In Situ Formation of Dendrites in Eumelanin Thin Films between Gold Electrodes


Autoria(s): Wünsche, Julia; Cardenas, Luis; Rosei, Federico; Cicoira, Fabio; Gauvin, Reynald; Graeff, Carlos F. O.; Poulin, Suzie; Pezzella, Alessandro; Santato, Clara
Contribuinte(s)

Universidade Estadual Paulista (UNESP)

Data(s)

27/05/2014

27/05/2014

12/06/2013

Resumo

Eumelanin is a ubiquitous pigment in the human body, animals, and plants, with potential for bioelectronic applications because of its unique set of physical and chemical properties, including strong UV-vis absorption, mixed ionic/electronic conduction, free radical scavenging and anti-oxidant properties. Herein, a detailed investigation is reported of eumelanin thin films grown on substrates patterned with gold electrodes as a model system for device integration, using electrical measurements, atomic force microscopy, scanning electron microscopy, fluorescence microscopy, and time-of-flight secondary ion mass spectroscopy. Under prolonged electrical biasing in humid air, one can observe gold dissolution and formation of gold-eumelanin nanoaggregates, the assembly of which leads to the formation of dendrites forming conductive pathways between the electrodes. Based on results collected with eumelanins from different sources, a mechanism is proposed for the formation of the nanoaggregates and dendrites, taking into account the metal binding properties of eumelanin. The surprising interaction between eumelanin and gold points to new opportunities for the fabrication of eumelanin-gold nanostructures and biocompatible memory devices and should be taken into account in the design of devices based on eumelanin thin films. © 2013 WILEY-VCH Verlag GmbH & Co.

Identificador

http://dx.doi.org/10.1002/adfm.201300715

Advanced Functional Materials, v. 10, n. 6, 2013.

1616-301X

1616-3028

http://hdl.handle.net/11449/75635

10.1002/adfm.201300715

WOS:000330965800003

2-s2.0-84878744395

Idioma(s)

eng

Relação

Advanced Functional Materials

Direitos

closedAccess

Palavras-Chave #Bioelectronics #Eumelanin thin films #Gold nanostructures #Metal chelation #Resistive change
Tipo

info:eu-repo/semantics/article