Remotely Controlled in Situ Growth of Silver Microwires Forming Bioelectronic Interfaces

There is a pressing need to advance our ability to construct three-dimensional (3D) functional bioelectronic interfaces. Additionally, to ease the transition to building cellular electronic systems, a remote approach to merge electrical components with biology is desirable. By combining 3D digital i...

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Veröffentlicht in:ACS applied materials & interfaces 2019-03, Vol.11 (9), p.8928-8936
Hauptverfasser: Sanjuan-Alberte, Paola, Saleh, Ehab, Shaw, Andie J, Lacalendola, Nicola, Willmott, Geoff, Vaithilingam, Jayasheelan, Alexander, Morgan R, Hague, Richard J. M, Rawson, Frankie J
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Sprache:eng
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Zusammenfassung:There is a pressing need to advance our ability to construct three-dimensional (3D) functional bioelectronic interfaces. Additionally, to ease the transition to building cellular electronic systems, a remote approach to merge electrical components with biology is desirable. By combining 3D digital inkjet printing with bipolar electrochemistry, we remotely control and fabricate conductive wires, forming a first of its kind contactless bionic manufacturing procedure. It enables controlled fabrication of conductive wires in a three-dimensional configuration. Moreover, we demonstrate that this technology could be used to grow and interface conductive conduits in situ with mammalian cells, offering a new strategy to engineering bioelectronic interfaces. This represents a step change in the production of functional complex circuitry and considerably increases the manufacturing capabilities of merging cells with electronics. This approach provides a platform to construct bioelectronics in situ offering a potential paradigm shift in the methods for building bioelectronics with potential applications in biosensing and bioelectronic medicine.
ISSN:1944-8244
1944-8252
DOI:10.1021/acsami.8b22075