神经形态工程学
神经康复
神经假体
神经科学
本体感觉
传出的
计算机科学
生物医学工程
材料科学
传入的
医学
心理学
人工神经网络
人工智能
康复
作者
Yeongjun Lee,Yuxin Liu,Dae‐Gyo Seo,Jin Young Oh,Yeongin Kim,Jinxing Li,Jiheong Kang,Jaemin Kim,Jaewan Mun,Amir M. Foudeh,Zhenan Bao,Tae‐Woo Lee
标识
DOI:10.1038/s41551-022-00918-x
摘要
By relaying neural signals from the motor cortex to muscles, devices for neurorehabilitation can enhance the movement of limbs in which nerves have been damaged as a consequence of injuries affecting the spinal cord or the lower motor neurons. However, conventional neuroprosthetic devices are rigid and power-hungry. Here we report a stretchable neuromorphic implant that restores coordinated and smooth motions in the legs of mice with neurological motor disorders, enabling the animals to kick a ball, walk or run. The neuromorphic implant acts as an artificial efferent nerve by generating electrophysiological signals from excitatory post-synaptic signals and by providing proprioceptive feedback. The device operates at low power (~1/150 that of a typical microprocessor system), and consists of hydrogel electrodes connected to a stretchable transistor incorporating an organic semiconducting nanowire (acting as an artificial synapse), connected via an ion gel to an artificial proprioceptor incorporating a carbon nanotube strain sensor (acting as an artificial muscle spindle). Stretchable electronics with proprioceptive feedback may inspire the further development of advanced neuromorphic devices for neurorehabilitation.
科研通智能强力驱动
Strongly Powered by AbleSci AI