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Mechanics of flexible and stretchable piezoelectrics for energy harvesting 被引量:5

Mechanics of flexible and stretchable piezoelectrics for energy harvesting
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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. 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.
出处 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS CSCD 2015年第9期39-51,共13页 中国科学:物理学、力学、天文学(英文版)
基金 supported by the National Basic Research Program of China(Grant No.2015CB351900) National Natural Science Foundation of China(Grant Nos.11222220,11320101001,11090331 and 11227801) Tsinghua University Initiative Scientific Research Program
关键词 piezoelectric effect energy harvesting flexible electronics stretchable electronics 能量收集 柔性薄膜 材料力学 PZT薄膜 压电材料 电子设备 植入式 采集器
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  • 1Roundy S, Wright P K, Rabaey J. A study of low level vibrations as a power source for wireless sensor nodes. Comput Commun, 2003, 26(11): 1131-1144.
  • 2Priya S. Advances in energy harvesting using low profile piezoelectric transducers. J Electroceram, 2007, 19(1): 165-182.
  • 3Beeby S P, Wang L R, Zhu DB, et al. A comparison of power output from linear and nonlinear kinetic energy harvesters using real vibration data. Smart Mater Struct, 2013, 22: 0750227.
  • 4Kim Y, Shim J, Park K, et al. Structure vibration analysis and active noise control of a power transformer by mobility measurement. In: International Conferences, CA and CES3 2011. Jeju Island, Korea: Springer, 2011. 322-332.
  • 5Anton S R, Sodano H A. A review of power harvesting using piezoelectric materials (2003-2006). Smart Mater Struct, 2007, 16(3): RI-R21.
  • 6Tang L H, Yang Y W, Soh C K. Toward broadband vibration-based energy harvesting. J Intel Mat Syst Str, 2010, 21(18): 1867-1897.
  • 7Zhu D B, Tudor M J, Beeby S P. Strategies for increasing the operating frequency range of vibration energy harvesters: a review. Meas Sci Technol, 2010, 21: 022001.
  • 8Beeby S P, Tudor M J, White N M. Energy harvesting vibration sources for microsystems applications. Meas Sci Technol, 2006, 17(12): R175-RI95.
  • 9Friswell M I, Ali S F, Bilgen 0, et al. Non-linear piezoelectric vibration energy harvesting from a vertical cantilever beam with tip mass. J Intel Mat Syst Str, 2012, 23(13): 1505-1521.
  • 10Mak K H, McWilliam S, Popov A A, et al. Performance of a cantilever piezoelectric energy harvester impacting a bump stop. J Sound Vib, 2011, 330(25): 6184-6202.

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