High-Density and high-efficiency optical coupling packaging for 100
The ever-increasing demands for computing power are beyond the capabilities of pluggable optical modules. Higher connectivity bandwidth can be achieved in a sma.
Long-distance coupling between two optical cavities is enabled through a taper fiber. Phase shift and loss induced by the taper lead to complex coupling strength and hence observation of various distinctive cou.
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The ever-increasing demands for computing power are beyond the capabilities of pluggable optical modules. Higher connectivity bandwidth can be achieved in a sma.
When atoms or molecules are placed in an optical cavity, they can coherently exchange photonic energy with optical cavity vacuum fields, entering the strong coupling interaction regime.
Mode coupling is a phenomenon where energy is transferred between different propagation modes of a waveguide or an optical cavity. It is analyzed by
To conclude, we have demonstrated a taper-assisted coupling between two optical cavities featuring complex coupling strength, which supports distinctive coupling conditions and
In this work, we present a universal framework for pulse-comb synthesis under cavity EO modulation, where coupling strength and modulation
This platform opens new avenues for cavity-QED experiments, with potential applications spanning cavity-mediated interactions between distinct atomic species, interconnects for quantum
This surprising lifetime enhancement, which results from the interference of decay channels, showcases the use of multimode strong coupling as a general strategy to control extrinsic
Here, we report a method to purely modulate the coupling rate by exploiting an optical analogue of superradiance in an array of bidirectionally interacting microring cavities.
In this work, we present a universal framework for pulse-comb synthesis under cavity EO modulation, where coupling strength and modulation bandwidth far exceed the cavity''s free spectral...
Mode coupling is a phenomenon where energy is transferred between different propagation modes of a waveguide or an optical cavity. It is analyzed by decomposing light into the modes of an undisturbed
Eficient coupling of light from an optical cavity to a single-mode fiber is required in a range of quantum technologies. In this work we consider the coupling of a high-finesse macroscopic Fabry-Pérot (FP)
Coupled systems of optical waveguides and micro cav-ities provide a powerful platform for integrated optical components with applications ranging from optical ex-periments to communication networks.