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Characterization of the cell leakage of a stacked trench capacitor (STT) cell

机译:堆叠式沟槽电容器(STT)电池的电池泄漏特性

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The cell leakage of a stacked trench capacitor (STT) cell has been investigated. The major leakage mechanisms of the STT are trench-to-trench leakage, trench junction leakage, and LOCOS isolation leakage. It is shown that compared to a conventional trench capacitor, the trench-to-trench leakage current is reduced and high punchthrough voltage is obtained. Therefore, the trench-to-trench spacing can be reduced 0.1 /spl mu/m shorter than that of the trench capacitor. These reductions result from the STT structure itself. The surface leakage current, which is the dominant leakage current in the trench capacitor, does not flow in the STT. This paper also describes the effect of the sidewall damage caused by trench etching on the trench junction leakage. Reactive ion etching (RIE) produces deep levels just beneath the trench surface. But, the trench junction of the STT is not influenced by these deep levels because the trench surface is covered by a n/sup -/diffused layer. This paper also investigates the relationship between the cell leakage and the retention time. At DRAM operation temperatures, LOCOS isolation leakage is dominant rather than trench junction leakage. Therefore, the deeper trench can increase the storage capacitance and improve the retention time.
机译:已经研究了堆叠式沟槽电容器(STT)电池的电池泄漏。 STT的主要泄漏机制是沟槽间泄漏,沟槽结泄漏和LOCOS隔离泄漏。结果表明,与传统的沟槽电容器相比,沟槽间的漏电流减小了,并且获得了较高的穿通电压。因此,沟槽间的间隔可以比沟槽电容器的间隔短0.1 /splμm/ m。这些减少归因于STT结构本身。表面漏电流是沟槽电容器中的主要漏电流,它不在STT中流动。本文还描述了由沟槽刻蚀引起的侧壁损伤对沟槽结泄漏的影响。反应离子蚀刻(RIE)在沟槽表面的下方产生深能级。但是,STT的沟槽结不受这些深层的影响,因为沟槽表面被n / sup //扩散层覆盖。本文还研究了细胞泄漏与保留时间之间的关系。在DRAM工作温度下,LOCOS隔离泄漏占主导地位,而不是沟槽结泄漏。因此,更深的沟槽可以增加存储电容并改善保留时间。

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