Literature DB >> 35732160

Porous polyvinyl alcohol/graphene oxide composite film for strain sensing and energy-storage applications.

Xu Cui1, Jia Guo1, Sherif Araby2,3, Fethi Abbassi4, Chunyan Zhang1, Abdullatif Lacina Diaby5, Qingshi Meng1,6.   

Abstract

In this study, a flexible porous polyvinyl alcohol (PVA)/graphene oxide (GO) composite film was developed and tested for flexible strain sensing and energy-storage applications. Morphology and mechanical properties were studied; tensile strength and Young's modulus increased by 225% and 86.88%, respectively, at 0.5 wt% GO. The PVA/GO film possesses exceptional sensing ability to various mechanical strains, such as tension, compression, bending, and torsion. For example, the gauge factor of the PVA/GO film as a tensile-strain sensor was measured as 2.46 (246%). Under compression loads, the PVA/GO composite film showed piezoresistive and capacitive strain-sensing characteristics. Under 5 kPa of compression load, the relative resistance increased by 81% with a 100 msec response time; the relative capacitance increased by 160% with a 120 msec response time. The PVA/GO strain sensor exhibited high durability and reliability over 20 × 103cycles of tensile strain and bending at 3.33 Hz. Moreover, the PVA/GO composite film showed good electrochemical properties due to its porous structure; the maximum capacitance was 124.7 F g-1at 0.5 wt% GO. After 20 × 103charging-discharging cycles, the capacitance retention rate was 94.45%, representing high stable capacitance performance. The results show that electrically conductive porous PVA nanocomposite films are promising candidates for strain sensing and energy-storage devices.
© 2022 IOP Publishing Ltd.

Entities:  

Keywords:  graphene oxide; polyvinyl alcohol; porous structure; specific capacitance; strain sensor

Year:  2022        PMID: 35732160     DOI: 10.1088/1361-6528/ac7b35

Source DB:  PubMed          Journal:  Nanotechnology        ISSN: 0957-4484            Impact factor:   3.953


  1 in total

1.  Carbon Modification of K1.6Fe1.6Ti6.4O16 Nanoparticles to Optimize the Dielectric Properties of PTFE-Based Composites.

Authors:  Alexey Tsyganov; Maria Vikulova; Denis Artyukhov; Alexey Bainyashev; Vladimir Goffman; Alexander Gorokhovsky; Nikolay Gorshkov
Journal:  Polymers (Basel)       Date:  2022-09-25       Impact factor: 4.967

  1 in total

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