibrillated cellulose (NFC) and silver nanowires (AgNWs) using a pressured extrusion paper-making technique. The hybrid nanopaper with a thickness of 4.5 μm has a good combination of transparent conductive performance and mechanical stability using bamboo/hemp NFC and AgNWs cross-linked by hydroxypropylmethyl cellulose (HPMC). The heterogeneous fibrous structure of BNFC/HNFC/AgNWs endows a uniform distribution and an enhanced forward light scattering, resulting in high electrical conductivity and optical transmittance. The hybrid nanopaper with an optimal weight ratio of BNFC/HNFC to AgNWs shows outstanding synergistic properties with a transmittance of 86.41% at 550 nm and a sheet resistance of 1.90 ohm sq−1, equal to the electronic conductivity, which is about 500 S cm−1. The BNFC/HNFC/AgNW hybrid nanopaper maintains a stable electrical conductivity after the peeling test and bending at 135° for 1000 cycles, indicating remarkably strong adhesion and mechanical flexibility. Of importance here is that the high-performance and low-cost hybrid nanopaper shows promising potential for electronics application in solar cells, flexible displays and other high-technology products.

Graphical abstract: Solution-processed assembly of ultrathin transparent conductive cellulose nanopaper embedding AgNWs

Supplementary files

Article information

Article type
Paper
Submitted
16 May 2015
Accepted
03 Jul 2015
First published
10 Jul 2015

Nanoscale, 2015,7, 13694-13701

Author version available

Solution-processed assembly of ultrathin transparent conductive cellulose nanopaper embedding AgNWs

Y. Song, Y. Jiang, L. Shi, S. Cao, X. Feng, M. Miao and J. Fang, Nanoscale, 2015, 7, 13694 DOI: 10.1039/C5NR03218K

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