Schmid, S., Bagci, T., Zeuthen, E., Taylor, J. M., Herring, P. K., Cassidy, M. C., Marcus, C. M., Villanueva, L. G., Amato, B., Boisen, A., Shin, Y. C., Kong, J., Sorensen, A. S., Usami, K., & Polzik, E. S. (2014). Single-layer graphene on silicon nitride micromembrane resonators. Journal of Applied Physics, 115(5), Article 054513. https://doi.org/10.1063/1.4862296
E350 - Fakultät für Elektrotechnik und Informationstechnik E366-01 - Forschungsbereich Mikro- und Nanosensorik
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Journal:
Journal of Applied Physics
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ISSN:
0021-8979
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Date (published):
2014
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Number of Pages:
1
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Peer reviewed:
Yes
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Keywords:
General Physics and Astronomy
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Abstract:
Due to their low mass, high quality factor, and good optical properties, silicon nitride (SiN) micromembrane resonators are widely used in force and mass sensing applications, particularly in optomechanics. The metallization of such membranes would enable an electronic integration with the prospect for exciting new devices, such as optoelectromechanical transducers. Here, we add a single-layer graphene on SiN micromembranes and compare electromechanical coupling and mechanical properties to bare dielectric membranes and to membranes metallized with an aluminium layer. The electrostatic coupling of graphene covered membranes is found to be equal to a perfectly conductive membrane, without significantly adding mass, decreasing the superior mechanical quality factor or affecting the optical properties of pure SiN micromembranes. The concept of graphene-SiN resonators allows a broad range of new experiments both in applied physics and fundamental basic research, e.g., for the mechanical, electrical, or optical characterization of graphene.
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Research Areas:
Special and Engineering Materials: 25% Structure-Property Relationship: 25% Sensor Systems: 50%