TY - JOUR
T1 - Broadband dispersive free, large, and ultrafast nonlinear material platforms for photonics
AU - Niu, Xinxiang
AU - Hu, Xiaoyong
AU - Lu, Cuicui
AU - Sheng, Yan
AU - Yang, Hong
AU - Gong, Qihuang
N1 - Publisher Copyright:
© 2020 Xinxiang Niu et al., published by De Gruyter. International License.
PY - 2020/11/1
Y1 - 2020/11/1
N2 - Broadband dispersion free, large and ultrafast nonlinear material platforms comprise the essential foundation for the study of nonlinear optics, integrated optics, intense field optical physics, and quantum optics. Despite substantial research efforts, such material platforms have not been established up to now because of intrinsic contradictions between large nonlinear optical coefficient, broad operating bandwidth, and ultrafast response time. In this work, a broadband dispersion free, large and ultrafast nonlinear material platform based on broadband epsilon-near-zero (ENZ) material is experimentally demonstrated, which is designed through a novel physical mechanism of combining structural dispersion and material dispersion. The broadband ENZ material is constructed of periodically nanostructured indium tin oxide (ITO) films, and the structure is designed with the help of theoretical predictions combined with algorithm optimization. Within the whole broad ENZ wavelength range (from 1300 to 1500 nm), a wavelength-independent and large average nonlinear refractive index of −4.85 × 10−11 cm2/W, which is enlarged by around 20 times than that of an unstructured ITO film at its single ENZ wavelength, and an ultrafast response speed at the scale of Tbit/s are experimentally reached simultaneously. This work not only provides a new approach for constructing nonlinear optical materials but also lays the material foundation for the application of nanophotonics.
AB - Broadband dispersion free, large and ultrafast nonlinear material platforms comprise the essential foundation for the study of nonlinear optics, integrated optics, intense field optical physics, and quantum optics. Despite substantial research efforts, such material platforms have not been established up to now because of intrinsic contradictions between large nonlinear optical coefficient, broad operating bandwidth, and ultrafast response time. In this work, a broadband dispersion free, large and ultrafast nonlinear material platform based on broadband epsilon-near-zero (ENZ) material is experimentally demonstrated, which is designed through a novel physical mechanism of combining structural dispersion and material dispersion. The broadband ENZ material is constructed of periodically nanostructured indium tin oxide (ITO) films, and the structure is designed with the help of theoretical predictions combined with algorithm optimization. Within the whole broad ENZ wavelength range (from 1300 to 1500 nm), a wavelength-independent and large average nonlinear refractive index of −4.85 × 10−11 cm2/W, which is enlarged by around 20 times than that of an unstructured ITO film at its single ENZ wavelength, and an ultrafast response speed at the scale of Tbit/s are experimentally reached simultaneously. This work not only provides a new approach for constructing nonlinear optical materials but also lays the material foundation for the application of nanophotonics.
KW - All-optical tunability
KW - Broadband dispersion free nonlinear materials
KW - Epsilon-near-zero photonics
KW - Nonlinear metasurfaces
KW - Ultrafast photonics
UR - http://www.scopus.com/inward/record.url?scp=85092742559&partnerID=8YFLogxK
U2 - 10.1515/nanoph-2020-0420
DO - 10.1515/nanoph-2020-0420
M3 - Article
AN - SCOPUS:85092742559
SN - 2192-8606
VL - 9
SP - 4609
EP - 4618
JO - Nanophotonics
JF - Nanophotonics
IS - 15
ER -