MIT Libraries logoDSpace@MIT

MIT
View Item 
  • DSpace@MIT Home
  • MIT Open Access Articles
  • MIT Open Access Articles
  • View Item
  • DSpace@MIT Home
  • MIT Open Access Articles
  • MIT Open Access Articles
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.

Multi‐level Electro‐thermal Switching of Optical Phase‐Change Materials Using Graphene

Author(s)
Ríos, Carlos; Zhang, Yifei; Shalaginov, Mikhail Y; Deckoff-Jones, Skylar; Wang, Haozhe; An, Sensong; Zhang, Hualiang; Kang, Myungkoo; Richardson, Kathleen A; Roberts, Christopher; Chou, Jeffrey B; Liberman, Vladimir; Vitale, Steven A; Kong, Jing; Gu, Tian; Hu, Juejun; ... Show more Show less
Thumbnail
DownloadPublished version (1.947Mb)
Publisher with Creative Commons License

Publisher with Creative Commons License

Creative Commons Attribution

Terms of use
Creative Commons Attribution 4.0 International license https://creativecommons.org/licenses/by/4.0/
Metadata
Show full item record
Abstract
Reconfigurable photonic systems featuring minimal power consumption are crucial for integrated optical devices in real-world technology. Current active devices available in foundries, however, use volatile methods to modulate light, requiring a constant supply of power and significant form factors. Essential aspects to overcoming these issues are the development of nonvolatile optical reconfiguration techniques which are compatible with on-chip integration with different photonic platforms and do not disrupt their optical performances. In this paper, a solution is demonstrated using an optoelectronic framework for nonvolatile tunable photonics that employs undoped-graphene microheaters to thermally and reversibly switch the optical phase-change material Ge$_2$Sb$_2$Se$_4$Te$_1$ (GSST). An in-situ Raman spectroscopy method is utilized to demonstrate, in real-time, reversible switching between four different levels of crystallinity. Moreover, a 3D computational model is developed to precisely interpret the switching characteristics, and to quantify the impact of current saturation on power dissipation, thermal diffusion, and switching speed. This model is used to inform the design of nonvolatile active photonic devices; namely, broadband Si$_3$N$_4$ integrated photonic circuits with small form-factor modulators and reconfigurable metasurfaces displaying 2$\pi$ phase coverage through neural-network-designed GSST meta-atoms. This framework will enable scalable, low-loss nonvolatile applications across a diverse range of photonics platforms.
Date issued
2021
URI
https://hdl.handle.net/1721.1/141218
Department
Massachusetts Institute of Technology. Department of Materials Science and Engineering; Lincoln Laboratory
Journal
Advanced Photonics Research
Publisher
Wiley
Citation
Ríos, Carlos, Zhang, Yifei, Shalaginov, Mikhail Y, Deckoff-Jones, Skylar, Wang, Haozhe et al. 2021. "Multi‐level Electro‐thermal Switching of Optical Phase‐Change Materials Using Graphene." Advanced Photonics Research, 2 (1).
Version: Final published version

Collections
  • MIT Open Access Articles

Browse

All of DSpaceCommunities & CollectionsBy Issue DateAuthorsTitlesSubjectsThis CollectionBy Issue DateAuthorsTitlesSubjects

My Account

Login

Statistics

OA StatisticsStatistics by CountryStatistics by Department
MIT Libraries
PrivacyPermissionsAccessibilityContact us
MIT
Content created by the MIT Libraries, CC BY-NC unless otherwise noted. Notify us about copyright concerns.