Literature DB >> 24843161

Wireless power transfer to deep-tissue microimplants.

John S Ho1, Alexander J Yeh2, Evgenios Neofytou3, Sanghoek Kim2, Yuji Tanabe2, Bhagat Patlolla3, Ramin E Beygui3, Ada S Y Poon1.   

Abstract

The ability to implant electronic systems in the human body has led to many medical advances. Progress in semiconductor technology paved the way for devices at the scale of a millimeter or less ("microimplants"), but the miniaturization of the power source remains challenging. Although wireless powering has been demonstrated, energy transfer beyond superficial depths in tissue has so far been limited by large coils (at least a centimeter in diameter) unsuitable for a microimplant. Here, we show that this limitation can be overcome by a method, termed midfield powering, to create a high-energy density region deep in tissue inside of which the power-harvesting structure can be made extremely small. Unlike conventional near-field (inductively coupled) coils, for which coupling is limited by exponential field decay, a patterned metal plate is used to induce spatially confined and adaptive energy transport through propagating modes in tissue. We use this method to power a microimplant (2 mm, 70 mg) capable of closed-chest wireless control of the heart that is orders of magnitude smaller than conventional pacemakers. With exposure levels below human safety thresholds, milliwatt levels of power can be transferred to a deep-tissue (>5 cm) microimplant for both complex electronic function and physiological stimulation. The approach developed here should enable new generations of implantable systems that can be integrated into the body at minimal cost and risk.

Entities:  

Keywords:  biomedical electronics; microstimulator

Mesh:

Year:  2014        PMID: 24843161      PMCID: PMC4050616          DOI: 10.1073/pnas.1403002111

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  23 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2014-01-21       Impact factor: 11.205

8.  Electricity generation by direct oxidation of glucose in mediatorless microbial fuel cells.

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10.  Energy extraction from the biologic battery in the inner ear.

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  61 in total

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Authors:  Thomas J Oxley; Nicholas L Opie; Sam E John; Gil S Rind; Stephen M Ronayne; Tracey L Wheeler; Jack W Judy; Alan J McDonald; Anthony Dornom; Timothy J H Lovell; Christopher Steward; David J Garrett; Bradford A Moffat; Elaine H Lui; Nawaf Yassi; Bruce C V Campbell; Yan T Wong; Kate E Fox; Ewan S Nurse; Iwan E Bennett; Sébastien H Bauquier; Kishan A Liyanage; Nicole R van der Nagel; Piero Perucca; Arman Ahnood; Katherine P Gill; Bernard Yan; Leonid Churilov; Christopher R French; Patricia M Desmond; Malcolm K Horne; Lynette Kiers; Steven Prawer; Stephen M Davis; Anthony N Burkitt; Peter J Mitchell; David B Grayden; Clive N May; Terence J O'Brien
Journal:  Nat Biotechnol       Date:  2016-02-08       Impact factor: 54.908

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Journal:  Proc Natl Acad Sci U S A       Date:  2020-07-06       Impact factor: 11.205

3.  Robust wireless power transfer using a nonlinear parity-time-symmetric circuit.

Authors:  Sid Assawaworrarit; Xiaofang Yu; Shanhui Fan
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4.  Polydimethylsiloxane-based optical waveguides for tetherless powering of floating microstimulators.

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Journal:  J Biomed Opt       Date:  2017-05-01       Impact factor: 3.170

5.  End-to-End Design of Efficient Ultrasonic Power Links for Scaling Towards Submillimeter Implantable Receivers.

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6.  Miniaturizing wireless implants.

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8.  Simultaneous Wireless Power Transfer and Data Communication Using Synchronous Pulse-Controlled Load Modulation.

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9.  Optogenerapy: When bio-electronic implant enters the modern syringe era.

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Journal:  Porto Biomed J       Date:  2017-07-29

10.  A Wireless Pressure Sensor for Continuous Monitoring of Intraocular Pressure in Conscious Animals.

Authors:  Simon A Bello; Christopher L Passaglia
Journal:  Ann Biomed Eng       Date:  2017-08-15       Impact factor: 3.934

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