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Bi1/2Na1/2TiO3-BiAlO3 무연 압전 세라믹스의 유전 및 전기 기계적 변형 특성에 대한 SrTiO3 첨가 효과

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Abstract
(Bi1/2Na1/2)TiO3 (BNT)-based ceramics are considered promising candidates for actuator application owing to their excellent electromechanical strain properties However, to obtain large strain properties, there remain several issues such as thermal stability and high operating fields. Therefore, this study investigates a reduction of operating field in (0.98-x)Bi1/2Na1/ 2TiO3-0.02 BiAlO3-xSrTiO3 (BNT-2BA-100xST, x = 0.20, 0.21, 0.22, 0.23, and 0.24) via analyses of the microstructure, crystal structure, dielectric, polarization, ferroelectric and electromechanical strain properties. The average grain size of BNT-2BA- 100xST ceramics decreases with increasing ST content. Results of polarization and electromechanical strain properties indicate that a ferroelectric to relaxor state transition is induced by ST modification. As a consequence, a large electromechanical strain of 592 pm/V is obtained at a relatively low electric field of 4 kV/mm in 22 mol% ST-modified BNT-2BA ceramics. We believe that the materials synthesized in this study are promising candidates for actuator applications.
Author(s)
이상섭이창헌즈엉 짱 안김동혁김병우한형수이재신
Issued Date
2021
Type
Article
Keyword
lead-freepiezoceramicsrelaxorferroelectric재료공학
DOI
10.3740/MRSK.2021.31.10.562
URI
https://oak.ulsan.ac.kr/handle/2021.oak/9001
https://ulsan-primo.hosted.exlibrisgroup.com/primo-explore/fulldisplay?docid=TN_cdi_nrf_kci_oai_kci_go_kr_ARTI_9877020&context=PC&vid=ULSAN&lang=ko_KR&search_scope=default_scope&adaptor=primo_central_multiple_fe&tab=default_tab&query=any,contains,Bi1%2F2Na1%2F2TiO3-BiAlO3%20%EB%AC%B4%EC%97%B0%20%EC%95%95%EC%A0%84%20%EC%84%B8%EB%9D%BC%EB%AF%B9%EC%8A%A4%EC%9D%98%20%EC%9C%A0%EC%A0%84%20%EB%B0%8F%20%EC%A0%84%EA%B8%B0%20%EA%B8%B0%EA%B3%84%EC%A0%81%20%EB%B3%80%ED%98%95%20%ED%8A%B9%EC%84%B1%EC%97%90%20%EB%8C%80%ED%95%9C%20SrTiO3%20%EC%B2%A8%EA%B0%80%20%ED%9A%A8%EA%B3%BC&offset=0&pcAvailability=true
Publisher
한국재료학회지
Location
대한민국
Language
한국어
ISSN
1225-0562
Citation Volume
31
Citation Number
10
Citation Start Page
562
Citation End Page
568
Appears in Collections:
Engineering > Material Engineering
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