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Oxide Electronics Utilizing Ultrafast Metal-Insulator Transitions

机译:利用超快金属-绝缘体转变的氧化物电子

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Although phase transitions have long been a centerpiece of condensed matter materials science studies, a number of recent efforts focus on potentially exploiting the resulting functional property changes in novel electronics and photonics as well as understanding emergent phenomena. This is quite timely, given a grand challenge in twenty-first-century physical sciences is related to enabling continued advances in information processing and storage beyond conventional CMOS scaling. In this brief review, we discuss synthesis of strongly correlated oxides, mechanisms of metal-insulator transitions, and exploratory electron devices that are being studied. Particular emphasis is placed on vanadium dioxide, which undergoes a sharp metal-insulator transition near room temperature at ultrafast timescales. The article begins with an introduction to metal-insulator transition in oxides, followed by a brief discussion on the mechanisms leading to the phase transition. The role of materials synthesis in influencing functional properties is discussed briefly. Recent efforts on realizing novel devices such as field effect switches, optical detectors, nonlinear circuit components, and solid-state sensors are reviewed. The article concludes with a brief discussion on future research directions that may be worth consideration.
机译:尽管相变一直是凝聚态材料科学研究的核心,但最近的许多努力集中在潜在地利用新型电子学和光子学中所产生的功能性质变化以及理解新兴现象上。鉴于二十一世纪物理科学面临的巨大挑战与实现超越常规CMOS缩放技术的信息处理和存储的不断发展有关,这是非常及时的。在这篇简短的综述中,我们讨论了强相关氧化物的合成,金属-绝缘体跃迁的机理以及正在研究的探索性电子器件。特别强调的是二氧化钒,它在室温附近以超快的时间尺度经历了急剧的金属-绝缘体转变。本文首先介绍了氧化物中的金属-绝缘体转变,然后简要讨论了导致相变的机理。简要讨论了材料合成在影响功能特性中的作用。对实现新型器件(例如场效应开关,光学检测器,非线性电路组件和固态传感器)的最新努力进行了回顾。本文最后简要讨论了可能值得考虑的未来研究方向。

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