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The demand for advanced human-machine interfaces (HMIs) highlights the need for accurate measurement of muscle contraction states. Traditional methods, such as electromyography, cannot measure passive muscle contraction states, while optical and ultrasonic techniques suffer from motion artifacts due to their rigid transducers. To overcome these limitations, we developed a flexible multichannel electrical impedance sensor (FMEIS) for noninvasive detection of skeletal muscle contractions. By applying an imperceptible current, the FMEIS can target multiple deep muscles by capturing electric-field ripples generated by their contractions. With an ultrathin profile (~220 micrometers), a low elastic modulus (212.8 kilopascals) closely matching human skin, and engineered adhesive sensor surfaces, the FMEIS conforms nicely to human skin with minimized motion artifacts. The FMEIS achieved high accuracy in both hand gesture recognition and muscle force prediction using machine learning models. With demonstrated performance across multiple HMI applications, including human-robot collaboration, exoskeleton control, and virtual surgery, FMEIS shows great potential for future real-time collaborative HMI systems.
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http://dx.doi.org/10.1126/sciadv.adv3359 | DOI Listing |
BMC Ecol Evol
September 2025
Lehrstuhl für Zoologie, TUM School of Life Sciences, Technical University of Munich, Liesel-Beckmann Strasse 4, Freising, 85354, Germany.
Accurate three-dimensional localisation of ultrasonic bat calls is essential for advancing behavioural and ecological research. I present a comprehensive, open-source simulation framework-Array WAH-for designing, evaluating, and optimising microphone arrays tailored to bioacoustic tracking. The tool incorporates biologically realistic signal generation, frequency-dependent propagation, and advanced Time Difference of Arrival (TDoA) localisation algorithms, enabling precise quantification of both positional and angular accuracy.
View Article and Find Full Text PDFNat Mater
September 2025
State Key Laboratory of Optoelectronic Materials and Technologies, Guangdong Province Key Laboratory of Display Material and Technology, School of Electronics and Information Technology, Sun Yat-sen University, Guangzhou, China.
Small-scale magnetically actuated catheters capable of remote active navigation have promising applications in minimally invasive surgeries. However, existing fabrication techniques hinder their integration with multimodal sensing components, especially since embedding rigid electronic components within the catheters may diminish their flexibility and controllability. Here we report a magnetically actuated bioelectronic catheter with the in situ multiplexed biosensing of multiple types of metabolite or ion simultaneously.
View Article and Find Full Text PDFIEEE Trans Biomed Eng
September 2025
The multi-channel synchronous stimulator, aimed at achieving efficient and precise neural regulation, typically utilizes a monolithic microelectrode array structure. However, this structure limits the flexibility of electrode placement and the expansion to a large number of nodes, particularly in discontinuous locations. To address this, this paper designs a distributed passive micro-magnetic stimulation (DP-μMS) neuro-regulation device with multi-brain region collaborative stimulation functionality.
View Article and Find Full Text PDFMicromachines (Basel)
August 2025
Wuhan Neuracom Technology Development Co., Ltd., Wuhan 430074, China.
A 16-channel dual-sided flexible electrode based on a polyimide substrate was designed and fabricated using micro-electromechanical system (MEMS) technology. The electrode exhibited an average impedance of 5.9 kΩ at 1 kHz and a charge storage capacity (CSC) of 10.
View Article and Find Full Text PDFHealth Phys
August 2025
Department of Nuclear Engineering and Radiological Sciences, University of Michigan, 2355 Bonisteel Boulevard, Ann Arbor, MI 48109-2104.
In sound card-based gamma spectroscopy, a computer sound card serves as the multichannel analyzer in a spectroscopic system with a lower price point and more compact form factor than many traditional systems. A mobile system for radiation measurements, named RadMap, was created to investigate the potential of using sound card spectroscopy in a handheld, mobile radiation measurement and spectroscopic device. RadMap was designed using commercially available parts, including a sound card spectrometer, and is compatible with most photomultiplier tube scintillators for spectroscopic applications or Geiger-Mueller detectors for non-spectroscopic usage.
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