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Ningyuan Nie

Publications and source records attributed to Ningyuan Nie.

2 recordsLinked to original sources

Topology-Enabled Switchable Unidirectional Radiative Band in a Bilayer Photonic Crystal

Controlling how an open photonic system exchanges energy with its environment-and in particular how it radiates into the far field-is a cornerstone of non-Hermitian wave physics and a key enabler for directional photonic functionalities. Here, we propose a new route to robust unidirectional emission based on the non-Hermitian hybridization of resonances localized in spatially separated layers of a hetero-bilayer photonic crystal. By tailoring the interlayer coupling, we engineer hybrid photonc bands that exhibit strong unidirectional radiation across a broad spectral and momentum range while maintaining theoretically high quality factors. This asymmetric emission is organized by a topological vortex in a pseudo-polarization field defined from the front/back intensity imbalance, which endows the directionality with robustness against perturbations. We further show that, by tuning the surrounding refractive index, this singularity can be displaced in parameter space, enabling reversible switching of the emission direction and a reconfigurable far-field response. This framework opens perspectives for topological photonic sensing and for directional and switchable light sources, including unidirectional lasing supported by high-quality-factor modes.

physics.optics↗

Bioadhesive Hydrogel Flexible Laser for Sweat Sensing based on Liquid Crystal Microdroplets

Flexible photonics offers the possibility to realize wearable sensors by bridging the advantages of flexible materials and photonic sensing elements. Recently, optical resonators have emerged as a tool to improve its over sensitivity by integrating with flexible photonic sensors. However, direct monitoring of multiple psychological information on human skin remains challenging, due to the subtle biological signals and complex tissue interface. To tackle the current challenges, here we developed a functional thin film laser formed by encapsulating multiple liquid crystal microdroplet laser resonators in a flexible hydrogel for monitoring important metabolites in human sweat (lactate, glucose, and urea). The three-dimensional cross-linked hydrophilic polymer serves as the adhesive layer to allow small molecules to penetrate from human tissue to generate strong light-matter interactions on the interface of whispering gallery modes resonators. Both hydrogel and CLC microdroplets were modified specifically to achieve high sensitivity and selectivity. As a proof-of-concept, wavelength-multiplexed sensing and a prototype were demonstrated on human skin to detect human metabolites from perspiration. These results present a significant advance in the fabrication and potential guidance for wearable and functional microlasers in healthcare.

physics.optics↗