TY - JOUR
T1 - Deterministic relation between thermal-phonon dressings and a non-Hermitian multi-Fano interferences router in ion-doped microcrystals
AU - Fan, Huanrong
AU - Raza, Faizan
AU - Mujahid, Anas
AU - Li, Peng
AU - Wang, Yafen
AU - Tang, Haitian
AU - Usman, Muhammad
AU - Li, Bo
AU - Li, Changbiao
AU - Zhang, Yanpeng
N1 - Publisher Copyright:
© 2023 The Author(s)
PY - 2024/3
Y1 - 2024/3
N2 - The multi-Fano interference, which is obtained through the simultaneous acquisition of bright and dark states in different phase transitions of Eu3+ : BiPO4 (7 : 1, 6 : 1, 1 : 1, and 0.5 : 1) and Eu3+ : NaYF4 (1 : 1/4) crystals, were reported in this work. Multidressed spontaneous four-wave mixing and multidressed fluorescence (multiorder) were adopted to optimize the strong photon–phonon nested dressing effect, which results in more obvious multi-Fano interference. Firstly, the multi-Fano is produced through interference in continuous and multibound states. Secondly, five multi-Fano dips are originated from the nested five dressings (one photon and four phonons) under symmetrical splitting of 7F1 energy level. It is found that the pure H-phase (0.5 : 1) sample exhibits the strongest photon–phonon dressed effect (five Fano dips). Further, high-order non-Hermitian exceptional points in multi-Fano interference were investigated by adjusting the ratio of Rabi frequency to dephase rate through nested photon and phonon dressing. The experimental results are validated by theoretical simulations, which may be applied to designing optoelectronic devices such as non-Hermitian multi-Fano interferences (multichannel) router.
AB - The multi-Fano interference, which is obtained through the simultaneous acquisition of bright and dark states in different phase transitions of Eu3+ : BiPO4 (7 : 1, 6 : 1, 1 : 1, and 0.5 : 1) and Eu3+ : NaYF4 (1 : 1/4) crystals, were reported in this work. Multidressed spontaneous four-wave mixing and multidressed fluorescence (multiorder) were adopted to optimize the strong photon–phonon nested dressing effect, which results in more obvious multi-Fano interference. Firstly, the multi-Fano is produced through interference in continuous and multibound states. Secondly, five multi-Fano dips are originated from the nested five dressings (one photon and four phonons) under symmetrical splitting of 7F1 energy level. It is found that the pure H-phase (0.5 : 1) sample exhibits the strongest photon–phonon dressed effect (five Fano dips). Further, high-order non-Hermitian exceptional points in multi-Fano interference were investigated by adjusting the ratio of Rabi frequency to dephase rate through nested photon and phonon dressing. The experimental results are validated by theoretical simulations, which may be applied to designing optoelectronic devices such as non-Hermitian multi-Fano interferences (multichannel) router.
KW - Multi-Fano interferences
KW - Non-Hermitian
KW - Router
KW - Thermal-phonon dressings
UR - https://www.scopus.com/pages/publications/85185892194
U2 - 10.1016/j.chip.2023.100077
DO - 10.1016/j.chip.2023.100077
M3 - 文章
AN - SCOPUS:85185892194
SN - 2709-4723
VL - 3
JO - Chip
JF - Chip
IS - 1
M1 - 100077
ER -