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May 6, 2026Nanophotonics0 citationsOpen Access

One‐Step Fabrication of Non‐Ablative Microstructures for Efficient Second Harmonic Generation on LiNbO 3 Thin Film

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FWFeifei WangYLYuntao LangCPChangji Pan

Key Points

  • This research aims to develop a method for efficient second harmonic generation using laser-modified structures without ablation.
  • One-step femtosecond laser modification of LiNbO3 thin films to create periodic metasurfaces
  • Analysis using finite-difference time-domain simulation and Raman spectroscopy characterization
  • Experimental validation of SHG efficiency with laser irradiation at oblique incidence
  • 4.75-fold enhancement in SHG efficiency observed during experiments
  • Minimal surface damage and avoidance of microcracking compared to ablated structures
  • Effective coupling to guided-mode resonances enhances optical performance.

Abstract

ABSTRACT Lithium niobate (LiNbO 3 ) is a key material for nonlinear optics applications, such as second harmonic generation (SHG), due to its strong nonlinear coefficient and broad transparency window. However, its high damage threshold makes it difficult to fabricate high‐quality microstructures, often resulting in low quality factors and poor SHG efficiency. Femtosecond lasers are well suited for processing transparent materials, but conventional ablation typically introduces surface cracks and scattering centers that degrade optical performance. In this study, we develop a one‐step femtosecond laser modification method to create periodic metasurfaces on LiNbO 3 thin films without ablation. Compared to ablated structures, the laser‐modified regions exhibit minimal surface damage and avoid microcracking. The designed periodic structures facilitate efficient second‐harmonic generation through complementary mechanisms: the laser‐modified regions introduce a longitudinal focusing effect that locally enhances the optical field, whereas the periodic index modulation enables grating coupling to guided‐mode resonances under oblique incidence. Experimental results demonstrate a 4.75‐fold enhancement in SHG efficiency under 1030 nm femtosecond laser irradiation at oblique incidence. The mechanisms are analyzed using finite‐difference time‐domain simulation and Raman spectroscopy characterization. This work provides a simple and damage‐free strategy for manufacturing high‐performance nonlinear photonic devices, facilitating applications in integrated photonic circuits.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69fa983604f884e66b531f0chttps://doi.org/10.1002/nap2.70096
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