Flexible Shielded Sensors Based on Biocompatible Ferroelectrets for Heart Rate Monitoring

被引:5
作者
Altmann, Alexander A. [1 ]
Suppelt, Sven [1 ]
Latsch, Bastian [1 ]
Ben Dali, Omar [1 ]
Doersam, Jan Helge [1 ]
Thiem, Daniel G. E. [2 ]
Kupnik, Mario [1 ]
机构
[1] Tech Univ Darmstadt, Measurement & Sensor Technol Grp, Darmstadt, Germany
[2] JGU Mainz, Dept Oral & Maxillofacial Surg, Facial Plast Surg, Univ Med Ctr, Mainz, Germany
来源
2024 IEEE INTERNATIONAL CONFERENCE ON FLEXIBLE AND PRINTABLE SENSORS AND SYSTEMS, FLEPS 2024 | 2024年
关键词
flexible sensor; ferroelectret; heart rate monitoring; biocompatibility; electromagnetic shielding;
D O I
10.1109/FLEPS61194.2024.10603940
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
In the medical field, flexible sensors based on biocompatible materials monitoring biosignals ex and in vivo are essential. In this work, we present a flexible ferroelectret sensor with high sensitivity and additional shielding against electromagnetic interference, suitable for heart rate monitoring. The sensor structure is manufactured by 3D printing filament onto biocompatible bulk polylactic acid (PLA) film, thermally fusing bulk PLA film onto the 3D printed filament, and fully encapsulating the structure with biocompatible silicone rubber. We compare the normalized signal amplitude and signal-to-noise ratio (SNR) of a shielded and encapsulated sensor with a non-shielded sensor in an ex vivo experiment on the human common carotid artery. The optimized sensor outputs a voltage amplitude 2.54 times higher due to the improved structure, and the shielding improves the SNR by 10.58 dB. Additionally, we demonstrate the functionality of the sensor in an in vivo experiment on a pig in a medical environment, measuring both heart rate and signal amplitude. During ongoing operation, the heart rate is reliably monitored with sufficient signal amplitude, detecting each heartbeat consistently. Using a low-cost additive manufacturing approach with biocompatible materials, we present an adaptable sensor with high sensitivity for medical applications, suitable for long-term heart rate monitoring on transplants and in vivo applications.
引用
收藏
页数:4
相关论文
共 50 条
[31]   Development and Performance Evaluation of a Remote Vision-Based Heart Rate Monitoring System [J].
Kurylo, Vasyl ;
Varyshchuk, Vasyl .
2018 IEEE 13TH INTERNATIONAL SCIENTIFIC AND TECHNICAL CONFERENCE ON COMPUTER SCIENCES AND INFORMATION TECHNOLOGIES (CSIT), VOL 1, 2018, :288-291
[32]   Influence of Sensor Position and Body Movements on Radar-Based Heart Rate Monitoring [J].
Herzer, Liv ;
Muecke, Annika ;
Richer, Robert ;
Albrecht, Nils C. ;
Heyder, Markus ;
Jaeger, Katharina M. ;
Koenig, Veronika ;
Koelpin, Alexander ;
Rohleder, Nicolas ;
Eskofier, Bjoern M. .
2022 IEEE-EMBS INTERNATIONAL CONFERENCE ON BIOMEDICAL AND HEALTH INFORMATICS (BHI) JOINTLY ORGANISED WITH THE IEEE-EMBS INTERNATIONAL CONFERENCE ON WEARABLE AND IMPLANTABLE BODY SENSOR NETWORKS (BSN'22), 2022,
[33]   Construction of heart rate monitoring platform for college physical training based on wireless network [J].
Bo, Huang ;
Sun, Zhiming .
WIRELESS NETWORKS, 2023, 29 (07) :3005-3016
[34]   EFFICIENT ECG RECONSTRUCTION AND HEART RATE MONITORING USING TIME-BASED SAMPLER [J].
Naaman, Hila ;
Bilik, Daniel ;
Eder, Yonathan ;
Eldar, Yonina C. .
2024 IEEE INTERNATIONAL CONFERENCE ON MICROWAVES, COMMUNICATIONS, ANTENNAS, BIOMEDICAL ENGINEERING AND ELECTRONIC SYSTEMS, COMCAS 2024, 2024,
[35]   The Design of Stethoscope-based Heart Rate Monitoring Device for Infant Incubator Application [J].
Aisyah, Fitriyanti Nur ;
Aryanthera, Ketut Vanda W. N. ;
Devara, Kresna ;
Poespawati, Nji Raden ;
Purnamaningsih, Retno Wigajatri .
3RD BIOMEDICAL ENGINEERING'S RECENT PROGRESS IN BIOMATERIALS, DRUGS DEVELOPMENT, AND MEDICAL DEVICES, 2019, 2092
[36]   Construction of heart rate monitoring platform for college physical training based on wireless network [J].
Huang Bo ;
Zhiming Sun .
Wireless Networks, 2023, 29 :3005-3016
[37]   Multifunctional wearable humidity and pressure sensors based on biocompatible graphene/bacterial cellulose bioaerogel for wireless monitoring and early warning of sleep apnea syndrome [J].
Sun, Jingyao ;
Xiu, Kunhao ;
Wang, Ziying ;
Hu, Ning ;
Zhao, Libin ;
Zhu, Hao ;
Kong, Fanzhong ;
Xiao, Jianliang ;
Cheng, Lijin ;
Bi, Xiaoyang .
NANO ENERGY, 2023, 108
[38]   Temperature and Strain Compensation for Flexible Sensors Based on Thermosensation [J].
Wang, Liangqi ;
Zhu, Rong ;
Li, Guozhen .
ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (01) :1953-1961
[39]   MXene-based flexible sensors for wearable applications [J].
Yang, Wenjie ;
Liu, Fenglu ;
Lin, Yongxiang ;
Wang, Jun ;
Zhang, Cheng ;
Cheng, Huanyu ;
Chen, Huamin .
SOFT SCIENCE, 2025, 5 (03)
[40]   Piezoresistive behaviour of flexible PEDOT:PSS based sensors [J].
Latessa, G. ;
Brunetti, F. ;
Reale, A. ;
Saggio, G. ;
Di Carlo, A. .
SENSORS AND ACTUATORS B-CHEMICAL, 2009, 139 (02) :304-309