Improving 3D NAND Flash Memory Lifetime by Tolerating Early Retention Loss and Process Variation
Yixin Luo, Saugata Ghose, Yu Cai, Erich F. Haratsch, Onur Mutlu

TL;DR
This paper characterizes new error mechanisms in 3D NAND flash memory, develops models for these errors, and proposes techniques that significantly enhance memory lifetime and reduce error correction overhead.
Contribution
It introduces new error sources specific to 3D NAND, develops analytical models, and proposes mitigation techniques that improve reliability and efficiency.
Findings
Identifies layer-to-layer process variation, early retention loss, and retention interference as new error sources.
Develops models for process variation and retention loss in 3D NAND.
Proposes techniques that improve lifetime by 1.85x and reduce error correction overhead by 78.9%.
Abstract
Compared to planar (i.e., two-dimensional) NAND flash memory, 3D NAND flash memory uses a new flash cell design, and vertically stacks dozens of silicon layers in a single chip. This allows 3D NAND flash memory to increase storage density using a much less aggressive manufacturing process technology than planar NAND flash memory. The circuit-level and structural changes in 3D NAND flash memory significantly alter how different error sources affect the reliability of the memory. In this paper, through experimental characterization of real, state-of-the-art 3D NAND flash memory chips, we find that 3D NAND flash memory exhibits three new error sources that were not previously observed in planar NAND flash memory: (1) layer-to-layer process variation, where the average error rate of each 3D-stacked layer in a chip is significantly different; (2) early retention loss, a new phenomenon…
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Taxonomy
TopicsAdvanced Data Storage Technologies · Caching and Content Delivery · Cellular Automata and Applications
