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透明、柔韧、无疲劳、光学可读、非易失性铁电存储器。

Transparent, Flexible, Fatigue-Free, Optical-Read, and Nonvolatile Ferroelectric Memories.

机构信息

School of Materials Science and Engineering , Nanjing University of Science and Technology , Nanjing 210094 , China.

School of Materials Science and Engineering , Nanyang Technological University , 639798 Singapore.

出版信息

ACS Appl Mater Interfaces. 2019 Sep 25;11(38):35169-35176. doi: 10.1021/acsami.9b14095. Epub 2019 Sep 13.

Abstract

Perovskite oxide films are widely used in various commercial industries. However, they are usually prepared at high temperature and in oxygen ambience, detrimental to most transparent and flexible substrates and bottom conductive electrodes such as indium tin oxide (ITO). It remains challenging to integrate perovskite oxides into transparent and flexible electronics. Here, the 1.2 wt % Ag-doped ITO (Ag-ITO) grown on a mica substrate is employed as the bottom electrode, which can withstand high temperature and repeated bending, and then we achieve the transparent, flexible, fatigue-free, and optical-read ferroelectric nonvolatile memories based on the mica/Ag-ITO/BiLaTiO/ITO structures. The as-prepared memories show ∼80% transmittance for visible lights and fatigue-free performance after more than 10 writing/erasing cycles. These performances are stable after repeated bending down to 3 mm in a curvature radius. More importantly, the "1/0" state of the memory can be read out by the photovoltaic current rather than destructive polarization switching, an emergent functionality for many applications. This work substantially promotes the applications of perovskite oxide films in transparent and flexible electronics, including wearable devices.

摘要

钙钛矿氧化物薄膜广泛应用于各种商业领域。然而,它们通常需要在高温和氧气环境中制备,这对大多数透明和柔性衬底以及底部导电电极(如铟锡氧化物(ITO))不利。将钙钛矿氧化物集成到透明和柔性电子产品中仍然具有挑战性。在这里,我们使用生长在云母衬底上的 1.2wt%Ag 掺杂 ITO(Ag-ITO)作为底部电极,它可以承受高温和反复弯曲,然后我们实现了基于云母/Ag-ITO/BiLaTiO/ITO 结构的透明、柔性、无疲劳和光学可读铁电非易失性存储器。所制备的存储器对可见光的透过率约为 80%,在超过 10 次写入/擦除循环后无疲劳性能。这些性能在曲率半径为 3mm 时反复弯曲仍保持稳定。更重要的是,存储器的“1/0”状态可以通过光伏电流而不是破坏性的极化开关来读出,这是许多应用的新兴功能。这项工作极大地促进了钙钛矿氧化物薄膜在透明和柔性电子学中的应用,包括可穿戴设备。

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