磁阻随机存取存储器
缩放比例
电压
物理
电气工程
凝聚态物理
磁电阻
自旋(空气动力学)
扭矩
磁场
隧道磁电阻
量子隧道
计算机科学
铁磁性
计算机硬件
随机存取存储器
工程类
量子力学
数学
热力学
几何学
作者
Pedram Khalili Amiri,Juan G. Alzate,Xue Qing Cai,Farbod Ebrahimi,Qi Hu,Kin Wong,Cécile Grèzes,Hochul Lee,Guoqiang Yu,Xiang Li,Mustafa Akyol,Qiming Shao,J. A. Katine,J. Langer,B. Ocker,Kang L. Wang
标识
DOI:10.1109/tmag.2015.2443124
摘要
We review the recent progress in the development of magnetoelectric RAM (MeRAM) based on electric-field-controlled writing in magnetic tunnel junctions (MTJs). MeRAM uses the tunneling magnetoresistance effect for readout in a two-terminal memory element, similar to other types of magnetic RAM. However, the writing of information is performed by voltage control of magnetic anisotropy (VCMA) at the interface of an MgO tunnel barrier and the CoFeB-based free layer, as opposed to current-controlled (e.g., spin-transfer torque or spin-orbit torque) mechanisms. We present results on voltage-induced switching of MTJs in both resonant (precessional) and thermally activated regimes, which demonstrate fast (<1 ns) and ultralow-power (<40 fJ/bit) write operations at voltages ∼1.5-2 V. We also discuss the implications of the VCMA-based write mechanism on memory array design, highlighting the possibility of crossbar implementation for high bit density. Results are presented from a 1 kbit MeRAM test array. Endurance and voltage scaling data are presented. The scaling behavior is analyzed, and material-level requirements are discussed for the translation of MeRAM into mainstream memory applications. © 2015 IEEE.
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