Substrate-mediated laser annealing for depth-dependent structure regulation

Precision control of material properties in-depth in thin films is increasingly critical for advanced optoelectronic devices. Laser annealing offers the spatial selectivity required for such modification. However, achieving depth-selective modification remains challenging due to the incomplete understanding of transient heat transfer mechanisms and the narrow processing window. Herein, we elucidate a substrate-mediated “bottom-up” thermal pathway using a prototype of indium tin oxide (ITO) on silicon under 355 nm nanosecond laser irradiation. Unlike direct optical absorption, the substrate (silicon) acts as a localized heating source, establishing a sharp vertical thermal gradient in the thin film above that drives phase evolution from the interface upwards. Systematic optimization of the laser fluence increased the electrical conductivity from 1.480 × 10 3 S/cm in the as-deposited film to a peak value of 3.035 × 10 3 S/cm, corresponding to an enhancement of more than twofold. Furthermore, comprehensive characterization of the film evolution revealed four distinct microstructural and compositional regimes. These findings demonstrate a precise thin film modification technology for material systems involving a transparent layer on a light-absorbing substrate, which provides a valuable depth-selective structural engineering in development of advanced optoelectronic systems.

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Publication Details

Journal
Optics & Laser Technology
Published
2026-09-11
DOI
https://doi.org/10.1016/j.optlastec.2026.116350
Primary Topic
Laser Material Processing Techniques
Type
article
Field-Weighted Citation Impact
0.00

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article

Substrate-mediated laser annealing for depth-dependent structure regulation

Kai Huang, Jiajing Chen, Lebin Wang, Hao Lin et al.
Optics & Laser Technology
Laser Material Processing Techniques
article

Substrate-mediated laser annealing for depth-dependent structure regulation

Kai Huang, Jiajing Chen, Lebin Wang, Hao Lin, Xiaohan Yin, Mengjie Xu, Zhiyang Cui, Pingqi Gao, Guo’an Chen, Qiao Su
article en

Abstract

Precision control of material properties in-depth in thin films is increasingly critical for advanced optoelectronic devices. Laser annealing offers the spatial selectivity required for such modification. However, achieving depth-selective modification remains challenging due to the incomplete understanding of transient heat transfer mechanisms and the narrow processing window. Herein, we elucidate a substrate-mediated “bottom-up” thermal pathway using a prototype of indium tin oxide (ITO) on silicon under 355 nm nanosecond laser irradiation. Unlike direct optical absorption, the substrate (silicon) acts as a localized heating source, establishing a sharp vertical thermal gradient in the thin film above that drives phase evolution from the interface upwards. Systematic optimization of the laser fluence increased the electrical conductivity from 1.480 × 10 3 S/cm in the as-deposited film to a peak value of 3.035 × 10 3 S/cm, corresponding to an enhancement of more than twofold. Furthermore, comprehensive characterization of the film evolution revealed four distinct microstructural and compositional regimes. These findings demonstrate a precise thin film modification technology for material systems involving a transparent layer on a light-absorbing substrate, which provides a valuable depth-selective structural engineering in development of advanced optoelectronic systems.

Optics & Laser TechnologyVol. 203
Sun Yat-sen University (CN), Solar Energy Research Institute of Sun Yat-sen University (CN), Yibin University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 13%
Laser Material Processing Techniques
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Substrate-mediated laser annealing for depth-dependent structure regulation — Kai Huang, Jiajing Chen, et al. · Optics & Laser Technology (2026) | TGRS Research Map | TGRS