| Literature DB >> 31969981 |
Jingnan Yang1,2, Chenjiang Qian1,2, Xin Xie1,2, Kai Peng1,2, Shiyao Wu1,2, Feilong Song1,2, Sibai Sun1,2, Jianchen Dang1,2, Yang Yu1,2, Shushu Shi1,2, Jiongji He1,2, Matthew J Steer3, Iain G Thayne3, Bei-Bei Li1, Fang Bo4, Yun-Feng Xiao5, Zhanchun Zuo1,2, Kuijuan Jin1,2,6, Changzhi Gu1,2, Xiulai Xu1,2,6.
Abstract
In single microdisks, embedded active emitters intrinsically affect the cavity modes of the microdisks, resulting in trivial symmetric backscattering and low controllability. Here we demonstrate macroscopic control of the backscattering direction by optimizing the cavity size. The signature of the positive and negative backscattering directions in each single microdisk is confirmed with two strongly coupled microdisks. Furthermore, diabolical points are achieved at the resonance of the two microdisks, which agrees well with theoretical calculations considering the backscattering directions. Diabolical points in active optical structures pave the way for an implementation of quantum information processing with geometric phase in quantum photonic networks.Entities:
Keywords: Micro-optics; Microresonators
Year: 2020 PMID: 31969981 PMCID: PMC6957493 DOI: 10.1038/s41377-020-0244-9
Source DB: PubMed Journal: Light Sci Appl ISSN: 2047-7538 Impact factor: 17.782
Fig. 1Schematics of two coupled cavities with backscattering and their eigenvalues.
a Schematics of two pairs of reversal states with backscattering. The red arrows refer to +, while the blue arrows refer to −. b Four eigenvalues with different values of J. The pink lines refer to results with J = J. The green lines refer to results with J = −J.
Fig. 2Correlation between phases of two microdisks at DP.
a One eigenspace with different values of γ, J = −J = J and ϕ = ϕ = 0. This eigenspace refers to the upper green line in Fig. 1 b. b Eigenspaces and correlations between two microdisks. The black dots refer to trivial systems. The blue line refers to a DP without backscattering. The red lines refer to two DPs with backscattering for γ = 0.30 π with a phase shift. The solid red line corresponds to the red line in (a) and a point in the upper green line in Fig. 1 (b). The dashed red line corresponds to a point in the bottom green line in Fig. 1 (b).
Fig. 3Characteristics of cavity modes with backscattering.
a SEM images of a single microdisk and double microdisks. The excitation laser is labeled by the green arrow. b The redshift of the cavity modes with increasing excitation power. c The wavelengths, linewidths, and splitting between the two peaks extracted from Lorentzian multipeak fitting. d Statistics of the linewidth differences between the split modes. The resolution of the spectrometer is 0.1 nm. e Statistics of the splitting. A splitting of 1000 μeV corresponds to 0.80 nm at a wavelength of 1000 nm. f Distribution of the splitting and half-Gaussian fitting.
Fig. 4Excitation-power-dependent PL maps of the coupled cavities and the fitted results with different values of J.
The resonance ω = ω is marked by purple dashed lines. a J = 0 and J ≠ 0. b, c JJ > 0. c J = J. d JJ < 0 and J = −J. The DPs occur on resonance.