PhotoniX, Volume. 3, Issue 1, 26(2022)

Ultra-compact nonvolatile phase shifter based on electrically reprogrammable transparent phase change materials

Carlos Ríos1,2、†,*, Qingyang Du3、†,**, Yifei Zhang4, Cosmin-Constantin Popescu4, Mikhail Y. Shalaginov4, Paul Miller5, Christopher Roberts5, Myungkoo Kang6, Kathleen A. Richardson6,7, Tian Gu4,8, Steven A. Vitale5、†,***, and Juejun Hu4,8
Author Affiliations
  • 1Department of Materials Science & Engineering, University of Maryland, College Park MD, USA
  • 2Institute for Research in Electronics and Applied Physics, University of Maryland, College Park MD, USA
  • 3Research Center for Intelligent Optoelectronic Computing, Zhejiang Lab, 311121 Hangzhou, China
  • 4Department of Materials Science & Engineering, Massachusetts Institute of Technology, Cambridge MA, USA
  • 5Lincoln Laboratory, Massachusetts Institute of Technology, Lexington MA, USA
  • 6The College of Optics & Photonics, CREOL, University of Central Florida, Orlando FL, USA
  • 7Department of Materials Science and Engineering, University of Central Florida, Orlando FL, USA
  • 8Materials Research Laboratory, Massachusetts Institute of Technology, Cambridge MA, USA
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    Carlos Ríos, Qingyang Du, Yifei Zhang, Cosmin-Constantin Popescu, Mikhail Y. Shalaginov, Paul Miller, Christopher Roberts, Myungkoo Kang, Kathleen A. Richardson, Tian Gu, Steven A. Vitale, Juejun Hu. Ultra-compact nonvolatile phase shifter based on electrically reprogrammable transparent phase change materials[J]. PhotoniX, 2022, 3(1): 26

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    Paper Information

    Category: Research Articles

    Received: Jul. 3, 2022

    Accepted: Sep. 16, 2022

    Published Online: Jul. 10, 2023

    The Author Email: Carlos Ríos (riosc@umd.edu), Qingyang Du (qydu@zhejianglab.edu.cn), Steven A. Vitale (steven.vitale@ll.mit.edu)

    DOI:10.1186/s43074-022-00070-4

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