Abstract:
We have developed a stretchable microneedle electrode array (sMEA) to stimulate and measure the electrical activity of muscle across multiple sites. The technology provid...Show MoreMetadata
Abstract:
We have developed a stretchable microneedle electrode array (sMEA) to stimulate and measure the electrical activity of muscle across multiple sites. The technology provides the signal fidelity and spatial resolution of intramuscular electrodes across a large area of tissue. Our sMEA is composed of a polydimethylsiloxane (PDMS) substrate, conductive-PDMS traces, and stainless-steel penetrating electrodes. The traces and microneedles maintain a resistance of less than 10 kQ when stretched up to a ~63% tensile strain, which allows for the full range of physiological motion of feline muscle. The device and its constituent materials are cytocompatible for at least 28 days in vivo. When implanted in vivo, the device measures electromyographic (EMG)activitywith clear compound motor unit action potentials. The sMEA also maintains a stable connection with moving muscle while electrically stimulating the tissue. This technology has direct application to wearable sensors, neuroprostheses, and electrophysiological studies of animals and humans.
Published in: IEEE Transactions on Neural Systems and Rehabilitation Engineering ( Volume: 25, Issue: 9, September 2017)
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- IEEE Keywords
- Index Terms
- Electrode Array ,
- Electromyographic Activity ,
- Microneedle Electrode ,
- Spatial Resolution ,
- Muscle Activity ,
- Electrical Stimulation ,
- Tensile Strain ,
- Electrical Activity ,
- Polydimethylsiloxane Substrate ,
- Muscle Electrical Activity ,
- Signal Fidelity ,
- Electrode Penetrations ,
- Mechanical Properties ,
- Muscle Tissue ,
- Fabrication Process ,
- Adenosine Triphosphate ,
- Changes In Length ,
- Printed Circuit Board ,
- Test Strips ,
- Bipolar Electrode ,
- Measure Muscle Activity ,
- Lateral Gastrocnemius ,
- Adenosine Triphosphate Levels ,
- Flexible Electronics ,
- Stretchable Electrodes ,
- Plasma Etching ,
- Electromyography Signals ,
- Days In Vitro ,
- Multiple Electrodes ,
- Cortical Cultures
- Author Keywords
- MeSH Terms
- Action Potentials ,
- Animals ,
- Cells, Cultured ,
- Elastic Modulus ,
- Electric Impedance ,
- Electric Stimulation ,
- Electrodes, Implanted ,
- Electromyography ,
- Equipment Design ,
- Equipment Failure Analysis ,
- Humans ,
- Microarray Analysis ,
- Microelectrodes ,
- Motor Neurons ,
- Muscle Contraction ,
- Muscle Fibers, Skeletal ,
- Needles ,
- Rats ,
- Reproducibility of Results ,
- Sensitivity and Specificity ,
- Synaptic Transmission ,
- Tensile Strength
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- Electrode Array ,
- Electromyographic Activity ,
- Microneedle Electrode ,
- Spatial Resolution ,
- Muscle Activity ,
- Electrical Stimulation ,
- Tensile Strain ,
- Electrical Activity ,
- Polydimethylsiloxane Substrate ,
- Muscle Electrical Activity ,
- Signal Fidelity ,
- Electrode Penetrations ,
- Mechanical Properties ,
- Muscle Tissue ,
- Fabrication Process ,
- Adenosine Triphosphate ,
- Changes In Length ,
- Printed Circuit Board ,
- Test Strips ,
- Bipolar Electrode ,
- Measure Muscle Activity ,
- Lateral Gastrocnemius ,
- Adenosine Triphosphate Levels ,
- Flexible Electronics ,
- Stretchable Electrodes ,
- Plasma Etching ,
- Electromyography Signals ,
- Days In Vitro ,
- Multiple Electrodes ,
- Cortical Cultures
- Author Keywords
- MeSH Terms
- Action Potentials ,
- Animals ,
- Cells, Cultured ,
- Elastic Modulus ,
- Electric Impedance ,
- Electric Stimulation ,
- Electrodes, Implanted ,
- Electromyography ,
- Equipment Design ,
- Equipment Failure Analysis ,
- Humans ,
- Microarray Analysis ,
- Microelectrodes ,
- Motor Neurons ,
- Muscle Contraction ,
- Muscle Fibers, Skeletal ,
- Needles ,
- Rats ,
- Reproducibility of Results ,
- Sensitivity and Specificity ,
- Synaptic Transmission ,
- Tensile Strength