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119.Linear Technology, see http://www.linear.com/product/LTC3588-1 for details of the LTC3588-1 energy harvesting circuit (last accessed October 1, 2014).
120.
120.Texas Instruments, see http://www.ti.com/product/bq25505 for details of the BQ25505 energy harvesting power management IC (last accessed October 1, 2014).
http://aip.metastore.ingenta.com/content/aip/journal/apr2/1/4/10.1063/1.4900845
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/content/aip/journal/apr2/1/4/10.1063/1.4900845
2014-11-06
2016-12-09

Abstract

In an effort to eliminate the replacement of the batteries of electronic devices that are difficult or impractical to service once deployed, harvesting energy from mechanical vibrations or impacts using piezoelectric materials has been researched over the last several decades. However, a majority of these applications have very low input frequencies. This presents a challenge for the researchers to optimize the energy output of piezoelectric energy harvesters, due to the relatively high elastic moduli of piezoelectric materials used to date. This paper reviews the current state of research on piezoelectric energy harvesting devices for low frequency (0–100 Hz) applications and the methods that have been developed to improve the power outputs of the piezoelectric energy harvesters. Various key aspects that contribute to the overall performance of a piezoelectric energy harvester are discussed, including geometries of the piezoelectric element, types of piezoelectric material used, techniques employed to match the resonance frequency of the piezoelectric element to input frequency of the host structure, and electronic circuits specifically designed for energy harvesters.

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