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电阻式随机存取存储器的关键应用概述。

An overview of critical applications of resistive random access memory.

作者信息

Zahoor Furqan, Nisar Arshid, Bature Usman Isyaku, Abbas Haider, Bashir Faisal, Chattopadhyay Anupam, Kaushik Brajesh Kumar, Alzahrani Ali, Hussin Fawnizu Azmadi

机构信息

Department of Computer Engineering, College of Computer Sciences and Information Technology, King Faisal University Saudi Arabia

Department of Electronics and Communication Engineering, Indian Institute of Technology Roorkee India.

出版信息

Nanoscale Adv. 2024 Sep 9;6(20):4980-5006. doi: 10.1039/d4na00158c.

Abstract

The rapid advancement of new technologies has resulted in a surge of data, while conventional computers are nearing their computational limits. The prevalent von Neumann architecture, where processing and storage units operate independently, faces challenges such as data migration through buses, leading to decreased computing speed and increased energy loss. Ongoing research aims to enhance computing capabilities through the development of innovative chips and the adoption of new system architectures. One noteworthy advancement is Resistive Random Access Memory (RRAM), an emerging memory technology. RRAM can alter its resistance through electrical signals at both ends, retaining its state even after power-down. This technology holds promise in various areas, including logic computing, neural networks, brain-like computing, and integrated technologies combining sensing, storage, and computing. These cutting-edge technologies offer the potential to overcome the performance limitations of traditional architectures, significantly boosting computing power. This discussion explores the physical mechanisms, device structure, performance characteristics, and applications of RRAM devices. Additionally, we delve into the potential future adoption of these technologies at an industrial scale, along with prospects and upcoming research directions.

摘要

新技术的迅速发展导致了数据的激增,而传统计算机正接近其计算极限。普遍使用的冯·诺依曼架构中,处理单元和存储单元独立运行,面临着诸如通过总线进行数据迁移等挑战,这导致计算速度下降和能量损耗增加。正在进行的研究旨在通过开发创新芯片和采用新的系统架构来提高计算能力。一项值得注意的进展是电阻式随机存取存储器(RRAM),一种新兴的存储技术。RRAM可以通过两端的电信号改变其电阻,即使在断电后也能保持其状态。这项技术在逻辑计算、神经网络、类脑计算以及结合传感、存储和计算的集成技术等各个领域都有前景。这些前沿技术有可能克服传统架构的性能限制,显著提高计算能力。本讨论探讨了RRAM器件的物理机制、器件结构、性能特征和应用。此外,我们深入研究了这些技术未来在工业规模上的潜在应用,以及前景和即将到来的研究方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a466/11460603/38323e1b4d89/d4na00158c-f1.jpg

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