Aerosol Jet Printing Conductive 3D Microstructures from Graphene Without Post‐Processing

Author:

Smith Brittany N.1ORCID,Ballentine Peter1,Doherty James L.1ORCID,Wence Ryan1,Hobbie Hansel Alex1,Williams Nicholas X.1ORCID,Franklin Aaron D.12ORCID

Affiliation:

1. Electrical and Computer Engineering Department Duke University Durham NC 27708 USA

2. Chemistry Department Duke University Durham NC 27708 USA

Abstract

AbstractThree‐dimensional (3D) graphene microstructures have the potential to boost performance in high‐capacity batteries and ultrasensitive sensors. Numerous techniques have been developed to create such structures; however, the methods typically rely on structural supports, and/or lengthy post‐print processing, increasing cost and complexity. Additive manufacturing techniques, such as printing, show promise in overcoming these challenges. This study employs aerosol jet printing for creating 3D graphene microstructures using water as the only solvent and without any post‐print processing required. The graphene pillars exhibit conductivity immediately after printing, requiring no high‐temperature annealing. Furthermore, these pillars are successfully printed in freestanding configurations at angles below 45° relative to the substrate, showcasing their adaptability for tailored applications. When graphene pillars are added to humidity sensors, the additional surface area does not yield a corresponding increase in sensor performance. However, graphene trusses, which add a parallel conduction path to the sensing surface, are found to improve sensitivity nearly 2×, highlighting the advantages of a topologically suspended circuit construction when adding 3D microstructures to sensing electrodes. Overall, incorporating 3D graphene microstructures to sensor electrodes can provide added sensitivity, and aerosol jet printing is a viable path to realizing these conductive microstructures without any post‐print processing.

Funder

National Nanotechnology Coordinating Office

National Institutes of Health

National Science Foundation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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