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Graphene–ferroelectric metadevices for nonvolatile memory and reconfigurable logic-gate operations

机译:用于非易失性存储器和可重新配置逻辑门操作的石墨烯-铁电元设备

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摘要

Memory metamaterials are artificial media that sustain transformed electromagnetic properties without persistent external stimuli. Previous memory metamaterials were realized with phase-change materials, such as vanadium dioxide or chalcogenide glasses, which exhibit memory behaviour with respect to electrically/optically induced thermal stimuli. However, they require a thermally isolated environment for longer retention or strong optical pump for phase-change. Here we demonstrate electrically programmable nonvolatile memory metadevices realised by the hybridization of graphene, a ferroelectric and meta-atoms/meta-molecules, and extend the concept further to establish reconfigurable logic-gate metadevices. For a memory metadevice having a single electrical input, amplitude, phase and even the polarization multi-states were clearly distinguishable with a retention time of over 10 years at room temperature. Furthermore, logic-gate functionalities were demonstrated with reconfigurable logic-gate metadevices having two electrical inputs, with each connected to separate ferroelectric layers that act as the multi-level controller for the doping level of the sandwiched graphene layer.
机译:记忆超材料是人造介质,可以维持转换后的电磁特性而无需持续的外部刺激。以前的存储超材料是用相变材料实现的,例如二氧化钒或硫族化物玻璃,它们表现出相对于电/光感应热刺激的存储行为。但是,它们需要隔热的环境以保持更长的时间,或者需要坚固的光泵来进行相变。在这里,我们演示了通过石墨烯,铁电体和元原子/元分子的混合实现的电可编程非易失性存储器元设备,并进一步扩展了概念以建立可重构的逻辑门元设备。对于具有单个电输入的存储器元设备,幅度,相位甚至极化多态在室温下的保留时间超过10年,因此可以清楚地区分。此外,利用具有两个电输入的可重配置逻辑门元设备演示了逻辑门功能,每个设备都连接到单独的铁电层,这些铁电层用作夹层石墨烯层掺杂水平的多级控制器。

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