| Literature DB >> 31658659 |
Shasha Jiao1, Tiehu Li2, Chuanyin Xiong3, Chen Tang4, Hao Li5, Tingkai Zhao6, Alei Dang7.
Abstract
A flexible filter paper based composite electrode was prepared via the convenient one-step synthesis of silver doped graphene for the first time, followed by in-situ polymerization of aniline monomers. Using L-ascorbic acid for simultaneous reduction of grapheme oxide and silver nitrate, we provided a new and green method to prepare graphene hybrid sheets without toxicity. It was found that the as-fabricated hybrid electrode formed a three-dimensional porous architecture, which not only increased the specific surface area of composite, but also facilitated the ion diffusion of the electrolyte. In addition, according to the tests of electrochemical performances, the flexible hybrid electrode subsequently exhibited exceptional specific capacitance of 437.3 F/g, energy density of 1133.5 W·h/kg and power density of 88.8 kW/kg, respectively. Meanwhile, the as-prepared hybrid demonstrated a good cycling stability with only 10.99% specific capacitance deterioration after 5000 times of cycling. This preparation technology presented here shows great potential for the development and application of wearable and portable energy storage devices, particularly for flexible supercapacitors. Moreover, this study puts forward a general, simple and low-cost route of fabricating a novel flexible electrode on a large scale, eventually for environmental protection.Entities:
Keywords: filter paper; grapheme; polyaniline; silver; supercapacitor
Year: 2019 PMID: 31658659 PMCID: PMC6835218 DOI: 10.3390/nano9101434
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1Fabrication of the flexible polyaniline (PANI)/rGO/Ag/filter paper (FP) hybrid electrode.
Figure 2(a) XRD patterns of rGO/Ag/FP and PANI/rGO/Ag/FP electrodes, respectively. (b) Raman spectrum of rGO/Ag/FP and PANI/rGO/Ag/FP electrodes, respectively.
Figure 3(a,b) SEM images of the rGO/Ag/FP composite; (c,d) SEM images of the PANI/rGO/Ag/FP composite.
Figure 4TEM images of PANI/rGO/Ag/FP electrode. (a) TEM image of rGO; (b) TEM image of PANI/rGO/Ag; (c) TEM image of PANI/rGO; (d) TEM image of rGO.
Figure 5(a) Cyclic voltammetry (CV) curves of the rGO/Ag/FP and PANI/rGO/Ag/FP electrodes under the scanning rate of 50 mV/s; (b,c) CV curves of the rGO/Ag/FP and PANI/rGO/Ag/FP electrodes under different scanning rates, respectively; (d) galvanostatic charge-discharge (GCD) curves of rGO/Ag/FP and PANI/rGO/Ag/FP electrodes at the current density of 2 A/g; (e) GCD curves of PANI/rGO/Ag/FP electrode at different current densities; (f) Nyquist plots of rGO/Ag/FP and PANI/rGO/Ag/FP electrodes.
Figure 6(a) The specific capacitance retention rate of the PANI/rGO/Ag/FP electrode over 5000 cycles. (b) The specific capacitance retention rate of the PANI/rGO/Ag/FP electrode under different bending degrees.