TY - JOUR
T1 - Nonlinear third harmonic generation at crystalline sapphires
AU - Yi, Gao
AU - Lee, Hyub
AU - Jiannan, Jiao
AU - Chun, Byung Jae
AU - Han, Seunghwoi
AU - Kim, Hyunwoong
AU - Kim, Yong Woo
AU - Kim, Donghwan
AU - Kim, Seung Woo
AU - Kim, Young Jin
N1 - Publisher Copyright:
©2017 Optical Society of America.
PY - 2017/10/16
Y1 - 2017/10/16
N2 - Third harmonic generation (THG) is a nonlinear optical phenomenon which can be applied in diverse research areas including interfacial studies, sub-wavelength light manipulation, and high sensitivity bio-molecular detection. Most precedent studies on THG have focused on dielectric and metallic materials, including silicon, gold, and germanium, due to their high nonlinear susceptibility. Sapphire, a widely-used optical substrate, has not been studied in depth for its third harmonic characteristics, despite its excellent optical transmission in the UV-visible range, high thermal conductance, and superior physical and chemical stability. In this research, we comprehensively studied THG at thin air-dielectric interfaces of sapphire wafers by controlling the wafer cutting planes, focusing depth, incidence angle, laser intensity, and input polarization of the input laser beam. These findings can lead to broader use of third harmonics for high-precision sapphire characterization, such as surface quality inspection, crystallinity determination, interfacial studies, delamination check, and real-time monitoring of crack propagation.
AB - Third harmonic generation (THG) is a nonlinear optical phenomenon which can be applied in diverse research areas including interfacial studies, sub-wavelength light manipulation, and high sensitivity bio-molecular detection. Most precedent studies on THG have focused on dielectric and metallic materials, including silicon, gold, and germanium, due to their high nonlinear susceptibility. Sapphire, a widely-used optical substrate, has not been studied in depth for its third harmonic characteristics, despite its excellent optical transmission in the UV-visible range, high thermal conductance, and superior physical and chemical stability. In this research, we comprehensively studied THG at thin air-dielectric interfaces of sapphire wafers by controlling the wafer cutting planes, focusing depth, incidence angle, laser intensity, and input polarization of the input laser beam. These findings can lead to broader use of third harmonics for high-precision sapphire characterization, such as surface quality inspection, crystallinity determination, interfacial studies, delamination check, and real-time monitoring of crack propagation.
UR - https://www.scopus.com/pages/publications/85031319653
U2 - 10.1364/OE.25.026002
DO - 10.1364/OE.25.026002
M3 - Article
C2 - 29041262
AN - SCOPUS:85031319653
SN - 1094-4087
VL - 25
SP - 26002
EP - 26010
JO - Optics Express
JF - Optics Express
IS - 21
ER -