A poly(L-lactic Acid)-based flexible piezoelectric energy harvester with micro-zigzag structures

被引:3
|
作者
Liu, Yijie [1 ,2 ]
Xue, Yi [1 ,2 ]
He, Zifeng [1 ,2 ]
Liang, Wolin [1 ,2 ]
Yang, Jian [1 ,2 ]
Babichuk, Ivan S. [1 ,2 ,3 ]
机构
[1] Wuyi Univ, Sch Mech & Automat Engn, Jiangmen 529020, Guangdong, Peoples R China
[2] Wuyi Univ, Jiangmen Key Lab Intelligent Mfg Polymer Mat, Jiangmen 529020, Guangdong, Peoples R China
[3] NAS Ukraine, V Lashkaryov Inst Semicond Phys, UA-03680 Kiev, Ukraine
关键词
energy harvester; flexible; piezoelectric; 3D printing; PLLA; POLYMER;
D O I
10.1088/1361-665X/ad4e21
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Piezoelectric energy harvester (PEH) holds great potential for flexible electronics and wearable devices. However, the power conversion efficiency of flexible PEH (fPEH) has often been a limiting factor, especially under variable excitation. Herein, we propose a practical solution: a poly(L-lactic acid)-based fPEH with 3D-printed micro-zigzag structures. This design not only broadens the operational bandwidth and enhances low-frequency response but also offers a tangible improvement in the power conversion efficiency of fPEH. The micro-zigzag structure was designed and fabricated using a digital light processing 3D printing technique with acrylates, a method that is readily accessible to researchers and engineers in the field. Mechanical properties of the 3D-printed acrylic elastomers with different compositions were investigated to obtain the material parameters, and then fPEH with the sandwich structure was fabricated via sputtering and packaging. Subsequently, numerical simulation was conducted on the micro-zigzag structures to determine the structure sizes and oscillation frequencies of fPEH. Finally, four micro-zigzag structures with 3-, 4-, 5- and 6 mm lengths were tested to obtain oscillation frequencies of 51, 37, 22, and 21 Hz consistent with the simulation. The output voltages of fPEH are 11-30 mV with the load ranges of 60-100 M Omega. Stability evaluation showed that the fPEH can work under low frequency (<100 Hz) and broadband conditions. The micro-zigzag structure provided new insights for the design of fPEH, paving the way for more efficient and practical energy harvesting solutions in the future.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] Poly(L-lactic acid) Reinforced with Hydroxyapatite and Tungsten Disulfide Nanotubes
    Golan, Ofek
    Shalom, Hila
    Kaplan-Ashiri, Ifat
    Cohen, Sidney R.
    Feldman, Yishay
    Pinkas, Iddo
    Ofek Almog, Rakefet
    Zak, Alla
    Tenne, Reshef
    POLYMERS, 2021, 13 (21)
  • [42] Preparation of Chitosan-g-Poly(l-Lactic Acid) Copolymer
    Cui, Yuan
    Zhang, Jingpeng
    Zhang, Wei
    Duan, Qian
    ADVANCES IN POLYMER TECHNOLOGY, 2017, 36 (03) : 331 - 335
  • [43] Thermal and mechanical characteristics of poly(L-lactic acid) nanocomposite scaffold
    Lee, JH
    Park, TG
    Park, HS
    Lee, DS
    Lee, YK
    Yoon, SC
    Nam, JD
    BIOMATERIALS, 2003, 24 (16) : 2773 - 2778
  • [44] Polymorphism Texture Induced by Fractional Precipitation of Poly(L-lactic acid)
    Hu, Dapeng
    Chen, Min
    Lu, Songyan
    Li, Hanying
    MACROMOLECULES, 2022, 55 (18) : 8195 - 8202
  • [45] Characterization of poly(L-lactic acid) microspheres loaded with holmium acetylacetonate
    Nijsen, JFW
    van Steenbergern, MJ
    Kooijman, H
    Talsma, H
    Kroon-Batenburg, LMJ
    van de Weert, M
    van Rijk, PP
    de Witte, A
    Schip, ADV
    BIOMATERIALS, 2001, 22 (22) : 3073 - 3081
  • [46] Influence of Poly(L-Lactic Acid) Nanofibers and BMP-2-Containing Poly(L-Lactic Acid) Nanofibers on Growth and Osteogenic Differentiation of Human Mesenchymal Stem Cells
    Schofer, Markus D.
    Fuchs-Winkelmann, Susanne
    Graebeduenkel, Christian
    Wack, Christina
    Dersch, Roland
    Rudisile, Markus
    Wendorff, Joachim H.
    Greiner, Andreas
    Paletta, Juergen R. J.
    Boudriot, Ulrich
    THESCIENTIFICWORLDJOURNAL, 2008, 8 : 1269 - 1279
  • [47] Poly(l-lactic acid)/vaterite composite coatings on metallic magnesium
    Shinya Yamada
    Akiko Yamamoto
    Toshihiro Kasuga
    Journal of Materials Science: Materials in Medicine, 2014, 25 : 2639 - 2647
  • [48] Study of capillary rise in biodegradable porous poly (L-lactic acid) electrospun nano/micro fiber yarns
    Valipouri, Afsaneh
    Gharehaghaji, Ali Akbar
    Ravandi, Seyed Abdolkarim Hosseini
    Dabirian, Farzad
    Journal of Industrial Textiles, 2015, 44 (06) : 899 - 911
  • [49] Development of poly(L-lactic acid) (PLLA) biocomposites with waste wood
    Bitencourt, Schaiane Silveira
    Batista, Ketlin Cristina
    Zattera, Ademir Jose
    Kasper Silva, Denise Abatti
    Testa Pezzin, Ana Paula
    MATERIA-RIO DE JANEIRO, 2017, 22 (04):
  • [50] A green COPD flame retardant for improving poly(l-lactic acid)
    Shen, Yueshi
    Sun, Qihao
    Liu, Lei
    Xu, Huidi
    Wei, Junge
    Chen, Xing
    Song, Xiaofeng
    Zhang, Baochang
    POLYMER DEGRADATION AND STABILITY, 2022, 195