Affiliation:
1. Nanobioelectronics and Biosensors Group Catalan Institute of Nanoscience and Nanotechnology (ICN2) Campus UAB Bellaterra Barcelona 08193 Spain
2. Doctorado en Biotecnología Universitat Autònoma de Barcelona Campus de la UAB Bellaterra Barcelona 08193 Spain
3. Department of Bioscience and Technology for Food, Agriculture, and Environment University of Teramo Campus “Aurelio Saliceti” via R. Balzarini 1 Teramo 64100 Italy
4. Department of Chemistry and Industrial Chemistry University of Pisa via Giuseppe Moruzzi 13 Pisa 56124 Italy
5. Nano‐Engineering Group RHP Technology GmbH Seibersdorf 2444 Austria
6. Catalan Institution for Research and Advanced Studies (ICREA) Passeig de Lluís Companys, 23 Barcelona 08010 Spain
Abstract
AbstractColloidal metal nanoparticles dispersions are commonly used to create functional printed electronic devices and they typically require time‐, energy‐ and equipment‐consuming post‐treatments to improve their electrical and mechanical properties. Traditional methods, e.g. thermal, UV/IR, and microwave treatments, limit the substrate options and may require expensive equipment, not available in all the laboratories. Moreover, these processes also cause the collapse of the film (nano)pores and interstices, limiting or impeding its nanostructuration. Finding a simple approach to obtain complex nanostructured materials with minimal post‐treatments remains a challenge. In this study, a new sintering method for gold nanoparticle inks that called as “click sintering” has been reported. The method uses a catalytic reaction to enhance and tune the nanostructuration of the film while sintering the metallic nanoparticles, without requiring any cumbersome post‐treatment. This results in a conductive and electroactive nanoporous thin film, whose properties can be tuned by the conditions of the reaction, i.e., concentration of the reagent and time. Therefore, this study presents a novel and innovative one‐step approach to simultaneously sinter gold nanoparticles films and create functional nanostructures, directly and easily, introducing a new concept of real‐time treatment with possible applications in the fields of flexible electronics, biosensing, energy, and catalysis.
Subject
Biomaterials,Biotechnology,General Materials Science,General Chemistry
Cited by
4 articles.
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