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Improved Multilayered (Bi,Sc)O(3)-(Pb,Ti)O(3) Piezoelectric Energy Harvesters Based on Impedance Matching Technique

As a piezoelectric material, (Bi,Sc)O(3)-(Pb,Ti)O(3) ceramics have been tested and analyzed for sensors and energy harvester applications owing to their relatively high Curie temperature and high piezoelectric coefficient. In this work, we prepared optimized (Bi,Sc)O(3)-(Pb,Ti)O(3) piezoelectric mat...

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Autores principales: Kim, Bo Su, Ji, Jae-Hoon, Kim, Hong-Tae, Kim, Sung-Jin, Koh, Jung-Hyuk
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7180787/
https://www.ncbi.nlm.nih.gov/pubmed/32244381
http://dx.doi.org/10.3390/s20071958
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author Kim, Bo Su
Ji, Jae-Hoon
Kim, Hong-Tae
Kim, Sung-Jin
Koh, Jung-Hyuk
author_facet Kim, Bo Su
Ji, Jae-Hoon
Kim, Hong-Tae
Kim, Sung-Jin
Koh, Jung-Hyuk
author_sort Kim, Bo Su
collection PubMed
description As a piezoelectric material, (Bi,Sc)O(3)-(Pb,Ti)O(3) ceramics have been tested and analyzed for sensors and energy harvester applications owing to their relatively high Curie temperature and high piezoelectric coefficient. In this work, we prepared optimized (Bi,Sc)O(3)-(Pb,Ti)O(3) piezoelectric materials through the conventional ceramic process. To increase the output energy, a multilayered structure was proposed and designed, and to obtain the maximum output energy, impedance matching techniques were considered and tested. By varying and measuring the energy harvesting system, we confirmed that the output energies were optimized by varying the load resistance. As the load resistance increased, the output voltage became saturated. Then, we calculated the optimized output power using the electric energy formula. Consequently, we identified the highest output energy of 5.93 µW/cm(2) at 3 MΩ for the quadruple-layer harvester and load resistor using the impedance matching system. We characterized and improved the electrical properties of the piezoelectric energy harvesters by introducing impedance matching and performing the modeling of the energy harvesting component. Modeling was conducted for the piezoelectric generator component by introducing the mechanical force dependent voltage sources and load resistors and piezoelectric capacitor connected in parallel. Moreover, the generated output voltages were simulated by introducing an impedance matching technique. This work is designed to explain the modeling of piezoelectric energy harvesters. In this model, the relationship between applied mechanical force and output energy was discussed by employing experimental results and simulation.
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spelling pubmed-71807872020-05-01 Improved Multilayered (Bi,Sc)O(3)-(Pb,Ti)O(3) Piezoelectric Energy Harvesters Based on Impedance Matching Technique Kim, Bo Su Ji, Jae-Hoon Kim, Hong-Tae Kim, Sung-Jin Koh, Jung-Hyuk Sensors (Basel) Article As a piezoelectric material, (Bi,Sc)O(3)-(Pb,Ti)O(3) ceramics have been tested and analyzed for sensors and energy harvester applications owing to their relatively high Curie temperature and high piezoelectric coefficient. In this work, we prepared optimized (Bi,Sc)O(3)-(Pb,Ti)O(3) piezoelectric materials through the conventional ceramic process. To increase the output energy, a multilayered structure was proposed and designed, and to obtain the maximum output energy, impedance matching techniques were considered and tested. By varying and measuring the energy harvesting system, we confirmed that the output energies were optimized by varying the load resistance. As the load resistance increased, the output voltage became saturated. Then, we calculated the optimized output power using the electric energy formula. Consequently, we identified the highest output energy of 5.93 µW/cm(2) at 3 MΩ for the quadruple-layer harvester and load resistor using the impedance matching system. We characterized and improved the electrical properties of the piezoelectric energy harvesters by introducing impedance matching and performing the modeling of the energy harvesting component. Modeling was conducted for the piezoelectric generator component by introducing the mechanical force dependent voltage sources and load resistors and piezoelectric capacitor connected in parallel. Moreover, the generated output voltages were simulated by introducing an impedance matching technique. This work is designed to explain the modeling of piezoelectric energy harvesters. In this model, the relationship between applied mechanical force and output energy was discussed by employing experimental results and simulation. MDPI 2020-03-31 /pmc/articles/PMC7180787/ /pubmed/32244381 http://dx.doi.org/10.3390/s20071958 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kim, Bo Su
Ji, Jae-Hoon
Kim, Hong-Tae
Kim, Sung-Jin
Koh, Jung-Hyuk
Improved Multilayered (Bi,Sc)O(3)-(Pb,Ti)O(3) Piezoelectric Energy Harvesters Based on Impedance Matching Technique
title Improved Multilayered (Bi,Sc)O(3)-(Pb,Ti)O(3) Piezoelectric Energy Harvesters Based on Impedance Matching Technique
title_full Improved Multilayered (Bi,Sc)O(3)-(Pb,Ti)O(3) Piezoelectric Energy Harvesters Based on Impedance Matching Technique
title_fullStr Improved Multilayered (Bi,Sc)O(3)-(Pb,Ti)O(3) Piezoelectric Energy Harvesters Based on Impedance Matching Technique
title_full_unstemmed Improved Multilayered (Bi,Sc)O(3)-(Pb,Ti)O(3) Piezoelectric Energy Harvesters Based on Impedance Matching Technique
title_short Improved Multilayered (Bi,Sc)O(3)-(Pb,Ti)O(3) Piezoelectric Energy Harvesters Based on Impedance Matching Technique
title_sort improved multilayered (bi,sc)o(3)-(pb,ti)o(3) piezoelectric energy harvesters based on impedance matching technique
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7180787/
https://www.ncbi.nlm.nih.gov/pubmed/32244381
http://dx.doi.org/10.3390/s20071958
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