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Olga Koval

Publications and source records attributed to Olga Koval.

2 recordsLinked to original sources

Direct observation of photonic spin Hall effect in Mie scattering

The photonic spin Hall effect (PSHE), a hallmark of spin-orbit interaction of light, has long been considered a promising route toward spin-controlled functionalities in nanophotonics. Yet, its practical realization has been severely limited by the inherently weak spin-orbit coupling in typical systems, resulting in vanishingly small transverse shifts and extremely low scattering efficiency. This fundamental trade-off has rendered the PSHE observable only through complex weak measurement protocols and signal amplification-approaches that come at the cost of further intensity loss, particularly in nanoscale systems. In this work, we overcome this longstanding challenge by introducing a novel mechanism based on symmetry breaking and mode coupling in a standalone scatterer, which unlocks a regime of Friedrich-Wintgen superscattering with strong near-field spin-orbit interaction. This allows for simultaneous enhancement of both the photonic spin Hall shift and the far-field scattering intensity-boosting the latter by nearly two orders of magnitude compared to conventional dipolar particles. Through tailored multipolar interference, the PSHE is made accessible at experimentally convenient angles, enabling post selection-free detection. We report the first direct experimental observation of the PSHE from a single superscattering particle, achieved in the microwave regime via polarization-resolved far-field measurements. Our findings not only validate a new physical pathway for enhancing spin-dependent light-matter interactions, but also establish a robust, scalable platform for spin-based photonic technologies. This breakthrough opens new avenues in precision optical metrology, advanced imaging, LIDAR systems, and integrated photonic circuitry, bridging a critical gap between fundamental spin optics and real-world applications.

physics.optics

Air cold atmospheric plasma with patterns for anaplastic squamous cell carcinoma treatment

In recent years, cold atmospheric plasma (CAP) using inert gas has been successfully applied for biomedicine, such as sterilization, wound healing, skin diseases, and tumor treatment. Here, we reported air cold atmospheric plasma with three different patterns (I. Non: basic square grid structure; II. Square: basic square grid structure + square node; III. Circle: basic square grid structure + circle node) for anaplastic squamous cell carcinoma treatment (VX2 cell line). Various plasma diagnostic techniques were applied to evaluate the physics of air CAP with patterns such as discharge voltage, plasma initial generating process, plasma temperature, and optical emission spectroscopy (OES). The direct effects of air CAP with patterns on anaplastic squamous cell carcinoma treatment (VX2 cell line) were investigated in vitro. We also studied the ROS (reactive oxygen species) and RNS (reactive nitrogen species) generation in cultured media released from VX2 cells after the treatment of air CAP with patterns. The results showed that the air CAP with circle-pattern generated more active substances during at 60s treatment time, which resulted in a higher death rate of VX2 cells. These initial observations establish the air CAP with patterns as potential clinical applications for cancer therapy.

physics.med-ph