| Literature DB >> 28883479 |
Chen Chen1, Lilong Pang2, Qingming Lu3, Lei Wang1, Yang Tan1, Zhiguang Wang2, Feng Chen4.
Abstract
Swift heavy ion irradiation has been widely used to modify refractive indices of optical materials for waveguide fabrication. In this work, we propose refractive index engineering by swift heavy ion (Ar) irradiation via electronic energy deposition to construct waveguides of diverse geometries in LiNbO3 crystal. The feasibility to modulate the refractive index of LiNbO3 crystal at variable depths through electronic energy depositions of argon ions at different energies has been experimentally explored. The surface and cladding-like optical waveguides with thicknesses of ~13, ~36 and ~23 μm have been produced by using swift Ar ion irradiation at single energy of ~120, ~240, and double energy of (120 + 240) MeV, respectively. The fabricated waveguides are capable of effective waveguiding in single and multiple modes at 1064 nm, which enables efficient guided-wave second harmonic generation at room temperature. This work paves the way to produce waveguides with diverse geometries in dielectric crystals through electronic damage of multiple swift heavy ion irradiation.Entities:
Year: 2017 PMID: 28883479 PMCID: PMC5589876 DOI: 10.1038/s41598-017-11358-y
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Argon ion irradiation onto LiNbO3. (a) Schematic plot of argon ion irradiation onto x-cut LiNbO3. (b) Computed electronic (S e) and nuclear (S n) stopping powers of argon ions versus penetration depth at energy of 120 and 240 MeV respectively. (c) Projected range and peak position of S e for argon ions into LiNbO3 as functions of incident energy.
Figure 2Guiding properties of irradiated layers. Measured intensity distributions of guided TM modes (left column) and TE modes (center column) at the wavelength of 1064 nm for layers irradiated under different conditions. (right column), Cross-sectional microscopic photographs for different layers.
Figure 3Reconstructed refractive index profiles. Ordinary and extraordinary refractive index profiles for single (a,d) and multiple (b,e) energy irradiated LiNbO3 crystals. Simulated TM (c) and TE (f) guided modal profiles of cladding-like layer at 1064 nm.
Figure 4Guided-wave second harmonic generation. (a) Experimental setup for guided-wave SHG in pulsed regime. Second harmonic powers (b,c,d) and conversion efficiencies (e,f,g) as functions of the launched fundamental powers measured from sample 1 to 3. (insets) measured SH modal profiles from sample 1 to 3.