Low-temperature optical bistability and multistability in superconducting photonic multilayers with graphene

•Optical bistability and multistability are periodic superconducting photonic multilayers with graphene.•Bandgap edge resonnace states (BERSs) are utilized to enhance the nonlinearity of graphene, resulting in low thresholds at low temperatures.•The thresholds can be decreased as low as several hund...

Full description

Saved in:
Bibliographic Details
Published inResults in physics Vol. 52; p. 106867
Main Authors Ni, Hao, Zhou, Guopeng, Xu, Siliu, Liu, Fanghua, Zhao, Miaomiao, Duan, Shanrong, Zhao, Dong
Format Journal Article
LanguageEnglish
Published Elsevier B.V 01.09.2023
Elsevier
Subjects
Online AccessGet full text

Cover

Loading…
More Information
Summary:•Optical bistability and multistability are periodic superconducting photonic multilayers with graphene.•Bandgap edge resonnace states (BERSs) are utilized to enhance the nonlinearity of graphene, resulting in low thresholds at low temperatures.•The thresholds can be decreased as low as several hundred MW/cm2 by decreasing the chemical potential of graphene or increasing the period number. Optical bistability and multistability are numerically investigated based on periodic superconducting photonic multilayers with graphene in cryogenic environments. Bandgap edge resonances are sensitive to circumstance temperature and can localize the electric field greatly, which is utilized to enhance the nonlinearity of graphene. Consequently, low threshold optical bistability and double-bistability are realized. Optical multistability subsequently arises by increasing the value of circumstance temperature as well. The thresholds of bistability and multistability lower further by decreasing the chemical potential of graphene or promoting the period number of photonic multilayers. The thresholds can be decreased as low as several hundred MW/cm2. The complex structure has a great potential for the development of two- and multiple-valued all-optical switches in low-temperature condition.
ISSN:2211-3797
2211-3797
DOI:10.1016/j.rinp.2023.106867