A Nanomechanical Transducer for Remote Signal Transmission onto the Tympanic Membrane–Playing Music on a Different Drum

Author:

Scott Shelley A.1ORCID,Yang Fan2,Haugg Stefanie3ORCID,Bhat Abhishek1,Scheer Elke2ORCID,Zierold Robert3ORCID,Flack Frank1,Lagally Max G.1,Blick Robert H.13ORCID

Affiliation:

1. Department of Materials Science & Engineering University of Wisconsin‐Madison Madison WI 53706 USA

2. Fachbereich Physik Universität Konstanz 78464 Konstanz Germany

3. Center for Hybrid Nanostructures Universität Hamburg 22761 Hamburg Germany

Abstract

AbstractThe combination of piezoelectric ceramics with silicon nanomembranes can provide a unique combination of electronic and mechanical functionality. For example, an integrated remotely accessible sensor/actuator can serve as a sound transducer to be placed on the tympanic membrane of the human ear. Such an implant would enable direct sound transmission in the kHz range via down‐conversion of a modulated carrier signal at radio frequency. The viability of this concept is demonstrated via a specific design of the nanomembrane bonded over a hole in the piezoelectric chip as well as driving this chip to create a strong nonlinear mechanical response in the nanomembrane. The response in the audible‐frequency range and the result is demonstrated by modulating the piezoelectric chip with a C‐major audible tune—the tone ladder—and retrieving this sound by an optical readout method. Finally, to prove the possibility of remote actuation of the nanomembrane, an antenna on the chip is integrated and the wide‐band transmission from a mobile source is simulated. It is concluded that a remotely actuated invisible hearing aid is possible.

Funder

Wisconsin Alumni Research Foundation

Deutsche Forschungsgemeinschaft

National Science Foundation

Publisher

Wiley

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