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Wireless technologies for closed-loop retinal prostheses

David C Ng et al 2009 J. Neural Eng. 6 065004 (10pp)   doi: 10.1088/1741-2560/6/6/065004  Help

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David C Ng1,2, Shun Bai1, Jiawei Yang1, Nhan Tran1 and Efstratios Skafidas1,2
1 Department of Electrical and Electronic Engineering, The University of Melbourne, Level 2, Building 193, VIC 3010, Australia
2 Victorian Research Laboratory, National Information & Communication Technology Australia, University of Melbourne, Level 2, Building 193, VIC 3010, Australia
E-mail: david.ng@nicta.com.au

Abstract. In this paper, we discuss various technologies needed to develop retinal prostheses with wireless power and data telemetry operation. In addition to the need to communicate with the implanted device, supply of power to the retinal prosthesis is especially difficult. This is because, in the implanted state, the device is not fixed in position due to constant motion of the eye. Furthermore, a retinal prosthesis incorporating a high density electrode array of more than 1000 electrodes is expected to consume approximately 45 mW of power and require 300 kbps of image and stimulation data. The front end of the wireless power and data transmission, the antenna, needs to be small compared to the size of the eye. Also, the wireless module is expected to operate in the reactive near-field region due to small separation between the transmit and receive antennas compared to their size and corresponding operating wavelength. An inductive link is studied as a means to transfer power and for data telemetry between the implant and external unit. In this work, the use of integrated circuit and microfabrication technologies for implementing inductive links is discussed. A closed-loop approach is taken to improve performance and reach optimum operation condition. Design and simulation data are presented as the basis for development of viable wireless module prototypes.

Print publication: Issue 6 (December 2009)
Received 30 January 2009, accepted for publication 15 June 2009
Published 23 October 2009

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