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外加电压控制的铁铜伪有序多孔薄膜中的矫顽力调制:一种用于磁电驱动材料的可持续、节能方法。

Coercivity Modulation in Fe-Cu Pseudo-Ordered Porous Thin Films Controlled by an Applied Voltage: A Sustainable, Energy-Efficient Approach to Magnetoelectrically Driven Materials.

作者信息

Dislaki Evangelia, Robbennolt Shauna, Campoy-Quiles Mariano, Nogués Josep, Pellicer Eva, Sort Jordi

机构信息

Departament de Física Universitat Autònoma de Barcelona (UAB) E-08193 Bellaterra Spain.

Institut de Ciència de Materials de Barcelona (ICMAB-CSIC) Campus UAB E-08193 Bellaterra Spain.

出版信息

Adv Sci (Weinh). 2018 Jun 20;5(8):1800499. doi: 10.1002/advs.201800499. eCollection 2018 Aug.

Abstract

Fe-Cu films with pseudo-ordered, hierarchical porosity are prepared by a simple, two-step procedure that combines colloidal templating (using sub-micrometer-sized polystyrene spheres) with electrodeposition. The porosity degree of these films, estimated by ellipsometry measurements, is as high as 65%. The resulting magnetic properties can be controlled at room temperature using an applied electric field generated through an electric double layer in an anhydrous electrolyte. This material shows a remarkable 25% voltage-driven coercivity reduction upon application of negative voltages, with excellent reversibility when a positive voltage is applied, and a short recovery time. The pronounced reduction of coercivity is mainly ascribed to electrostatic charge accumulation at the surface of the porous alloy, which occurs over a large fraction of the electrodeposited material due to its high surface-area-to-volume ratio. The emergence of a hierarchical porosity is found to be crucial because it promotes the infiltration of the electrolyte into the structure of the film. The observed effects make this material a promising candidate to boost energy efficiency in magnetoelectrically actuated devices.

摘要

通过一种简单的两步法制备出具有准有序、分级孔隙率的铁铜薄膜,该方法将胶体模板法(使用亚微米级聚苯乙烯球体)与电沉积相结合。通过椭偏测量法估算,这些薄膜的孔隙率高达65%。在室温下,利用无水电解质中双电层产生的外加电场可以控制所得的磁性。施加负电压时,这种材料的矫顽力显著降低25%,施加正电压时具有出色的可逆性,且恢复时间短。矫顽力的显著降低主要归因于多孔合金表面的静电荷积累,由于其高的表面积与体积比,这种积累发生在大部分电沉积材料上。发现分级孔隙率的出现至关重要,因为它促进了电解质渗入薄膜结构。观察到的这些效应使这种材料成为提高磁电驱动装置能量效率的有前途的候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6c7/6096991/b99e175e685d/ADVS-5-1800499-g001.jpg

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