Please use this identifier to cite or link to this item: http://dx.doi.org/10.25673/101554
Title: Mechanical nanoscale polarization control in ferroelectric PVDF-TrFE films
Author(s): Roth, RobertLook up in the Integrated Authority File of the German National Library
Koch, Martin M.
Rata, DianaLook up in the Integrated Authority File of the German National Library
Dörr, KathrinLook up in the Integrated Authority File of the German National Library
Issue Date: 2022
Type: Article
Language: English
Abstract: Ferroelectric polymer films offer strong advantages like mechanical flexibility, biocompatibility, optical transparency, and low-cost processing. However, their dielectric or piezoelectric performance is often inferior to that of oxide ferroelectric materials. Key to the dielectric or piezoelectric performance of semicrystalline polymers is the enhancement of electric dipolar order that is naturally lower than in crystalline ferroelectrics. Here, reorientation and alignment of the electric polarization in thin films by the mechanical effect of a scanning unbiased force microscopy tip is demonstrated as a versatile tool for nanoscale domain writing. Thin films (50–150 nm) of PVDF-TrFE (78:22) on graphite are prepared with dense (110)-oriented β-phase lamellae randomly oriented in the film plane. The in-plane polarization can be poled “mechanically” along any deliberately chosen direction in the film plane after vertical electric poling. Domain patterns with resolution down to ≈50 nm are written with four (out of six possible) local polarization orientations. Written domains show excellent long-time stability. The surface roughening from the mechanical treatment is moderate (rms roughness of 2–3 nm). A ferroelastic origin of the mechanical polarization switching is discussed. Finally, suggestions are made how to utilize the domain patterns in thin film devices.
URI: https://opendata.uni-halle.de//handle/1981185920/103512
http://dx.doi.org/10.25673/101554
Open Access: Open access publication
License: (CC BY-NC-ND 4.0) Creative Commons Attribution NonCommercial NoDerivatives 4.0(CC BY-NC-ND 4.0) Creative Commons Attribution NonCommercial NoDerivatives 4.0
Journal Title: Advanced electronic materials
Publisher: Wiley-VCH Verlag GmbH & Co. KG
Publisher Place: Weinheim
Volume: 8
Issue: 6
Original Publication: 10.1002/aelm.202101416
Appears in Collections:Open Access Publikationen der MLU