<div class="csl-bib-body">
<div class="csl-entry">Ziller, A., Corna, A., Bui, M. T., Werginz, P., Schneider, M., Schmid, U., & Zeck, G. M. (2026). Inkjet-Printed Rough Gold Microelectrode Arrays on Flexible Substrates for Neural Recording and Electrical Stimulation. <i>ACS APPLIED MATERIALS & INTERFACES</i>, <i>18</i>(18). https://doi.org/10.1021/acsami.6c01300</div>
</div>
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dc.identifier.issn
1944-8244
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/229619
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dc.description.abstract
Microelectrode arrays (MEAs) are essential tools for recording and stimulating electrogenic tissues, but their fabrication typically depends on complex, costly, and mask-based cleanroom processes. While inkjet-printed MEAs have increasingly been explored as low-cost alternatives, most demonstrations have focused on cardiac cell recordings, with only a limited number of studies showing neuronal recordings. Furthermore, no work to date has demonstrated neuronal interfacing, combining single-unit recording with electrical stimulation, using inkjet-printed MEAs. Here, we investigate whether inkjet-printed MEAs enable both extracellular single-unit neuronal recording and reliable electrical stimulation. We fabricated gold microelectrodes on flexible foils via maskless inkjet-printing, insulated them with printed SU-8 (an epoxy-based dielectric), and characterized their morphology using scanning electron microscopy, atomic force microscopy, and profilometry, and their electrochemical behavior using impedance spectroscopy and cyclic voltammetry. The printed gold formed a rough nanoparticle-based morphology, resulting in an increased effective electrochemical surface area. This morphology enabled low electrode impedances and high charge injection during voltage-controlled stimulation. We assessed functional performance in ex vivo retinal tissue. The inkjet-printed MEAs enabled reliable single-unit recordings with signal-to-noise ratios comparable to cleanroom-fabricated commercial devices and cell activation upon electrical stimulation with biphasic pulses. The electrodes were reusable and noncytotoxic, verified via a standard cell viability assay. These results establish the first inkjet-printed microelectrodes capable of neuronal interfacing, demonstrating that printed MEAs can match the functional performance of conventional microfabricated devices. This work positions inkjet-printing as a scalable, easily adaptable, low-cost manufacturing technique for flexible MEAs with rough gold electrodes suitable for neurotechnology applications.
en
dc.language.iso
en
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dc.publisher
AMER CHEMICAL SOC
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dc.relation.ispartof
ACS APPLIED MATERIALS & INTERFACES
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dc.subject
microelectrode arrays
en
dc.subject
additive manufacturing
en
dc.subject
neuroelectronics
en
dc.subject
extracellular recording
en
dc.subject
electrical stimulation
en
dc.subject
ex vivo retina
en
dc.title
Inkjet-Printed Rough Gold Microelectrode Arrays on Flexible Substrates for Neural Recording and Electrical Stimulation
en
dc.type
Article
en
dc.type
Artikel
de
dc.type.category
Original Research Article
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tuw.container.volume
18
-
tuw.container.issue
18
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tuw.journal.peerreviewed
true
-
tuw.peerreviewed
true
-
tuw.researchTopic.id
M2
-
tuw.researchTopic.id
M1
-
tuw.researchTopic.id
I8
-
tuw.researchTopic.name
Materials Characterization
-
tuw.researchTopic.name
Surfaces and Interfaces
-
tuw.researchTopic.name
Sensor Systems
-
tuw.researchTopic.value
30
-
tuw.researchTopic.value
20
-
tuw.researchTopic.value
50
-
dcterms.isPartOf.title
ACS APPLIED MATERIALS & INTERFACES
-
tuw.publication.orgunit
E366-02 - Forschungsbereich Mikrosystemtechnik
-
tuw.publication.orgunit
E056-29 - Fachbereich BioDevX
-
tuw.publication.orgunit
E363 - Institut für Biomedizinische Elektronik
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tuw.publisher.doi
10.1021/acsami.6c01300
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dc.date.onlinefirst
2026-05-04
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dc.identifier.eissn
1944-8252
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dc.description.numberOfPages
12
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tuw.author.orcid
0000-0002-9589-999X
-
tuw.author.orcid
0000-0002-3441-3167
-
tuw.author.orcid
0000-0001-9846-7132
-
tuw.author.orcid
0000-0003-3998-9883
-
dc.description.sponsorshipexternal
Hochschuljubiläumsfond der Stadt Wien
-
dc.relation.grantnoexternal
H-864102/2022
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wb.sci
true
-
wb.sciencebranch
Medizintechnik
-
wb.sciencebranch
Neurowissenschaften
-
wb.sciencebranch
Elektrotechnik, Elektronik, Informationstechnik
-
wb.sciencebranch.oefos
2060
-
wb.sciencebranch.oefos
3014
-
wb.sciencebranch.oefos
2020
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wb.sciencebranch.value
60
-
wb.sciencebranch.value
20
-
wb.sciencebranch.value
20
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item.languageiso639-1
en
-
item.openairecristype
http://purl.org/coar/resource_type/c_2df8fbb1
-
item.openairetype
research article
-
item.fulltext
no Fulltext
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item.grantfulltext
none
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item.cerifentitytype
Publications
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crisitem.author.dept
E363 - Institut für Biomedizinische Elektronik
-
crisitem.author.dept
E363 - Institut für Biomedizinische Elektronik
-
crisitem.author.dept
E363-50 - Services des Instituts
-
crisitem.author.dept
E363 - Institut für Biomedizinische Elektronik
-
crisitem.author.dept
E366-02 - Forschungsbereich Mikrosystemtechnik
-
crisitem.author.dept
E366 - Institut für Sensor- und Aktuatorsysteme
-
crisitem.author.dept
E363 - Institut für Biomedizinische Elektronik
-
crisitem.author.orcid
0000-0002-9589-999X
-
crisitem.author.orcid
0000-0002-3441-3167
-
crisitem.author.orcid
0000-0001-9846-7132
-
crisitem.author.orcid
0000-0003-3998-9883
-
crisitem.author.parentorg
E350 - Fakultät für Elektrotechnik und Informationstechnik
-
crisitem.author.parentorg
E350 - Fakultät für Elektrotechnik und Informationstechnik
-
crisitem.author.parentorg
E363 - Institut für Biomedizinische Elektronik
-
crisitem.author.parentorg
E350 - Fakultät für Elektrotechnik und Informationstechnik
-
crisitem.author.parentorg
E366 - Institut für Sensor- und Aktuatorsysteme
-
crisitem.author.parentorg
E350 - Fakultät für Elektrotechnik und Informationstechnik
-
crisitem.author.parentorg
E350 - Fakultät für Elektrotechnik und Informationstechnik