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Reliability aspects of novel anti-ferroelectric non-volatile memories compared to hafnia based ferroelectric memories

机译:与基于anti的铁电存储器相比,新型反铁电非易失性存储器的可靠性方面

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The discovery of the ferroelectric (FE) properties within HfO2 bridged the scaling gap between state-of-the-art technology nodes and ferroelectric memories. However, beside non-volatility, new memory concepts should ensure sufficient endurance and operation stability. Recently, it was shown that anti-ferroelectric (AFE) materials exhibit very stable and much higher endurance with respect to the FE counterparts. The latter show changes in the memory window (MW) followed by either hard breakdown or closure of MW much earlier than desired. Motivated by the remarkable cycling performance of the AFE, we analyze the physical mechanisms behind this high endurance strength. By characterizing the pure film properties in capacitor stacks and switching performance when integrated into devices, we compare the underlying mechanism and investigate the root cause for degradation of both FE and AFE memories. Combining the charge trapping and charge pumping tests as well as the leakage current spectroscopy with comprehensive modeling, we check the hypothesis that the lower energetic barrier to be overcome together with partial switching is responsible for the higher endurance and phase stability of the AFE with respect to the FE based memories.
机译:HfO 2 中铁电(FE)特性的发现弥合了最新技术节点与铁电存储器之间的缩放差距。但是,除了非易失性,新的内存概念还应确保足够的耐久性和操作稳定性。近来,已显示出反铁电(AFE)材料相对于FE对应物表现出非常稳定且具有更高的耐久性。后者显示了内存窗口(MW)的变化,随后比预期的要早得多的硬击穿或MW的关闭。由于AFE出色的循环性能,我们分析了这种高耐力强度背后的物理机制。通过表征电容器堆栈中的纯膜特性和集成到器件中时的开关性能,我们比较了其基本机理并研究了FE和AFE存储器性能下降的根本原因。将电荷俘获和电荷泵浦测试以及泄漏电流光谱学与综合建模相结合,我们检验了以下假设:要克服的较低的高能垒以及部分转换是AFE相对于AFE的较高耐久性和相位稳定性的原因基于FE的记忆。

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