TY - GEN
T1 - An Implantable Epicardial Biopotential Monitoring System with Wireless Data and Power Telemetry
AU - Ding, Junfu
AU - Song, Lingnan
AU - Dai, Fei
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - We have developed an implantable biopotential monitoring system-on-board (SoB) for electrocardiographic sensing, with performance validated through ECG signal simulator test. The integrated system incorporates BLE 5.0 wireless communication, enabling real-time graphical signal visualization through a dedicated PC interface. To improve patient comfort and minimize surgical interventions, a wireless charging module is implemented to eliminate the need for battery replacement procedures. The prototype demonstrates miniaturization, achieving complete system integration within a circular form factor of 14 mm radius (equivalent to 615 mm2 footprint) with a total component-inclusive profile thickness of 2.67 mm. Electrical characterization reveals an operational current consumption of approximately 90 mA during active mode with Bluetooth communication, while maintaining a maximum unobstructed transmission range of 4.5 meters under free-space conditions.In the electromagnetic safety simulation of the implanted device, we model the implanted device and evaluate the radiation of the antenna inside.The results are in line with the ICNIRP standard.
AB - We have developed an implantable biopotential monitoring system-on-board (SoB) for electrocardiographic sensing, with performance validated through ECG signal simulator test. The integrated system incorporates BLE 5.0 wireless communication, enabling real-time graphical signal visualization through a dedicated PC interface. To improve patient comfort and minimize surgical interventions, a wireless charging module is implemented to eliminate the need for battery replacement procedures. The prototype demonstrates miniaturization, achieving complete system integration within a circular form factor of 14 mm radius (equivalent to 615 mm2 footprint) with a total component-inclusive profile thickness of 2.67 mm. Electrical characterization reveals an operational current consumption of approximately 90 mA during active mode with Bluetooth communication, while maintaining a maximum unobstructed transmission range of 4.5 meters under free-space conditions.In the electromagnetic safety simulation of the implanted device, we model the implanted device and evaluate the radiation of the antenna inside.The results are in line with the ICNIRP standard.
UR - https://www.scopus.com/pages/publications/105019529435
U2 - 10.1109/IWS65943.2025.11177953
DO - 10.1109/IWS65943.2025.11177953
M3 - 会议稿件
AN - SCOPUS:105019529435
T3 - 2025 IEEE MTT-S International Wireless Symposium, IWS 2025 - Proceedings
BT - 2025 IEEE MTT-S International Wireless Symposium, IWS 2025 - Proceedings
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 12th IEEE MTT-S International Wireless Symposium, IWS 2025
Y2 - 19 May 2025 through 22 May 2025
ER -