Self-decision bioelectronic systems combine physiological sensing, computation, and intervention to produce autonomous therapeutic responses. The abstract frames them as a shift beyond conventional sense-then-treat systems.
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self-decision bioelectronic systems
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Biointegration, sustainable power, and regulatory translation remain challenges for clinical adoption of self-decision bioelectronic systems.
enduring challenges, including biointegration, sustainable power, and regulatory translation, that must be overcome for clinical adoption
Self-decision bioelectronic systems represent a shift from conventional sense-then-treat paradigms toward autonomous closed-loop therapeutics.
Self-decision bioelectronic systems mark a transformative leap from conventional 'sense-then-treat' paradigms toward autonomous, closed-loop therapeutics
Material innovation is presented as the pivotal enabler for self-decision bioelectronic systems by integrating sensing, computation, and adaptive intervention.
material innovation serving as the pivotal enabler... seamlessly integrating high-performance sensing, intelligent computation, and adaptive intervention
Electrochemical, electrophysiological, optical, and mechanical sensors fabricated from soft conductors, responsive polymers, and nanocomposites yield critical data streams for reliable physiological monitoring.
recent advances in electrochemical, electrophysiological, optical, and mechanical sensors fabricated from soft conductors, responsive polymers, and nanocomposites yield critical data streams for reliable physiological monitoring
Diverse material platforms enable functional outputs including precise electrical stimulation, on-demand drug delivery, mechanical actuation, and optical modulation.
Diverse material platforms are positioned as the central drivers of functional outputs, enabling precise electrical stimulation, on-demand drug delivery, mechanical actuation, and optical modulation