Evolution of semiconductor random access memories

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Evolution of semiconductor random access memories

Author : Philippe DARCHE

Publication date: June 10, 2020, Review date: January 5, 2021 | Lire en français

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Overview

ABSTRACT

This article traces the technical developments that have led to current data memory stores. After a brief presentation of the different subsets of this component, including the storage array, the control logic and the input-output interface, we detail how each of them has developed. The picture of what might be called the "perfect memory" is then sketched from current research and industry trends. In particular, four emerging electronic components now available, namely phase change, resistive, ferroelectric and magnetoresistive memories (PCRAMs, ReRAM, FRAMs, and MRAMs), are presented.

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AUTHOR

  • Philippe DARCHE : Senior lecturer at the Paris Institut Universitaire de Technologie (IUT) - (University of Paris), - Researcher at LIP6 in the Inria DeLyS team at Sorbonne University, Paris, France

 INTRODUCTION

Since Intel's first static and dynamic random access memories appeared in 1969 and 1971 respectively, these components have continued to evolve in terms of storage capacity and performance, mainly latency and throughput. Dynamic memory capacity has thus increased from 1 Kib (Intel reference 1103 – 1971) to 32 Gib (DDR4 SDRAM – 2019), and its cycle time started at 580 ns to reach around 32.5 ns (DDR4-3200-20-32 line enabled model) for random reading (same references as above).

The aim of this article is to retrace the technical evolution of solid-state memory. The various sub-assemblies of this component - the memory matrix, the peripheral control logic and the interface - are first presented, followed by details of their development. Since the mid-1990s, advances in integration have made it possible to integrate a computer system on a single chip. We describe the advantages of embedded memory. Finally, we sketch out what the "ideal memory" would be, based on current research. It could have the same storage capacity as "conventional" memories, no volatility of information, a throughput compatible with current processor architectures, and greater energy efficiency. In particular, we present three current industrial solutions: phase-change, ferroelectric and magnetoresistive memories, represented respectively by PCRAM, ReRAM, FRAM and MRAM.

At the end of the article, readers will find a glossary and a table of acronyms and notations.

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KEYWORDS

information technology   |   solid-state random access memory   |   RAM   |   ROM   |   emerging memory

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Evolution of semiconductor random access memories

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