Magnetoelectric materials for miniature, wireless neural stimulation at therapeutic frequencies
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Summary
It is shown that magnetoelectric materials – applied for the first time in bioelectronics devices – enable miniature magnetically-powered neural stimulators that operate at clinically relevant high-frequencies and can be miniaturized to sizes smaller than a grain of rice while maintaining effective stimulation voltages.
- Type
- preprint
- Published
- 2018-11-05
- Cited by
- 176
- References
- 65
- Access
- Open access
- OpenAlex
- https://openalex.org/W2898636753
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:92800299
Keywords
Bioelectronics, Wireless power transfer, Wireless, Electrical impedance, Specific absorption rate
References
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- Positive Outcomes Influence the Rate and Time to Publication, but Not the Impact Factor of Publications of Clinical Trial Results
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- Targeting chronic recurrent low back pain from the top-down and the bottom-up: a combined transcranial direct current stimulation and peripheral electrical stimulation intervention.
Cited by
- Using DeepLabCut for 3D markerless pose estimation across species and behaviors
- Developing Next-generation Brain Sensing Technologies – A Review
- The Microbead: A 0.009 mm3 Implantable Wireless Neural Stimulator
- Injectable Nanoelectrodes Enable Wireless Deep Brain Stimulation of Native Tissue in Freely Moving Mice
- Over the Horizon: The Present and Future of Endovascular Neural Recording and Stimulation
- Ultra-compact dual-band smart NEMS magnetoelectric antennas for simultaneous wireless energy harvesting and magnetic field sensing
- A chronic photocapacitor implant for noninvasive neurostimulation with deep red light
- Modeling of Magnetoelectric Antennas for Circuit Simulations in Magnetic Sensing Applications
- Body Dust: Well Beyond Wearable and Implantable Sensors
- Recent advances in electrical neural interface engineering: minimal invasiveness, longevity and scalability
- MagNI: A Magnetoelectrically Powered and Controlled Wireless Neurostimulating Implant
- Stimulating the brain to restore vision
- Expanding biological control to bioelectronics with machine learning
- Encapsulated Magnetoelectric Composites for Wirelessly Powered Brain Implantable Devices
- Nonresonant powering of injectable nanoelectrodes enables wireless deep brain stimulation in freely moving mice
- Magnetic fields for modulating the nervous system
- Moving From Wired to Wireless Brain Stimulation to Treat Movement Disorders: Are We Breaking Ground?
- Distributed sensor and actuator networks for closed-loop bioelectronic medicine
- Silicone encapsulation of thin-film SiO x , SiO x N y and SiC for modern electronic medical implants: a comparative long-term ageing study
- Flexible Photonic Probes for New-Generation Brain–Computer Interfaces
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