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用于磁电存储器的三明治金属-绝缘体-金属复合材料:实验与建模

A Sandwich Metal-Insulation-Metal Composite for Magnetoelectric Memory: Experiment and Modeling.

作者信息

Zhang Jia-Wei, Mahmood Usama, Fu Geng, Xu Fan, Li Tianhao, Liu Yifan

机构信息

School of Electrical Engineering, Xi'an University of Technology, Xi'an 710048, China.

Chengde State Grid Corporation of China, Chengde 067000, China.

出版信息

ACS Omega. 2021 Dec 8;6(50):35023-35029. doi: 10.1021/acsomega.1c05678. eCollection 2021 Dec 21.

Abstract

Driven by the development of internet technology, higher requirements on information materials and data storage devices were demanded. To improve the work efficiency and performance of the new generation of information materials and data storage devices, the magnetoelectric (ME) coupling and storage mechanism of magnetoelectric composites deserve more attention. Here, we explored the influence of applied magnetic fields on the output voltage on a metal-insulation-metal (MIM) sandwich composite for realizing the magnetoelectric memory by experiments and modeling. It is found that the DC magnetic field ( ) and the output voltage of the polyvinylidene fluoride film are linearly correlated. At a frequency of 1 kHz, the magnetoelectric voltage coefficient is 60.71 mV cm Oe, which is evidently larger than that of other film materials. From this work, we can conclude that the MIM sandwich composite could generate higher magnetoelectric voltage under the AC magnetic field ( ) with higher frequency, which could be used as the magnetoelectric memory device, and provides significant support for improving the performance of magnetoelectric memory devices and the whole internet system.

摘要

在互联网技术发展的推动下,对信息材料和数据存储设备提出了更高的要求。为了提高新一代信息材料和数据存储设备的工作效率和性能,磁电复合材料的磁电(ME)耦合和存储机制值得更多关注。在此,我们通过实验和建模探索了施加磁场对金属-绝缘-金属(MIM)三明治复合材料输出电压的影响,以实现磁电存储。研究发现,直流磁场( )与聚偏氟乙烯薄膜的输出电压呈线性相关。在1 kHz频率下,磁电电压系数为60.71 mV cm Oe,明显高于其他薄膜材料。从这项工作中,我们可以得出结论,MIM三明治复合材料在高频交流磁场( )下可以产生更高的磁电电压,可作为磁电存储设备,为提高磁电存储设备的性能和整个互联网系统提供了重要支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/de3d/8697597/ca733ee140aa/ao1c05678_0002.jpg

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