English

Electrically reconfigurable phase-change transmissive metasurface

Optics 2024-09-20 v1 Applied Physics

Abstract

Programmable and reconfigurable optics hold significant potential for transforming a broad spectrum of applications, spanning space explorations to biomedical imaging, gas sensing, and optical cloaking. The ability to adjust the optical properties of components like filters, lenses, and beam steering devices could result in dramatic reductions in size, weight, and power consumption in future optoelectronic devices. Among the potential candidates for reconfigurable optics, chalcogenide-based phase change materials (PCMs) offer great promise due to their non-volatile and analogue switching characteristics. Although PCM have found widespread use in electronic data storage, these memory devices are deeply sub-micron-sized. To incorporate phase change materials into free-space optical components, it is essential to scale them up to beyond several hundreds of microns while maintaining reliable switching characteristics. This study demonstrated a non-mechanical, non-volatile transmissive filter based on low-loss PCMs with a 200 μ\mum× \times 200 μ\mum switching area. The device/metafilter can be consistently switched between low- and high-transmission states using electrical pulses with a switching contrast ratio of 5.5 dB. The device was reversibly switched for 1250 cycles before accelerated degradation took place. The work represents an important step toward realizing free-space reconfigurable optics based on PCMs.

Keywords

Cite

@article{arxiv.2312.10468,
  title  = {Electrically reconfigurable phase-change transmissive metasurface},
  author = {Cosmin Constantin Popescu and Kiumars Aryana and Parth Garud and Khoi Phuong Dao and Steven Vitale and Vladimir Liberman and Hyung-Bin Bae and Tae-Woo Lee and Myungkoo Kang and Kathleen A. Richardson and Carlos A. Rios Ocampo and Yifei Zhang and Tian Gu and Juejun Hu and Hyun Jung Kim},
  journal= {arXiv preprint arXiv:2312.10468},
  year   = {2024}
}
R2 v1 2026-06-28T13:53:32.866Z