Three-dimensional atomic evolution of amorphous phase-change materials upon photon irradiation

Abstract Phase-change materials show great promise for applications in integrated photonic memory and computing devices, where irradiation resistance is crucial for ensuring long-term operational reliability. However, the atomic evolution of phase-change materials under optical excitation remains unclear, primarily due to the technical challenge in characterizing amorphous materials. Here, we employ atomic electron tomography to resolve the three-dimensional atomic structures of amorphous Ge₂Sb₂Te₅ nanoparticles after femtosecond laser irradiation and room-temperature aging. Combining first-principles calculations, we find that irradiation induces atomic-scale disorder, including compositional segregation, vacancy aggregation, and the formation of wrong bonds, leading to a reduction in optical bandgap. Furthermore, during aging, the material exhibits a self-healing phenomenon, wherein optical properties revert to their initial states, driven by compositional homogenization and vacancy annihilation. Our work establishes a comprehensive atomic-scale structure-property relationship underlying photon irradiation and self-healing processes in amorphous Ge₂Sb₂Te₅, offering valuable insights into the design of durable phase-change photonic devices.

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Publication Details

Journal
Communications Materials
Published
2026-09-25
DOI
https://doi.org/10.1038/s43246-026-01375-8
Primary Topic
Phase-change materials and chalcogenides
Type
article
Field-Weighted Citation Impact
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Three-dimensional atomic evolution of amorphous phase-change materials upon photon irradiation

Wenxiong Song, Jun Cai Ding, Huipu Liu, Ruiqin He et al.
Communications Materials
Phase-change materials and chalcogenides
article

Three-dimensional atomic evolution of amorphous phase-change materials upon photon irradiation

Wenxiong Song, Jun Cai Ding, Huipu Liu, Ruiqin He, Yakun Yuan, Huang Huang, Fan Zhu, Jiong Zhou, Zhenzhen Yan
article en

Abstract

Abstract Phase-change materials show great promise for applications in integrated photonic memory and computing devices, where irradiation resistance is crucial for ensuring long-term operational reliability. However, the atomic evolution of phase-change materials under optical excitation remains unclear, primarily due to the technical challenge in characterizing amorphous materials. Here, we employ atomic electron tomography to resolve the three-dimensional atomic structures of amorphous Ge₂Sb₂Te₅ nanoparticles after femtosecond laser irradiation and room-temperature aging. Combining first-principles calculations, we find that irradiation induces atomic-scale disorder, including compositional segregation, vacancy aggregation, and the formation of wrong bonds, leading to a reduction in optical bandgap. Furthermore, during aging, the material exhibits a self-healing phenomenon, wherein optical properties revert to their initial states, driven by compositional homogenization and vacancy annihilation. Our work establishes a comprehensive atomic-scale structure-property relationship underlying photon irradiation and self-healing processes in amorphous Ge₂Sb₂Te₅, offering valuable insights into the design of durable phase-change photonic devices.

Communications Materials
Chinese Academy of Sciences (CN), Fudan University (CN), Shanghai Institute of Microsystem and Information Technology (CN), Xi'an Jiaotong University (CN), Ministry of Industry and Information Technology (CN)
Openalex Percentile: Top 26%
Phase-change materials and chalcogenides
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