纳米柱
压电
材料科学
钙钛矿(结构)
纳米尺度
压电系数
氧化物
薄膜
居里温度
复合材料
纳米技术
纳米结构
凝聚态物理
结晶学
化学
铁磁性
冶金
物理
作者
Huajun Liu,Haijun Wu,Khuong P. Ong,Tiannan Yang,Ping Yang,Pranab K. Das,Xiao Chi,Yang Zhang,Caozheng Diao,Wai Kong Alaric Wong,Eh Piew Chew,Yi Fan Chen,Chee Kiang Ivan Tan,Andrivo Rusydi,Mark B. H. Breese,David J. Singh,Long‐Qing Chen,Stephen J. Pennycook,Kui Yao
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2020-07-17
卷期号:369 (6501): 292-297
被引量:183
标识
DOI:10.1126/science.abb3209
摘要
High-performance piezoelectric materials are critical components for electromechanical sensors and actuators. For more than 60 years, the main strategy for obtaining large piezoelectric response has been to construct multiphase boundaries, where nanoscale domains with local structural and polar heterogeneity are formed, by tuning complex chemical compositions. We used a different strategy to emulate such local heterogeneity by forming nanopillar regions in perovskite oxide thin films. We obtained a giant effective piezoelectric coefficient [Formula: see text] of ~1098 picometers per volt with a high Curie temperature of ~450°C. Our lead-free composition of sodium-deficient sodium niobate contains only three elements (Na, Nb, and O). The formation of local heterogeneity with nanopillars in the perovskite structure could be the basis for a general approach to designing and optimizing various functional materials.
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