Dongguk University Researchers Develop Battery-Free Flexible Device for Neuromorphic Sensing
Researchers have developed a new self-powered, flexible neuromorphic sensing platform
Addressing this challenge, a research team led by Professor Sejoon Lee from the Department of System Semiconductor at Dongguk University in
Explaining their inspiration,
In the human arm, mechanoreceptors convert skin deformation into electrical signals that are transmitted through neurons and processed at synapses. Mimicking this process, the proposed device employs two TENGs connected to a single g-IGT. The TENG connected to the g-IGT gate supplies pre-synaptic spikes, while the drain-side TENG provides post-synaptic spikes. When TENGs sense mechanical stimuli such as touch, they produce voltage pulses that drive the synaptic response of the g-IGT. This circuit operates entirely without an external power source, harvesting energy directly from mechanical stimuli.
Importantly, the researchers demonstrated that the device can exhibit hierarchical memory processes, similar to biological neural networks. Specifically, the device can exhibit sensory memory with a decay time of about 70 milliseconds and short-term memory (STM) with decay times of 0.2–0.45 seconds. In addition, repeated stimulation can transition short-term memory toward long-term memory, with a decay time exceeding 2 seconds.
The researchers also demonstrated spike-rate-dependent plasticity (SRDP), a fundamental learning and memory mechanism, enabling synaptic strength to change according to the frequency of incoming spikes. This SRDP functionality remained stable even under bending.
Furthermore, the researchers evaluated the device's learning capability by implementing its experimentally measured synaptic behavior in a single-layer artificial neural network for human activity recognition. Using publicly available human-motion data, the system classified six human activities: walking, sitting, standing, lying, walking upstairs and walking downstairs, with 88.05% accuracy using TENG-driven synaptic behavior under bending. Under high-noise conditions, the system maintained more than 75% accuracy, although performance decreased under extreme signal distortion.
Potential applications of this technology include self-powered wearable health-monitoring devices, electronic skin, smart prosthetics, human–machine interfaces, and intelligent motion-monitoring systems.
Looking ahead,
Reference
Title of original paper: Self-Powered Flexible Triboelectric-Gated Ion-Gel Transistor for Neuromorphic Tactile Sensing and Human Activity Recognition
Journal: Advanced Materials
DOI: https://doi.org/10.1002/adma.202520540
About the institute
Website: http://www.dongguk.edu/mbs/en/index.jsp
Media Contact:
Sunggeun Cho
82 2-2260-3069
[email protected]
View original content to download multimedia:https://www.prnewswire.com/news-releases/dongguk-university-researchers-develop-battery-free-flexible-device-for-neuromorphic-sensing-302890432.html
SOURCE Dongguk University
Serious News for Serious Traders! Try StreetInsider.com Premium Free!
You May Also Be Interested In
- Ribo Submits European Clinical Trial Application for Phase Ⅰ Study of INHBE-Targeting siRNA RBD3133
- Live Nation Entertainment Announces Pricing of Private Senior Notes Offering
- Red Lobster® Names Andy Pitts Chief Marketing Officer and Jon Tryzbiak Chief Information Officer
Create E-mail Alert Related Categories
PRNewswire, Press ReleasesSign up for StreetInsider Free!
Receive full access to all new and archived articles, unlimited portfolio tracking, e-mail alerts, custom newswires and RSS feeds - and more!





Tweet
Share