Extreme Broadband Transparent Optical Phase Change Materials for High-Performance Nonvolatile Photonics
Abstract
Optical phase change materials (O-PCMs), a unique group of materials featuring drastic optical property contrast upon solid-state phase transition, have found widespread adoption in photonic switches and routers, reconfigurable meta-optics, reflective display, and optical neuromorphic computers. Current phase change materials, such as Ge-Sb-Te (GST), exhibit large contrast of both refractive index (delta n) and optical loss (delta k), simultaneously. The coupling of both optical properties fundamentally limits the function and performance of many potential applications. In this article, we introduce a new class of O-PCMs, Ge-Sb-Se-Te (GSST) which breaks this traditional coupling, as demonstrated with an optical figure of merit improvement of more than two orders of magnitude. The first-principle computationally optimized alloy, Ge2Sb2Se4Te1, combines broadband low optical loss (1-18.5 micron), large optical contrast (delta n = 2.0), and significantly improved glass forming ability, enabling an entirely new field of infrared and thermal photonic devices. We further leverage the material to demonstrate nonvolatile integrated optical switches with record low loss and large contrast ratio, as well as an electrically addressed, microsecond switched pixel level spatial light modulator, thereby validating its promise as a platform material for scalable nonvolatile photonics.
Keywords
Cite
@article{arxiv.1811.00526,
title = {Extreme Broadband Transparent Optical Phase Change Materials for High-Performance Nonvolatile Photonics},
author = {Yifei Zhang and Jeffrey B. Chou and Junying Li and Huashan Li and Qingyang Du and Anupama Yadav and Si Zhou and Mikhail Y. Shalaginov and Zhuoran Fang and Huikai Zhong and Christopher Roberts and Paul Robinson and Bridget Bohlin and Carlos Ríos and Hongtao Lin and Myungkoo Kang and Tian Gu and Jamie Warner and Vladimir Liberman and Kathleen Richardson and Juejun Hu},
journal= {arXiv preprint arXiv:1811.00526},
year = {2019}
}
Comments
16 pages, 6 figures