Bioinspired Multiresonant Acoustic Devices Based on Electrospun Piezoelectric Polymeric Nanofibers.
P(VDF-TrFE) piezoelectric nanofibers
acoustic-electrical conversion device
cochlea implant
electrospinning
multiresonance
Journal
ACS applied materials & interfaces
ISSN: 1944-8252
Titre abrégé: ACS Appl Mater Interfaces
Pays: United States
ID NLM: 101504991
Informations de publication
Date de publication:
05 Aug 2020
05 Aug 2020
Historique:
pubmed:
9
7
2020
medline:
17
2
2021
entrez:
9
7
2020
Statut:
ppublish
Résumé
Cochlear hair cells are critical for the conversion of acoustic into electrical signals and their dysfunction is a primary cause of acquired hearing impairments, which worsen with aging. Piezoelectric materials can reproduce the acoustic-electrical transduction properties of the cochlea and represent promising candidates for future cochlear prostheses. The majority of piezoelectric hearing devices so far developed are based on thin films, which have not managed to simultaneously provide the desired flexibility, high sensitivity, wide frequency selectivity, and biocompatibility. To overcome these issues, we hypothesized that fibrous membranes made up of polymeric piezoelectric biocompatible nanofibers could be employed to mimic the function of the basilar membrane, by selectively vibrating in response to different frequencies of sound and transmitting the resulting electrical impulses to the vestibulocochlear nerve. In this study, poly(vinylidene fluoride-trifluoroethylene) piezoelectric nanofiber-based acoustic circular sensors were designed and fabricated using the electrospinning technique. The performance of the sensors was investigated with particular focus on the identification of the resonance frequencies and acoustic-electrical conversion in fibrous membrane with different size and fiber orientation. The voltage output (1-17 mV) varied in the range of low resonance frequency (100-400 Hz) depending on the diameter of the macroscale sensors and alignment of the fibers. The devices developed can be regarded as a proof-of-concept demonstrating the possibility of using piezoelectric fibers to convert acoustic waves into electrical signals, through possible synergistic effects of piezoelectricity and triboelectricity. The study has paved the way for the development of self-powered nanofibrous implantable auditory sensors.
Identifiants
pubmed: 32639712
doi: 10.1021/acsami.0c09238
pmc: PMC7460092
doi:
Substances chimiques
Polymers
0
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
34643-34657Références
Polymers (Basel). 2018 Mar 25;10(4):
pubmed: 30966399
Biomed Eng Online. 2018 Feb 13;17(1):23
pubmed: 29433516
Sci Rep. 2015 Jul 31;5:12447
pubmed: 26227924
ACS Nano. 2015 Jun 23;9(6):6484-92
pubmed: 26035634
Biofabrication. 2014 Mar;6(1):015002
pubmed: 24346001
Nat Mater. 2016 Jan;15(1):78-84
pubmed: 26436342
Nat Commun. 2016 Mar 23;7:11108
pubmed: 27005010
J Audiol Otol. 2015 Apr;19(1):1-6
pubmed: 26185784
Macromol Rapid Commun. 2011 Jun 1;32(11):831-7
pubmed: 21500300
Sensors (Basel). 2015 Jul 31;15(8):18851-64
pubmed: 26263995
Sci Adv. 2019 Apr 19;5(4):eaav3780
pubmed: 31016240
Sci Rep. 2019 Mar 6;9(1):3711
pubmed: 30842456
Micromachines (Basel). 2017 Oct 18;8(10):
pubmed: 30400501
Sci Rep. 2016 Nov 02;6:36409
pubmed: 27805065
J Neurosci. 1992 Dec;12(12):4575-85
pubmed: 1464757
Prog Biomater. 2017 Sep;6(3):113-123
pubmed: 28895062
Sensors (Basel). 2013 Dec 20;14(1):117-28
pubmed: 24361926
Cell Tissue Res. 2015 May;360(2):245-62
pubmed: 25663274
Proc Natl Acad Sci U S A. 2011 Nov 8;108(45):18390-5
pubmed: 22025702
Polymers (Basel). 2018 Feb 26;10(3):
pubmed: 30966263