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一种基于铁电聚合物的光学/铁电复用多维非易失性存储器。

An Optical/Ferroelectric Multiplexing Multidimensional Nonvolatile Memory from Ferroelectric Polymer.

作者信息

He Shan, Guo Mengfan, Wang Yue, Liang Yuhan, Shen Yang

机构信息

School of Materials Science and Engineering, State Key Lab of New Ceramics and Fine Processing, Tsinghua University, Beijing, 100084, China.

出版信息

Adv Mater. 2022 Jun;34(24):e2202181. doi: 10.1002/adma.202202181. Epub 2022 May 12.

Abstract

Multiplexing physical dimensions to realize multidimensional storage in a single material has been a goal to increase storage density and data security. Multidimensional storage is only achieved in optical storage material (OSM) by far. Poly(vinylidene fluoride) (PVDF), a semicrystalline polymer, is widely studied as a candidate for ferroelectric random access (FeRAM). Herein, the atomic force microscopy (AFM)-based infrared spectroscopy techniqueis used to induce multilevel phase transformations in PVDF ultrathin film on nanometric scales and for writing/readout of IR signals. An optical/ferroelectric multiplexing PVDF memory, where information can be coded with independent four-level optical IR and bilevel ferroelectric signals, is demonstrated. High data security and a storage density up to 180 GBit in. are achieved simultaneously. Owing to the different critical temperature for phase transformation (optical data, <167 °C) and polarization switching (ferroelectric data, <100 °C), the multiplexing memory can function both as optical read-only memory and FeRAM. This work expands material supporting physical dimensions multiplexing beyond OSM for the first time, opening up new opportunities for future high-capacity, multifunctional nano-memory. The strategy proposed here enables on-demand and tunable programming on IR waves, offering prospects for fabrication of active nano-optical devices.

摘要

复用物理维度以在单一材料中实现多维存储一直是提高存储密度和数据安全性的目标。到目前为止,多维存储仅在光存储材料(OSM)中得以实现。聚偏二氟乙烯(PVDF)是一种半结晶聚合物,作为铁电随机存取存储器(FeRAM)的候选材料受到广泛研究。在此,基于原子力显微镜(AFM)的红外光谱技术被用于在纳米尺度上诱导PVDF超薄膜中的多级相变,并用于红外信号的写入/读出。展示了一种光/铁电复用的PVDF存储器,其中信息可以用独立的四级光学红外信号和二级铁电信号进行编码。同时实现了高数据安全性和高达180 GBit/in²的存储密度。由于相变(光学数据,<167°C)和极化切换(铁电数据,<100°C)的临界温度不同,该复用存储器既可以用作光学只读存储器,也可以用作铁电随机存取存储器。这项工作首次将支持物理维度复用的材料扩展到光存储材料之外,为未来的高容量、多功能纳米存储器开辟了新机遇。这里提出的策略能够对红外波进行按需和可调编程,为有源纳米光学器件的制造提供了前景。

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