Substrate‐Controlled Photoluminescence Memory Behavior in a Perovskite–GeSbTe Photonic Platform

ABSTRACT All‐optical neuromorphic computing promises ultrafast and energy‐efficient information processing compared to classical von Neumann architecture. To realize this bio‐inspired platform, its memory elements should combine volatility and nonvolatility within a single memory device. Here, we report a hybrid optical memory device that integrates volatile photophysical dynamics with nonvolatile phase‐change control. The platform consists of a luminescent CsPbBr 3 halide perovskite thin film deposited on a Ge 2 Sb 2 Te 5 substrate. In this device, reversible amorphous‐crystalline phase transitions provide a modulation of the CsPbBr 3 photoluminescence properties. Time‐resolved photoluminescence measurements reveal excitation‐history‐dependent dynamics governed by photodoping and trap filling in the perovskite layer, while the GST phase sets the nonvolatile emission intensity. Finally, we realize all‐optical classification of binary pulse sequences using a pixelated hybrid device. These results establish a materials platform for hybrid optical memory and open new pathways toward adaptive neuromorphic photonic systems.

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Publication Details

Journal
Advanced Optical Materials
Published
2026-09-29
DOI
https://doi.org/10.1002/adom.71857
Primary Topic
Perovskite Materials and Applications
Type
article
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article

Substrate‐Controlled Photoluminescence Memory Behavior in a Perovskite–GeSbTe Photonic Platform

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Substrate‐Controlled Photoluminescence Memory Behavior in a Perovskite–GeSbTe Photonic Platform

Ivan Matchenya, Yuxi Tian, Stepan Baryshev, Grigorii Verkhogliadov, Petr Lazarenko, Olga M. Kushchenko, Anatoly P. Pushkarev, Ivan G. Scheblykin, Artem D. Sinelnik, Elizaveta Sapozhnikova
article en

Abstract

ABSTRACT All‐optical neuromorphic computing promises ultrafast and energy‐efficient information processing compared to classical von Neumann architecture. To realize this bio‐inspired platform, its memory elements should combine volatility and nonvolatility within a single memory device. Here, we report a hybrid optical memory device that integrates volatile photophysical dynamics with nonvolatile phase‐change control. The platform consists of a luminescent CsPbBr 3 halide perovskite thin film deposited on a Ge 2 Sb 2 Te 5 substrate. In this device, reversible amorphous‐crystalline phase transitions provide a modulation of the CsPbBr 3 photoluminescence properties. Time‐resolved photoluminescence measurements reveal excitation‐history‐dependent dynamics governed by photodoping and trap filling in the perovskite layer, while the GST phase sets the nonvolatile emission intensity. Finally, we realize all‐optical classification of binary pulse sequences using a pixelated hybrid device. These results establish a materials platform for hybrid optical memory and open new pathways toward adaptive neuromorphic photonic systems.

Advanced Optical Materials
Skolkovo Institute of Science and Technology (RU), ITMO University (RU), Lund University (SE), National Research University of Electronic Technology (RU), Ministry of Education and Child Care (CA), NanoLund (SE), Nanjing University (CN)
Affordable and clean energy
Openalex Percentile: Top 22%
Perovskite Materials and Applications
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