Junyi Yin
As seen in:
Nature,
Wiley Online Library,
Frontiers,
MDPI,
Science Magazine,
Royal Society of Chemistry,
Cell Press,
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Brain-Inspired Stretchable Electronics Blur the Line Between Humans and
The pursuit of merging intelligent computing directly with the human body has long fascinated researchers, promising breakthroughs in continuous health monitoring and advanced prosthetic control. Yet, this lofty ambition has been constrained by a fundamental physical challenge-traditional artificial intelligence processors, primarily silicon-based, are intrinsically rigid.
Advances in Wearable Bioimaging
1 Introduction Wearable bioelectronics have emerged as a transformative platform capable of shifting the current reactive, disease-centric healthcare paradigm toward a personalized and proactive healthcare model emphasizing continuous physiological monitoring, early disease detection, preventive intervention, and long-term health promotion [1-11]. The development of affordable and wearable platforms for continuous deep-tissue imaging remains a critical challenge in personalized healthcare.
A large-scale stretchable neuromorphic circuit for on-body edge computing
Abstract Intrinsically stretchable electronics can be used to make wearable devices that collect large amounts of multimodal sensory data. This has led to a demand for enhanced near-sensor computing capabilities that can process such data. One potential solution is neuromorphic edge computing implemented using stretchable organic electrochemical transistors, but the lack of a scalable fabrication method for these transistors has limited the size and complexity of the systems.
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