Department of Physics, University of California, Berkeley, California 94720, USA.
Nat Nanotechnol. 2011 Feb;6(2):98-102. doi: 10.1038/nnano.2010.265. Epub 2011 Jan 16.
Piezoelectric materials exhibit a mechanical response to electrical inputs, as well as an electrical response to mechanical inputs, which makes them useful in sensors and actuators. Lead-based piezoelectrics demonstrate a large mechanical response, but they also pose a health risk. The ferroelectric BiFeO(3) is an attractive alternative because it is lead-free, and because strain can stabilize BiFeO(3) phases with a structure that resembles a morphotropic phase boundary. Here we report a reversible electric-field-induced strain of over 5% in BiFeO(3) films, together with a characterization of the origins of this effect. In situ transmission electron microscopy coupled with nanoscale electrical and mechanical probing shows that large strains result from moving the boundaries between tetragonal- and rhombohedral-like phases, which changes the phase stability of the mixture. These results demonstrate the potential of BiFeO(3) as a substitute for lead-based materials in future piezoelectric applications.
压电材料在受到电输入时会产生机械响应,在受到机械输入时也会产生电响应,这使得它们在传感器和执行器中很有用。基于铅的压电材料表现出很大的机械响应,但它们也存在健康风险。铁电 BiFeO(3) 是一种很有吸引力的替代品,因为它不含铅,而且应变可以稳定具有类似准同型相界结构的 BiFeO(3) 相。在这里,我们报告了 BiFeO(3) 薄膜中超过 5%的可逆电场诱导应变,以及对这种效应起源的表征。原位透射电子显微镜结合纳米尺度的电学和力学探测表明,大应变是由四方相与类似菱面体相之间的边界移动引起的,这改变了混合物的相稳定性。这些结果表明,BiFeO(3) 有潜力在未来的压电应用中替代基于铅的材料。