首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Beyond SiOx: an active electronics resurgence and biomimetic reactive oxygen species production and regulation from mitochondria
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Beyond SiOx: an active electronics resurgence and biomimetic reactive oxygen species production and regulation from mitochondria

机译:超越SiOx:一种活跃的电子复兴和仿生反应性氧物种生产和调节线粒体

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We explore overcoming the non-oxidizing environment requirement issues in silicon oxide (SiOx) based memristors and investigate potential next steps for use of SiOx as a memristor material. A SiOx/HfOx stacked material was engineered, developed and tested to verify operation of the SiOx-based memristors, and the stacked material exhibits interfacial proton accumulation leading to ultra-low-voltage operation (2 V). Also, a biomimetic self-recovery process (learning from the reactive oxygen species (ROS-like) production and regulation mechanism in mitochondria) has been demonstrated by a SiOx-based electrical device. The accumulative oxygen-induced ROS-like substance production in SiOx-based active electronics results in functional obstruction during the resistive switching transformation process, and further causes malfunction or a similar process to apoptosis (programmed cell death). The regulation system, also built-up by SiOx-based active electronics with neuromorphic learning, is designed for modulation of a ROS-like substance and provides an anti-ROS-like process to revive device functionality. The demonstrating of smart-material cycles in biomimetic self-recovery by SiOx-based active electronics represents critical milestones in future potential applications.
机译:我们探讨基于氧化硅(SiOx)的忆物中的非氧化环境要求问题,并研究了使用SiOx作为椎管材料的潜在后续步骤。设计和测试的SiOx / HFOX堆叠材料以验证基于SiOx的储物的操作,并且堆叠材料表现出通向超低电压操作的界面质子累积(& 2v)。此外,通过基于SiOx的电气装置证明了一种基于SiOx的电气装置的仿生自我恢复过程(从反应性氧物质(ROS样)产生和调节机制)。基于SiOx的活性电子器件的累积氧诱导的ROS样物质产生导致电阻转换变换过程中的功能性阻塞,并进一步导致凋亡(编程细胞死亡)的故障或类似的过程。该调节系统还通过具有神经形态学习的基于SiOx的活性电子器件,设计用于调制ROS样物质,并提供抗ROS样过程以恢复设备功能。通过SiOx的活性电子器件展示仿生自我恢复中的智能材料循环代表了未来潜在应用中的关键里程碑。

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