4.6 Article

Opportunities and Challenges for Large-Scale Phase-Change Material Integrated Electro-Photonics

期刊

ACS PHOTONICS
卷 9, 期 10, 页码 3181-3195

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsphotonics.2c00976

关键词

phase-change materials; programmable integrated photonics; large-scale systems; laser writing

资金

  1. National Science Foundation [NSF-2003509]
  2. ONR-YIP Award
  3. DARPA-YFA Award
  4. DRAPER Laboratories
  5. Intel

向作者/读者索取更多资源

Programmable photonics have the potential to transform various emerging applications, but there are challenges in achieving high energy efficiency and large-scale systems. Recent research on nonvolatile phase-change materials (PCMs) provides an opportunity for truly programmable photonics, allowing for energy-efficient and large-scale integrated photonics. Energy efficiency is more critical than operating speed for programmable photonics, and PCM is an ideal candidate. Using wide bandgap PCMs also presents exciting opportunities for various applications.
Programmable photonics have the potential to completely transform a range of emerging applications, including optical computing, optical signal processing, light detecting and ranging, and quantum applications. However, implementing energy-efficient and large-scale systems remains elusive because commonly used programmable photonic approaches are volatile and energy-hungry. Recent results on nonvolatile phase-change material (PCM) integrated photonics present a promising opportunity to create truly programmable photonics. The ability to drastically change the refractive index of the PCMs in a nonvolatile fashion allows creating programmable units with zero-static energy. By taking advantage of the electrical control, nonvolatile reconfiguration, and zero crosstalk between each unit, PCMs can enable extra largescale integrated (ELSI) photonics. In this Perspective, we briefly review the recent progress in PCM photonics and discuss the challenges and limitations of this emerging technology. We argue that energy efficiency is a more critical parameter than the operating speed for programmable photonics, making PCMs an ideal candidate. This has the potential for a disruptive paradigm shift in the reconfigurable photonics research philosophy, as slow but energy-efficient and large index modulation can provide a better solution for ELSI photonics than fast but power-hungry, small index tuning methods. We also highlight the exciting opportunities to leverage wide bandgap PCMs for visible-wavelength applications, such as quantum photonics and optogenetics, and for rewritable photonic integrated circuits (PICs) using nanosecond pulsed lasers. The latter can dramatically reduce the fabrication cost of PICs and democratize the PIC manufacturing process for rapid prototyping.

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