Piezoelectric polymer based acoustic energy harvester for implantable medical devices

被引:1
|
作者
Jawad, Husnain [1 ]
Zhang, Wei [1 ]
Abbasi, Saadullah Farooq [2 ]
Qing, Yajie [1 ]
Sheng, Chenxu [1 ]
Hu, Laigui [1 ]
机构
[1] Technol Fudan Univ, Sch Informat Sci, Dept Micronano Elect, Shanghai, Peoples R China
[2] Univ Birmingham, Sch Elect & Elect Engn, Birmingham, England
来源
ENGINEERING RESEARCH EXPRESS | 2024年 / 6卷 / 01期
基金
中国国家自然科学基金; 上海市自然科学基金;
关键词
acoustic; implantable; P(VDF-TrFe); biomedical; polymer; POWER TRANSFER;
D O I
10.1088/2631-8695/ad1f13
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Wireless implantable devices (WIDs) have the potential to revolutionize biomedical sensing, but their power supplies face significant challenges. Traditional energy transfer methods such as inductive and RF have limitations due to associated tissue losses. This work demonstrates a promising approach to this problem, using a flexible implantable ultrasound energy harvester (IUEH) made of biocompatible Poly (vinylidene fluoride-co-trifluoro ethylene) (P(VDF-TrFe)) free-standing film. Unlike commonly used piezoceramic devices, IUEH can be fabricated using economical solution processing methods such as spin coating. In addition, the PVDF-TrFE Ultrasound energy harvesters are rarely reported in the literature. The device performance of the polymer IUEH was investigated in air, water, and animal meat tissue, and the results show that it can generate a power output of 1.1 mW cm-2 in meat, and 1.4 mW cm-2 in water at 80 kHz. The device fabricated using a free-standing piezoelectric thin film, offers an optimum output that is comparable to other P(VDF-TrFe) based high-frequency devices. Additionally, its flexible design, lower costs, and biocompatibility make it a promising alternative to lead-based devices; thus, offering safety, affordability, and quick customization, while promoting minimally invasive procedures and driving innovation in medical device development.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Piezoelectric Polymer Multilayer Coating Method for Vibration Energy Harvester
    Kuriyama, Nobuaki
    Nakajima, Takashi
    Ichige, Ryo
    Suzuki, Takaaki
    SENSORS AND MATERIALS, 2020, 32 (07) : 2503 - 2515
  • [2] A Miniaturized Spiral Antenna for Energy Harvesting of Implantable Medical Devices
    Ma, Qingyun
    Ray, Laxmi
    Haider, Mohammad Rafiqul
    2014 INTERNATIONAL CONFERENCE ON ELECTRICAL AND COMPUTER ENGINEERING (ICECE), 2014, : 180 - 183
  • [3] Commercial Development of RF Medical Implantable Devices
    Chow, Eric
    Joshi, Himanshu
    Wilats, Adam
    Thompson, David
    Cotton, Kevin
    Nair, Sujith
    Warren, Clint
    Tomayko, Brian
    Adkins, Alan
    Shen, Aiden
    Morris, Milton
    Byerman, Bryan
    2013 IEEE MTT-S INTERNATIONAL MICROWAVE WORKSHOP SERIES ON RF AND WIRELESS TECHNOLOGIES FOR BIOMEDICAL AND HEALTHCARE APPLICATIONS (IMWS-BIO), 2013, : 341 - 343
  • [4] Micromachined Piezoelectric Devices for Acoustic Applications
    Ren, Tian-Ling
    Shu, Yi
    Yang, Yi
    Zhou, Chang-Jian
    Wang, Yu-Feng
    Tian, He
    Zhang, Chang-Hai
    Sun, Hui
    Liu, Xuan
    2012 IEEE INTERNATIONAL CONFERENCE ON ELECTRON DEVICES AND SOLID STATE CIRCUIT (EDSSC), 2012,
  • [5] A Batteryless Energy Harvesting Storage System for Implantable Medical Devices Demonstrated In Situ
    Gall, Oren Z.
    Meng, Chuizhou
    Bhamra, Hansraj
    Mei, Henry
    John, Simon W. M.
    Irazoqui, Pedro P.
    CIRCUITS SYSTEMS AND SIGNAL PROCESSING, 2019, 38 (03) : 1360 - 1373
  • [6] Fabrication of ferrite nanoparticle based improved composite piezoelectric energy harvester for biomechanical energy conversion
    Thulasi, V.
    Lakshmi, P.
    Samuel, E. James Jebaseelan
    Roopan, S. Mohana
    MATERIALS SCIENCE AND ENGINEERING B-ADVANCED FUNCTIONAL SOLID-STATE MATERIALS, 2025, 313
  • [7] Biodegradable based TENGs for self-sustaining implantable medical devices
    Baburaj, Aiswarya
    Banerjee, Swagata
    Aliyana, Akshaya Kumar
    Shee, Chirantan
    Banakar, Megha
    Bairagi, Satyaranjan
    Kumar, S. K. Naveen
    Ali, S. Wazed
    Stylios, George K.
    NANO ENERGY, 2024, 127
  • [8] Performance comparison of implantable piezoelectric energy harvesters
    Mo, Changki
    Radziemski, Leon J.
    Clark, William W.
    ACTIVE AND PASSIVE SMART STRUCTURES AND INTEGRATED SYSTEMS 2008, 2008, 6928
  • [9] Coherence resonance of piezoelectric energy harvester with fractional damping
    Li Hai-Tao
    Qin Wei-Yang
    Zhou Zhi-Yong
    Lan Chun-Bo
    ACTA PHYSICA SINICA, 2014, 63 (22)
  • [10] Foot Drop Stimulation via Piezoelectric Energy Harvester
    Soozandeh, Parham
    Poudel, Ganga
    Sarkari, Morteza
    Behdinan, Kamran
    ACTUATORS, 2022, 11 (07)