Toward an AI Era: advances in electronic skins

X Fu, W Cheng, G Wan, Z Yang, BCK Tee - Chemical Reviews, 2024 - ACS Publications
Electronic skins (e-skins) have seen intense research and rapid development in the past two
decades. To mimic the capabilities of human skin, a multitude of flexible/stretchable sensors …

Bioinspired interactive neuromorphic devices

J Yu, Y Wang, S Qin, G Gao, C Xu, ZL Wang, Q Sun - Materials Today, 2022 - Elsevier
The performance of conventional computer based on von Neumann architecture is limited
due to the physical separation of memory and processor. By synergistically integrating …

Versatile ion‐gel fibrous membrane for energy‐harvesting iontronic Skin

Y Liu, C Zhao, Y ** versatile and high sensitivity sensors is beneficial for promoting flexible
electronic devices and human‐machine interactive systems. Researchers are working on …

Self-powered sensing systems with learning capability

A Alagumalai, W Shou, O Mahian, M Aghbashlo… - Joule, 2022 - cell.com
Self-powered sensing systems augmented with machine learning (ML) represent a path
toward the large-scale deployment of the internet of things (IoT). With autonomous energy …

Organic neuroelectronics: from neural interfaces to neuroprosthetics

GT Go, Y Lee, DG Seo, TW Lee - Advanced Materials, 2022 - Wiley Online Library
Requirements and recent advances in research on organic neuroelectronics are outlined
herein. Neuroelectronics such as neural interfaces and neuroprosthetics provide a …

2D multifunctional devices: from material preparation to device fabrication and neuromorphic applications

Z Huang, Y Li, Y Zhang, J Chen, J He… - International Journal of …, 2024 - iopscience.iop.org
Neuromorphic computing systems, which mimic the operation of neurons and synapses in
the human brain, are seen as an appealing next-generation computing method due to their …