2013Unpublished venueRequires access

Reliable MLC data storage and retention in phase-change memory after endurance cycling

Haralampos Pozidis, Nikolaos Papandreou, Abu Sebastian, Thomas Mittelholzer, Matthew J. BrightSky, C. Lam, Evangelos S. Eleftheriou

Open publisher page 15 citations

Abstract

For phase-change memory to be considered a true universal memory it would have to combine MLC storage, for low cost per bit, with adequately high endurance and at least moderate data retention. However, this appears to be particularly difficult to achieve, because of phenomena such as material segregation, which comes as an effect of cycling, and resistance drift, which is inherent in the amorphous phase and affects the stability of stored data. We present a combination of a memory cell with stable programming behavior over cycling, electrical sensing techniques and signal processing technologies, to demonstrate the viability of reliable, non-volatile, MLC storage in phase-change memory cells after extended endurance cycling.

About this research paper

What this paper is about

For phase-change memory to be considered a true universal memory it would have to combine MLC storage, for low cost per bit, with adequately high endurance and at least moderate data retention. However, this appears to be particularly difficult to achieve, because of phenomena such as material segregation, which comes as an effect of cycling, and resistance drift, which is inherent in the amorphous phase and affects the stability of stored data. We present a combination of a memory cell with stable programming behavior over cycling, electrical sensing techniques and signal processing technologies, to demonstrate the viability of reliable, non-volatile, MLC storage in phase-change memory cells after extended endurance cycling.

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OpenAlex reports 15 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

For phase-change memory to be considered a true universal memory it would have to combine MLC storage, for low cost per bit, with adequately high endurance and at least moderate data retention. However, this appears to be particularly difficult to achieve, because of phenomena such as material segregation, which comes as an effect of cycling, and resistance drift, which is inherent in the amorphous phase and affects the stability of stored data. We present a combination of a memory cell with stable programming behavior over cycling, electrical sensing techniques and signal processing technologies, to demonstrate the viability of reliable, non-volatile, MLC storage in phase-change memory cells after extended endurance cycling.

Key concepts: Data retention, Phase-change memory, Cycling, Computer science, Non-volatile memory, Temperature cycling, Computer data storage, SIGNAL (programming language)

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