TY - JOUR
T1 - Photonic density of states and photonic bandgap of deformed titanium dioxide inverse opal structure
AU - Sitpathom, Nonthanan
AU - Muangnapoh, Tanyakorn
AU - Kumnorkaew, Pisist
AU - Suwanna, Sujin
AU - Sinsarp, Asawin
AU - Osotchan, Tanakorn
N1 - Publisher Copyright:
© 2022
PY - 2022/1
Y1 - 2022/1
N2 - Titanium dioxide (TiO2) inverse opal, a well-ordered nanoporous media, has a good potential in light-matter enhancement application. In this work, the fabricated TiO2 inverse opal structures were prepared by well-ordered template from convective deposition. This measured photonic bandgap was shorter in wavelength from the theoretical prediction of the perfect well-ordered pore structure due to structural shrinkage and incomplete matrix fill. Shorter lattice distance from shrinkage and lower refractive index of matrix from incomplete-filled structure resulted in higher eigen energies of photonic crystal. The scanning electron microscope images indicated that the pore size of TiO2 inverse opal was reduced around 39% from the initial template size. Additionally, to explore the detail on photonic bandgap shift of deformed inverse opal, the photonic band-structures and density of states (DOS) spectra under variation of refractive index and fill fraction were evaluated by plane-wave expansion method. It was found that the zero DOS range has a narrow bandwidth at low fill fraction and refractive index of the matrix which agreed with the perturbation theory on the Hermitian Maxwell eigenvalue problem.
AB - Titanium dioxide (TiO2) inverse opal, a well-ordered nanoporous media, has a good potential in light-matter enhancement application. In this work, the fabricated TiO2 inverse opal structures were prepared by well-ordered template from convective deposition. This measured photonic bandgap was shorter in wavelength from the theoretical prediction of the perfect well-ordered pore structure due to structural shrinkage and incomplete matrix fill. Shorter lattice distance from shrinkage and lower refractive index of matrix from incomplete-filled structure resulted in higher eigen energies of photonic crystal. The scanning electron microscope images indicated that the pore size of TiO2 inverse opal was reduced around 39% from the initial template size. Additionally, to explore the detail on photonic bandgap shift of deformed inverse opal, the photonic band-structures and density of states (DOS) spectra under variation of refractive index and fill fraction were evaluated by plane-wave expansion method. It was found that the zero DOS range has a narrow bandwidth at low fill fraction and refractive index of the matrix which agreed with the perturbation theory on the Hermitian Maxwell eigenvalue problem.
KW - Photonic bandgap
KW - Photonic density of states
KW - Plane-wave expansion method
KW - TiO inverse opal
UR - http://www.scopus.com/inward/record.url?scp=85133532270&partnerID=8YFLogxK
U2 - 10.1016/j.matpr.2022.06.399
DO - 10.1016/j.matpr.2022.06.399
M3 - Article
AN - SCOPUS:85133532270
SN - 2214-7853
VL - 66
SP - 3174
EP - 3177
JO - Materials Today: Proceedings
JF - Materials Today: Proceedings
ER -