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迈向基于相变材料的光子器件的精确热建模。

Toward Accurate Thermal Modeling of Phase Change Material-Based Photonic Devices.

作者信息

Aryana Kiumars, Kim Hyun Jung, Popescu Cosmin-Constantin, Vitale Steven, Bae Hyung Bin, Lee Taewoo, Gu Tian, Hu Juejun

机构信息

NASA Langley Research Center, Hampton, VA, 23681, USA.

Department of Materials & Science Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.

出版信息

Small. 2023 Dec;19(50):e2304145. doi: 10.1002/smll.202304145. Epub 2023 Aug 30.

Abstract

Reconfigurable or programmable photonic devices are rapidly growing and have become an integral part of many optical systems. The ability to selectively modulate electromagnetic waves through electrical stimuli is crucial in the advancement of a variety of applications from data communication and computing devices to environmental science and space explorations. Chalcogenide-based phase-change materials (PCMs) are one of the most promising material candidates for reconfigurable photonics due to their large optical contrast between their different solid-state structural phases. Although significant efforts have been devoted to accurate simulation of PCM-based devices, in this paper, three important aspects which have often evaded prior models yet having significant impacts on the thermal and phase transition behavior of these devices are highlighted: the enthalpy of fusion, the heat capacity change upon glass transition, as well as the thermal conductivity of liquid-phase PCMs. The important topic of switching energy scaling in PCM devices, which also helps explain why the three above-mentioned effects have long been overlooked in electronic PCM memories but only become important in photonics, is further investigated. These findings offer insight to facilitate accurate modeling of PCM-based photonic devices and can inform the development of more efficient reconfigurable optics.

摘要

可重构或可编程光子器件正在迅速发展,并已成为许多光学系统不可或缺的一部分。通过电刺激选择性调制电磁波的能力对于从数据通信和计算设备到环境科学与太空探索等各种应用的发展至关重要。基于硫族化物的相变材料(PCM)由于其不同固态结构相之间具有较大的光学对比度,是可重构光子学中最有前途的材料候选者之一。尽管已经投入大量精力对基于PCM的器件进行精确模拟,但本文强调了三个经常被先前模型忽略但对这些器件的热和相变行为有重大影响的重要方面:熔化焓、玻璃化转变时的热容量变化以及液相PCM的热导率。进一步研究了PCM器件中开关能量缩放这一重要课题,这也有助于解释为什么上述三种效应在电子PCM存储器中长期被忽视,而在光子学中才变得重要。这些发现有助于准确建模基于PCM的光子器件,并为开发更高效的可重构光学器件提供参考。

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