Piezoelectric Yield of Single Electrospun Poly(acrylonitrile) Ultrafine Fibers Studied by Piezoresponse Force Microscopy and Numerical Simulations

Author:

Montorsi Margherita1,Zavagna Lorenzo2,Scarpelli Lorenzo13,Azimi Bahareh4,Capaccioli Simone156,Danti Serena135ORCID,Labardi Massimiliano15ORCID

Affiliation:

1. CNR-IPCF, Pisa Unit, Largo Pontecorvo 3, 56127 Pisa, Italy

2. PEGASO Doctoral School in Life Sciences, University of Siena, Via Banchi di Sotto 55, 53100 Siena, Italy

3. Department of Civil and Industrial Engineering (DICI), University of Pisa, Largo Lazzarino 1, 56122 Pisa, Italy

4. Department of Molecular Medical Surgical Pathology and Critical Area, University of Pisa, Via Savi 10, 56126 Pisa, Italy

5. CISUP, Center for Instrumentation Sharing of the University of Pisa, Lungarno Pacinotti 43/44, 56126 Pisa, Italy

6. Physics Department, University of Pisa, Largo Pontecorvo 3, 56127 Pisa, Italy

Abstract

Quantitative converse piezoelectric coefficient (d33) mapping of polymer ultrafine fibers of poly(acrylonitrile) (PAN), as well as of poly(vinylidene fluoride) (PVDF) as a reference material, obtained by rotating electrospinning, was carried out by piezoresponse force microscopy in the constant-excitation frequency-modulation mode (CE-FM-PFM). PFM mapping of single fibers reveals their piezoelectric activity and provides information on its distribution along the fiber length. Uniform behavior is typically observed on a length scale of a few micrometers. In some cases, variations with sinusoidal dependence along the fiber are reported, compatibly with a possible twisting around the fiber axis. The observed features of the piezoelectric yield have motivated numerical simulations of the surface displacement in a piezoelectric ultrafine fiber concerned by the electric field generated by biasing of the PFM probe. Uniform alignment of the piezoelectric axis along the fiber would comply with the uniform but strongly variable values observed, and sinusoidal variations were occasionally found on the fibers laying on the conductive substrate. Furthermore, in the latter case, numerical simulations show that the piezoelectric tensor’s shear terms should be carefully considered in estimations since they may provide a remarkably different contribution to the overall deformation profile.

Funder

European Union–- Next Generation EU via the Italian Ministry of University and Research

Publisher

MDPI AG

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