TY - GEN
T1 - Self-powered implantable wireless piezoelectric patch for multisite neuroregulation
AU - Zhong, Tianyan
AU - Liang, Shan
AU - Long, Zhihe
AU - Xue, Xinyu
AU - Xing, Lili
N1 - Full text of this publication does not contain sufficient affiliation information. With consent from the author(s) concerned, the Research Unit(s) information for this record is based on the existing academic department affiliation of the author(s).
PY - 2023/9
Y1 - 2023/9
N2 - We have developed an innovative self-powered, array electrode, and minimally invasive implantable patch for intelligent multi-point coordination neuromodulation. The patch is made of a piezoelectric material, specifically poly-L-lactic acid (PLLA), which utilizes wireless energy from external ultrasonic sources to enable seamless wireless power and control. By employing signal circuit modulation, the patch emits a series of neurally modulated signals, providing precise neural stimulation therapy. Constructed entirely from biocompatible materials, the patches ensure compatibility within the body. Additionally, their self-degradation mechanism allows for short-term implantation without the need for a second operation, making them sustainable implants that provide continuous nerve stimulation signal modulation. This approach opens up possibilities for remote and precise multi-point coordination neural modulation. It holds the potential to enhance patient care, improve medical resource management, and enable personalized therapeutic interventions on a level never witnessed before. © 2023 IEEE.
AB - We have developed an innovative self-powered, array electrode, and minimally invasive implantable patch for intelligent multi-point coordination neuromodulation. The patch is made of a piezoelectric material, specifically poly-L-lactic acid (PLLA), which utilizes wireless energy from external ultrasonic sources to enable seamless wireless power and control. By employing signal circuit modulation, the patch emits a series of neurally modulated signals, providing precise neural stimulation therapy. Constructed entirely from biocompatible materials, the patches ensure compatibility within the body. Additionally, their self-degradation mechanism allows for short-term implantation without the need for a second operation, making them sustainable implants that provide continuous nerve stimulation signal modulation. This approach opens up possibilities for remote and precise multi-point coordination neural modulation. It holds the potential to enhance patient care, improve medical resource management, and enable personalized therapeutic interventions on a level never witnessed before. © 2023 IEEE.
KW - multielectrode array
KW - piezoelectric effect
KW - self-powered
KW - ultrasonic wireless-control
UR - https://www.scopus.com/pages/publications/85187296116
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-85187296116&origin=recordpage
U2 - 10.1109/ICISCAE59047.2023.10392834
DO - 10.1109/ICISCAE59047.2023.10392834
M3 - RGC 32 - Refereed conference paper (with host publication)
T3 - IEEE International Conference on Information Systems and Computer Aided Education, ICISCAE
SP - 865
EP - 868
BT - 2023 IEEE 6th International Conference on Information Systems and Computer Aided Education (ICISCAE)
PB - IEEE
T2 - 2023 IEEE 6th International Conference on Information Systems and Computer Aided Education, ICISCAE 2023
Y2 - 23 September 2023 through 25 September 2023
ER -