Increased endurance of nonvolatile photonics enabled by nanostructured phase-change materials

Fuente: arXiv
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Main Authors: Dutta, Jayita, Tang, Andrew, Mills, Brian, Chen, Rui, Manna, Arnab, SJ, Gokul Nath, Tara, Virat, Callahan, Dennis, Popescu, Cosmin Constantin, Hu, Juejun, Majumdar, Arka
Format: Preprint
Published: 2026
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author Dutta, Jayita
Tang, Andrew
Mills, Brian
Chen, Rui
Manna, Arnab
SJ, Gokul Nath
Tara, Virat
Callahan, Dennis
Popescu, Cosmin Constantin
Hu, Juejun
Majumdar, Arka
author_facet Dutta, Jayita
Tang, Andrew
Mills, Brian
Chen, Rui
Manna, Arnab
SJ, Gokul Nath
Tara, Virat
Callahan, Dennis
Popescu, Cosmin Constantin
Hu, Juejun
Majumdar, Arka
contents The rapid rise of artificial intelligence, and in-memory computing has reinvigorated research on scalable, energy-efficient, and reconfigurable photonic hardware. Non-volatile phase-change materials (PCMs) are attractive, as they offer large refractive index contrast, wavelength-scale footprints, and zero static power consumption. However, current PCM-based electrically controlled photonic devices are plagued by high insertion loss and low endurance. One prevalent hypothesis for these material limitations come from electromagnetic scattering in the interface and large programming volumes, respectively. Here, we validate this hypothesis by showing that nano-structuring of PCM minimizes optical loss and enhances the endurance. By tapering both ends of a wide bandgap PCM Sb2Se3 segment on a silicon waveguide, we suppressed the insertion loss by ~94% (resulting in a loss of ~0.1 dB per π phase shift). Through combining tapering and segmentation, we achieved high optical modulation amplitude (~70%), low loss (~0.5 dB per π phase shift), low-voltage (< 5V) actuation, and record high endurance greater than 100 million cycles. This work showcases the substantial advantage of nanopatterning PCMs to attain low loss and high cyclability.
format Preprint
id arxiv_https___arxiv_org_abs_2604_08637
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Increased endurance of nonvolatile photonics enabled by nanostructured phase-change materials
Dutta, Jayita
Tang, Andrew
Mills, Brian
Chen, Rui
Manna, Arnab
SJ, Gokul Nath
Tara, Virat
Callahan, Dennis
Popescu, Cosmin Constantin
Hu, Juejun
Majumdar, Arka
Optics
The rapid rise of artificial intelligence, and in-memory computing has reinvigorated research on scalable, energy-efficient, and reconfigurable photonic hardware. Non-volatile phase-change materials (PCMs) are attractive, as they offer large refractive index contrast, wavelength-scale footprints, and zero static power consumption. However, current PCM-based electrically controlled photonic devices are plagued by high insertion loss and low endurance. One prevalent hypothesis for these material limitations come from electromagnetic scattering in the interface and large programming volumes, respectively. Here, we validate this hypothesis by showing that nano-structuring of PCM minimizes optical loss and enhances the endurance. By tapering both ends of a wide bandgap PCM Sb2Se3 segment on a silicon waveguide, we suppressed the insertion loss by ~94% (resulting in a loss of ~0.1 dB per π phase shift). Through combining tapering and segmentation, we achieved high optical modulation amplitude (~70%), low loss (~0.5 dB per π phase shift), low-voltage (< 5V) actuation, and record high endurance greater than 100 million cycles. This work showcases the substantial advantage of nanopatterning PCMs to attain low loss and high cyclability.
title Increased endurance of nonvolatile photonics enabled by nanostructured phase-change materials
topic Optics
url https://arxiv.org/abs/2604.08637