Yiyuan Pao, Shunyi Zhou, Chi-Yang Lee, Chi-Yang Lee, Chao Wang, Rui Li, Yi-Jen Chiu, Chan-Shan Yang, Chao-Kuei Lee, Chao-Kuei Lee, Hsiang-Chen Chui
High Resolution Image Download MS PowerPoint Slide High-power near-infrared photonics requires dielectric coatings that combine low optical loss with strong and reliable third-order nonlinearity. We present a Ta 2 O 5 thin-film process based on ion-gun-assisted (IGA) electron-beam evaporation followed by oxygen annealing, benchmarked against conventional deposition without ion assistance. Films (∼700 nm) were deposited on thermally oxidized Si and characterized at 800 nm using open-/closed-aperture (OA/CA) Z-scan with femtosecond pulses over 0.45–82.92 GW/mm 2, with recovery tests extended to 124.38 GW/mm 2 . The IGA process in O 2 /Ar ambient yields a denser microstructure, smoother morphology, and reduced oxygen vacancies. OA Z-scan results demonstrate strongly suppressed intensity-dependent loss in the IGA film: the maximum transmittance decrease remains ∼0.02% at 82.92 GW/mm 2, compared with ∼0.10% for the non-IGA film with earlier onset (∼0.02% at 17.77 GW/mm 2 ). After OA normalization, CA analysis gives Kerr coefficients of n 2 = (1.62–4.08) × 10 –14 cm 2 /W for the IGA film, higher than the non-IGA counterpart (2.25 × 10 –15 to 1.41 × 10 –14 cm 2 /W). The damage-onset window (DOW) is significantly extended, from 11.84 GW/mm 2 in the non-IGA film to 124.38 GW/mm 2 with IGA, representing an ≈10.5-fold enhancement. Spatial mapping at 82.92 GW/mm 2 further confirms excellent uniformity in the IGA film, while the non-IGA sample exhibits large site-to-site variations. Recovery measurements reveal predominantly reversible nonlinear response in the IGA film, in contrast to persistent absorption and scattering in the non-IGA case. These findings establish IGA-assisted deposition with oxygen annealing as a robust route to Ta 2 O 5 coatings with reduced nonlinear loss, enhanced Kerr response, improved uniformity, and higher optical damage resistance, enabling their deployment in high-power photonic systems.