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Shiqing Cai

Publications and source records attributed to Shiqing Cai.

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Pulsed heterodyne Brillouin detection enables high-resolution epi-detected biomechanical microscopy and endoscopy

Brillouin microscopy enables non-contact, three-dimensional mapping of viscoelasticity in living systems, yet two long-standing limitations have constrained its biological reach: the lack of high-spectral-resolution epi-detection and the absence of practical fiber-compatible implementations. Here we introduce pulsed heterodyne Brillouin detection (PHBD), a coherent time-domain scheme addressing both challenges. By combining high-peak-power pulsed excitation with shot-noise-limited detection, PHBD reduces the optical dose by approximately two orders of magnitude relative to continuous-wave heterodyne approaches. In an epi-microscope configuration, PHBD attains a spectral resolution of 27 MHz, a tenfold improvement over state-of-the-art Brillouin microscopes, enabling high-specificity, low-phototoxicity imaging of live cells and complex tissues. In an endoscopic configuration, coherent gating rejects parasitic Brillouin background from the delivery fiber, accelerating acquisition by two to three orders of magnitude over previous fiber-optic Brillouin endoscopes. Together, these capabilities establish a unified platform for single-ended, fiber-compatible Brillouin biomechanics, extending mechanical imaging and spectroscopy from cells to deep tissues via minimally invasive probes.

physics.optics

Dispersive gains enhance wireless power transfer with asymmetric resonance

Parity-time symmetry is a fundamental concept in non-Hermitian physics that has recently gained attention for its potential in engineering advanced electronic systems and achieving robust wireless power transfer even in the presence of disturbances, through the incorporation of nonlinearity. However, the current parity-time-symmetric scheme falls short of achieving the theoretical maximum efficiency of wireless power transfer and faces challenges when applied to non-resistive loads. In this study, we propose a theoretical framework and provide experimental evidence demonstrating that asymmetric resonance, based on dispersive gain, can greatly enhance the efficiency of wireless power transfer beyond the limits of symmetric approaches. By leveraging the gain spectrum interleaving resulting from dispersion, we observe a mode switching phenomenon in asymmetric systems similar to the symmetry-breaking effect. This phenomenon reshapes the distribution of resonance energy and enables more efficient wireless power transfer compared to conventional methods. Our findings open up new possibilities for harnessing dispersion effects in various domains such as electronics, microwaves, and optics. This work represents a significant step towards exploiting dispersion as a means to optimize wireless power transfer and lays the foundation for future advancements in these fields.

physics.app-ph