Wang Xiaoxiao, Qi Huixin, Hu Xiaoyong, Yu Zixuan, Ding Shaoqi, Du Zhuochen, Gong Qihuang
Collaborative Innovation Center of Quantum Matter & Frontiers Science Center for Nano-Optoelectronics, State Key Laboratory for Mesoscopic Physics & Department of Physics, Beijing Academy of Quantum Information Sciences, Peking University, Beijing 100871, China.
Peking University Yangtze Delta Institute of Optoelectronics, Nantong 226010, China.
Molecules. 2021 May 10;26(9):2813. doi: 10.3390/molecules26092813.
Phase-change materials (PCMs) are important photonic materials that have the advantages of a rapid and reversible phase change, a great difference in the optical properties between the crystalline and amorphous states, scalability, and nonvolatility. With the constant development in the PCM platform and integration of multiple material platforms, more and more reconfigurable photonic devices and their dynamic regulation have been theoretically proposed and experimentally demonstrated, showing the great potential of PCMs in integrated photonic chips. Here, we review the recent developments in PCMs and discuss their potential for photonic devices. A universal overview of the mechanism of the phase transition and models of PCMs is presented. PCMs have injected new life into on-chip photonic integrated circuits, which generally contain an optical switch, an optical logical gate, and an optical modulator. Photonic neural networks based on PCMs are another interesting application of PCMs. Finally, the future development prospects and problems that need to be solved are discussed. PCMs are likely to have wide applications in future intelligent photonic systems.
相变材料(PCM)是重要的光子材料,具有快速且可逆的相变、晶态与非晶态之间光学性质差异大、可扩展性和非易失性等优点。随着PCM平台的不断发展以及多种材料平台的整合,越来越多的可重构光子器件及其动态调控已在理论上被提出并通过实验得到证实,这显示出PCM在集成光子芯片中的巨大潜力。在此,我们回顾PCM的近期发展,并讨论它们在光子器件方面的潜力。本文给出了相变机制和PCM模型的通用概述。PCM为片上光子集成电路注入了新的活力,片上光子集成电路通常包含光开关、光逻辑门和光调制器。基于PCM的光子神经网络是PCM的另一个有趣应用。最后,讨论了未来的发展前景以及需要解决的问题。PCM可能在未来的智能光子系统中得到广泛应用。