材料科学
光子学
光电子学
二氧化二钒
光开关
相变
计算机科学
纳米技术
相(物质)
桥接(联网)
动力学(音乐)
神经形态工程学
工程物理
设计要素和原则
制作
相变
财产(哲学)
光通信
纳米-
作者
Yanlin Wang,Xue‐Bin Wang,Jiazhen Zhang,Qinhao Lin,Hao Xu
标识
DOI:10.1002/adom.202502649
摘要
Abstract Phase‐change materials (PCMs) exhibit reversible structural transformations and dramatic property changes in response to external stimuli, offering unprecedented opportunities for dynamically tunable optoelectronic devices. Vanadium dioxide (VO 2 ), a prototypical correlated oxide, displays a pronounced metal‐insulator transition. Its inherent multi‐stability and reversible phase transition enable innovative applications in information storage, dynamic modulation, and operational mode switching. This review outlines strategies for developing stable reconfigurable photonic components by exploiting the VO 2 phase transition, which can be precisely induced by external stimuli (light, electrical bias, heat). This approach bridges the gap between fundamental phase‐transition mechanisms and dynamic optoelectronic performance, paving the way for functional devices that transcend the limitations of conventional static components. It first clarifies the fundamental structural features of VO 2 and the corresponding evolution of its optical and electrical parameters during phase transition. Subsequently, it summarizes advanced synthesis techniques for high‐quality VO 2 films. Furthermore, a systematic analysis of state‐of‐the‐art VO 2 ‐based optoelectronic device architectures highlights their unique switching dynamics and non‐volatile phase transition mechanisms for optical response manipulation. These comprehensive discussions aim to inspire new design paradigms for multifunctional and reconfigurable optoelectronics, providing valuable insights for the development of next‐generation adaptive optoelectronic systems.
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