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Fabrication and Microassembly of a mm-Sized Floating Probe for a Distributed Wireless Neural Interface

A new class of wireless neural interfaces is under development in the form of tens to hundreds of mm-sized untethered implants, distributed across the target brain region(s). Unlike traditional interfaces that are tethered to a centralized control unit and suffer from micromotions that may damage th...

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Autores principales: Yeon, Pyungwoo, Mirbozorgi, S. Abdollah, Ash, Bruce, Eckhardt, Helmut, Ghovanloo, Maysam
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6190206/
https://www.ncbi.nlm.nih.gov/pubmed/30404327
http://dx.doi.org/10.3390/mi7090154
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author Yeon, Pyungwoo
Mirbozorgi, S. Abdollah
Ash, Bruce
Eckhardt, Helmut
Ghovanloo, Maysam
author_facet Yeon, Pyungwoo
Mirbozorgi, S. Abdollah
Ash, Bruce
Eckhardt, Helmut
Ghovanloo, Maysam
author_sort Yeon, Pyungwoo
collection PubMed
description A new class of wireless neural interfaces is under development in the form of tens to hundreds of mm-sized untethered implants, distributed across the target brain region(s). Unlike traditional interfaces that are tethered to a centralized control unit and suffer from micromotions that may damage the surrounding neural tissue, the new free-floating wireless implantable neural recording (FF-WINeR) probes will be stand-alone, directly communicating with an external interrogator. Towards development of the FF-WINeR, in this paper we describe the micromachining, microassembly, and hermetic packaging of 1-mm(3) passive probes, each of which consists of a thinned micromachined silicon die with a centered Ø(diameter) 130 μm through-hole, an Ø81 μm sharpened tungsten electrode, a 7-turn gold wire-wound coil wrapped around the die, two 0201 surface mount capacitors on the die, and parylene-C/Polydimethylsiloxane (PDMS) coating. The fabricated passive probe is tested under a 3-coil inductive link to evaluate power transfer efficiency (PTE) and power delivered to a load (PDL) for feasibility assessment. The minimum PTE/PDL at 137 MHz were 0.76%/240 μW and 0.6%/191 μW in the air and lamb head medium, respectively, with coil separation of 2.8 cm and 9 kΩ receiver (Rx) loading. Six hermetically sealed probes went through wireless hermeticity testing, using a 2-coil inductive link under accelerated lifetime testing condition of 85 °C, 1 atm, and 100%RH. The mean-time-to-failure (MTTF) of the probes at 37 °C is extrapolated to be 28.7 years, which is over their lifetime.
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spelling pubmed-61902062018-11-01 Fabrication and Microassembly of a mm-Sized Floating Probe for a Distributed Wireless Neural Interface Yeon, Pyungwoo Mirbozorgi, S. Abdollah Ash, Bruce Eckhardt, Helmut Ghovanloo, Maysam Micromachines (Basel) Article A new class of wireless neural interfaces is under development in the form of tens to hundreds of mm-sized untethered implants, distributed across the target brain region(s). Unlike traditional interfaces that are tethered to a centralized control unit and suffer from micromotions that may damage the surrounding neural tissue, the new free-floating wireless implantable neural recording (FF-WINeR) probes will be stand-alone, directly communicating with an external interrogator. Towards development of the FF-WINeR, in this paper we describe the micromachining, microassembly, and hermetic packaging of 1-mm(3) passive probes, each of which consists of a thinned micromachined silicon die with a centered Ø(diameter) 130 μm through-hole, an Ø81 μm sharpened tungsten electrode, a 7-turn gold wire-wound coil wrapped around the die, two 0201 surface mount capacitors on the die, and parylene-C/Polydimethylsiloxane (PDMS) coating. The fabricated passive probe is tested under a 3-coil inductive link to evaluate power transfer efficiency (PTE) and power delivered to a load (PDL) for feasibility assessment. The minimum PTE/PDL at 137 MHz were 0.76%/240 μW and 0.6%/191 μW in the air and lamb head medium, respectively, with coil separation of 2.8 cm and 9 kΩ receiver (Rx) loading. Six hermetically sealed probes went through wireless hermeticity testing, using a 2-coil inductive link under accelerated lifetime testing condition of 85 °C, 1 atm, and 100%RH. The mean-time-to-failure (MTTF) of the probes at 37 °C is extrapolated to be 28.7 years, which is over their lifetime. MDPI 2016-09-01 /pmc/articles/PMC6190206/ /pubmed/30404327 http://dx.doi.org/10.3390/mi7090154 Text en © 2016 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yeon, Pyungwoo
Mirbozorgi, S. Abdollah
Ash, Bruce
Eckhardt, Helmut
Ghovanloo, Maysam
Fabrication and Microassembly of a mm-Sized Floating Probe for a Distributed Wireless Neural Interface
title Fabrication and Microassembly of a mm-Sized Floating Probe for a Distributed Wireless Neural Interface
title_full Fabrication and Microassembly of a mm-Sized Floating Probe for a Distributed Wireless Neural Interface
title_fullStr Fabrication and Microassembly of a mm-Sized Floating Probe for a Distributed Wireless Neural Interface
title_full_unstemmed Fabrication and Microassembly of a mm-Sized Floating Probe for a Distributed Wireless Neural Interface
title_short Fabrication and Microassembly of a mm-Sized Floating Probe for a Distributed Wireless Neural Interface
title_sort fabrication and microassembly of a mm-sized floating probe for a distributed wireless neural interface
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6190206/
https://www.ncbi.nlm.nih.gov/pubmed/30404327
http://dx.doi.org/10.3390/mi7090154
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