Glavan Gašper, Belyaeva Inna A, Ruwisch Kevin, Wollschläger Joachim, Shamonin Mikhail
East Bavarian Centre for Intelligent Materials (EBACIM), Ostbayerische Technische Hochschule (OTH) Regensburg, Seybothstr. 2, D-93053 Regensburg, Germany.
Fachbereich Physik der Universität Osnabrück, Barbarastr. 7, D-49076 Osnabrück, Germany.
Sensors (Basel). 2021 Sep 24;21(19):6390. doi: 10.3390/s21196390.
The voltage response to pulsed uniform magnetic fields and the accompanying bending deformations of laminated cantilever structures are investigated experimentally in detail. The structures comprise a magnetoactive elastomer (MAE) slab and a commercially available piezoelectric polymer multilayer. The magnetic field is applied vertically and the laminated structures are customarily fixed in the horizontal plane or, alternatively, slightly tilted upwards or downwards. Six different MAE compositions incorporating three concentrations of carbonyl iron particles (70 wt%, 75 wt% and 80 wt%) and two elastomer matrices of different stiffness are used. The dependences of the generated voltage and the cantilever's deflection on the composition of the MAE layer and its thickness are obtained. The appearance of the voltage between the electrodes of a piezoelectric material upon application of a magnetic field is considered as a manifestation of the direct magnetoelectric (ME) effect in a composite laminated structure. The ME voltage response increases with the increasing total quantity of the soft-magnetic filler in the MAE layer. The relationship between the generated voltage and the cantilever's deflection is established. The highest observed peak voltage around 5.5 V is about 8.5-fold higher than previously reported values. The quasi-static ME voltage coefficient for this type of ME heterostructures is about 50 V/A in the magnetic field of ≈100 kA/m, obtained for the first time. The results could be useful for the development of magnetic field sensors and energy harvesting devices relying on these novel polymer composites.
对层压悬臂结构在脉冲均匀磁场作用下的电压响应及其伴随的弯曲变形进行了详细的实验研究。这些结构由磁活性弹性体(MAE)板和市售的压电聚合物多层组成。磁场垂直施加,层压结构通常固定在水平面内或者可选择地稍微向上或向下倾斜。使用了六种不同的MAE组合物,其中包含三种浓度的羰基铁颗粒(70 wt%,75 wt%和80 wt%)以及两种不同刚度的弹性体基体。得到了所产生的电压和悬臂梁挠度对MAE层组成及其厚度的依赖性。在施加磁场时压电材料电极之间出现的电压被认为是复合层压结构中直接磁电(ME)效应的一种表现。ME电压响应随着MAE层中软磁填料总量的增加而增加。建立了所产生的电压与悬臂梁挠度之间的关系。观察到的最高峰值电压约为5.5 V,比先前报道的值高约8.5倍。首次获得了这种类型的ME异质结构在≈100 kA/m磁场中的准静态ME电压系数约为50 V/A。这些结果对于依赖于这些新型聚合物复合材料的磁场传感器和能量收集装置的开发可能是有用的。