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具有瞬态光响应的透明非晶钛酸锶电阻式存储器。

Transparent amorphous strontium titanate resistive memories with transient photo-response.

机构信息

Functional Materials and Microsystems Research Group and Micro Nano Research Facility, RMIT University, Melbourne, Australia.

出版信息

Nanoscale. 2017 Oct 5;9(38):14690-14702. doi: 10.1039/c7nr04372d.

Abstract

Transparent non-volatile memory devices are desirable for realizing visually-clear integrated systems for information storage. Optical transparency provides advantages in applications such as smart glass electronic devices and wearable electronics. However, achieving high transparency limits the choice of active layers as well as the electrodes; thereby, constraining device processing and performance. Here, we demonstrate bilayer transparent memory cells using room temperature deposited amorphous strontium titanate as the functional material and indium tin oxide electrodes. The entire device is fabricated on glass, making the system highly transparent (>85%) in the visible spectrum. The devices exhibit switching ratios of over two orders of magnitude with measured retention of 10 s and endurance 10 cycles. Through the cross-sectional microstructural analyses it is shown that the asymmetric interfaces and distribution of oxygen vacancies in the bilayer oxide stack are responsible for defining the bipolar resistive switching behaviors. A photoluminescence mapping technique is employed to map the evolution of oxygen vacancies and pinpoint the location of the conductive filament. A transient response to optical excitation (using UV and blue light) is demonstrated in the high resistance state which indicates their potential as multifunctional memories for future transparent electronics.

摘要

透明非易失性存储器对于实现用于信息存储的可视清晰集成系统是理想的。光学透明度在智能玻璃电子设备和可穿戴电子设备等应用中具有优势。然而,实现高透明度限制了活性层以及电极的选择;从而限制了器件的处理和性能。在这里,我们使用在室温下沉积的非晶氧化锶钛作为功能材料和氧化铟锡电极展示了双层透明存储单元。整个器件都在玻璃上制造,使得该系统在可见光范围内具有超过 85%的高透明度。所制备的器件具有超过两个数量级的开关比,测量得到的保持时间为 10 s,循环寿命为 10 次。通过横截面微观结构分析表明,双层氧化物堆叠中的不对称界面和氧空位分布负责定义双极电阻开关行为。采用光致发光映射技术来映射氧空位的演变,并确定导电丝的位置。在高电阻状态下展示了对光激发(使用紫外光和蓝光)的瞬态响应,这表明它们有潜力作为未来透明电子产品的多功能存储器。

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