Mechanics of flexible and stretchable piezoelectrics for energy harvesting

被引:0
|
作者
CHEN Ying [1 ,2 ]
LU BingWei [1 ,2 ]
OU DaPeng [1 ,2 ]
FENG Xue [1 ,2 ]
机构
[1] Department of Engineering Mechanics, Tsinghua University
[2] Center for Mechanics and Materials, Tsinghua University
基金
中国国家自然科学基金;
关键词
piezoelectric effect; energy harvesting; flexible electronics; stretchable electronics;
D O I
暂无
中图分类号
TH789 [其他医疗器械];
学科分类号
1004 ;
摘要
As rapid development in wearable/implantable electronic devices benefit human life in daily health monitoring and disease treatment medically, all kinds of flexible and/or stretchable electronic devices are booming, together with which is the demanding of energy supply with similar mechanical property. Due to its ability in converting mechanical energy lying in human body into electric energy, energy harvesters based on piezoelectric materials are promising for applications in wearable/implantable device’s energy supply in a renewable, clean and life-long way. Here the mechanics of traditional piezoelectrics in energy harvesting is reviewed, including why piezoelectricity is the choice for minor energy harvesting to power the implantable/wearable electronics and how. Different kinds of up to date flexible piezoelectric devices for energy harvesting are introduced, such as nanogenerators based on Zn O and thin and conformal energy harvester based on PZT. A detailed theoretical model of the flexible thin film energy harvester based on PZT nanoribbons is summarized, together with the in vivo demonstration of energy harvesting by integrating it with swine heart. Then the initial researches on stretchable energy harvesters based on piezoelectric material in wavy or serpentine configuration are introduced as well.
引用
收藏
页码:45 / 57
页数:13
相关论文
共 50 条
  • [21] Coupling High Resonant Frequency Piezoelectrics to Human-Scale Frequencies for Energy Harvesting
    Park, Euiyoung
    Bassiri-Gharb, Nazanin
    Stern, Ilan
    8TH INTERNATIONAL CONFERENCE ON AMBIENT SYSTEMS, NETWORKS AND TECHNOLOGIES (ANT-2017) AND THE 7TH INTERNATIONAL CONFERENCE ON SUSTAINABLE ENERGY INFORMATION TECHNOLOGY (SEIT 2017), 2017, 109 : 771 - 776
  • [22] Mechanics of stretchable electronics
    Song, J.
    CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 2015, 19 (03) : 160 - 170
  • [23] Evaluation of Flexible Transducers for Motion Energy Harvesting
    Collins, Michael
    Behrens, Sam
    McGarry, Scott
    ACTIVE AND PASSIVE SMART STRUCTURES AND INTEGRATED SYSTEMS 2009, 2009, 7288
  • [24] Energy harvesting from flexible piezoelectric ring
    Kim, Yeunhee
    Song, Kahye
    Song, Jae-Bok
    Cha, Youngsu
    SMART MATERIALS AND STRUCTURES, 2019, 28 (08)
  • [25] ENERGY HARVESTING ABOUT FLEXIBLE PIEZOELECTRIC MATERIAL
    Liu, Jian-jun
    Chen, Xiang-hua
    Zuo, Hong
    Li, Qun
    PROCEEDINGS OF THE 2020 15TH SYMPOSIUM ON PIEZOELECTRCITY, ACOUSTIC WAVES AND DEVICE APPLICATIONS (SPAWDA), 2021, : 575 - 579
  • [26] Carbon Nanotube Flexible and Stretchable Electronics
    Le Cai
    Chuan Wang
    Nanoscale Research Letters, 2015, 10
  • [27] Flexible and stretchable electronics for wearable healthcare
    van den Brand, Jeroen
    de Kok, Margreet
    Sridhar, Ashok
    Cauwe, Maarten
    Verplancke, Rik
    Bossuyt, Frederick
    de Baets, Johan
    Vanfleteren, Jan
    PROCEEDINGS OF THE 2014 44TH EUROPEAN SOLID-STATE DEVICE RESEARCH CONFERENCE (ESSDERC 2014), 2014, : 206 - 209
  • [28] Carbon Nanotube Flexible and Stretchable Electronics
    Cai, Le
    Wang, Chuan
    NANOSCALE RESEARCH LETTERS, 2015, 10
  • [29] Flexible and stretchable triboelectric nanogenerator fabric for biomechanical energy harvesting and self-powered dual-mode human motion monitoring
    He, Meng
    Du, Wenwen
    Feng, Yanmin
    Li, Shijie
    Wang, Wei
    Zhang, Xiang
    Yu, Aifang
    Wan, Lingyu
    Zhai, Junyi
    NANO ENERGY, 2021, 86
  • [30] Mechanics of smart origami sunscreens with energy harvesting ability
    Miranda, Raffaele
    Babilio, Enrico
    Singh, Narinder
    Santos, Filipe
    Fraternali, Fernando
    MECHANICS RESEARCH COMMUNICATIONS, 2020, 105 (105)