Atomically engineered, high-speed non-volatile flash memory device exhibiting multibit data storage operations

材料科学 半导体存储器 非易失性存储器 计算机数据存储 纳米技术 非易失性随机存取存储器 闪存 光电子学 数码产品 存储单元 计算机科学 计算机硬件 晶体管 计算机存储器 电气工程 内存刷新 电压 工程类
作者
Ghulam Dastgeer,Sobia Nisar,Aamir Rasheed,Kamran Akbar,Vijay D. Chavan,Deok‐kee Kim,Saikh Mohammad Wabaidur,Muhammad Zulfiqar,Jonghwa Eom
出处
期刊:Nano Energy [Elsevier BV]
卷期号:119: 109106-109106 被引量:31
标识
DOI:10.1016/j.nanoen.2023.109106
摘要

Non-volatile memory devices, which offer large capacity and mechanical dependability as a mainstream technology, have played a key role in fostering innovation in modern electronics. Despite the advantages of non-volatile memory devices, their low ON/OFF ratio and slow operational speed have limited their performance compared to their volatile counterparts. In this study, we present a non-volatile floating-gate memory device based on van der Waals heterostructures, which exhibits ultrahigh-speed memory operations in the range of a hundred nanoseconds with an extinction ratio of up to 106. The device consists of atomically sharp interfaces between different functional elements, including atomically thin sheet of multilayer Graphene (MGr) as a floating gate, hexagonal boron nitride (h-BN) as a tunnel barrier, and two-dimensional (2D) semiconductor tin di-selenide (SnSe2) as a channel material. The memory device exhibits excellent endurance performance with stable and dependable behavior across numerous program/erase cycles, comparable to commercial volatile dynamic random access memory technology. In addition, we demonstrate the ability of the device to store multiple bits per memory cell, which offers promising potential for ultrahigh-density information storage. Our findings provide important implications for memory storage, data processing, and electronic device development, and offer new opportunities in the field of emerging 2D materials with optimal device engineering.
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