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FLASH, a Light Device for Species-Specific Behavioral Control of Insects
FLASH (Fluctuating Lights of Actuatable Spectral Heft) is a novel multi-LED light device designed for species-specific behavioral control of insects as an eco-friendly alternative to chemical pesticides.
Multispectral Materials Inspired By Squid Iridophore Refractive Index Profiles
A bioinspired optical material system that enables vibrant, tunable, and durable color modulation across visible and infrared spectrums
Holey Silicon-Based Thermopiles For High-Sensitivity Broadband Thermal Detection
A novel thermopile technology using holey silicon enables highly sensitive broadband thermal detection across the entire electromagnetic spectrum.
Method Of Microbubble Resonator Fabrication
An innovative technique for creating high-sensitivity Whispering Gallery Mode (WGM) sensors through advanced microbubble resonator fabrication.
Correction Of Eye Diseases With Optical Metasurfaces
A revolutionary optical technology designed to restore peripheral vision in patients with eye diseases through the integration of optical metasurfaces on eyewear.
Imaging The Surfaces Of Optically Transparent Materials
A breakthrough imaging technique that provides high-resolution visualization of optically transparent materials at a low cost.
Octopus-Inspired Camouflage and Signaling Systems
A groundbreaking technology that mimics the dynamic color-changing functionality of the blue-ringed octopus for applications in camouflage, signaling, and beyond.
SPECTRAL DOMAIN FUNCTIONAL OCT and ODT
This technology revolves around Optical Coherence Tomography (OCT), a noninvasive imaging method that provides detailed cross-sectional images of tissue microstructure and blood flow. OCT utilizes either time domain (TDOCT) or Fourier domain (FDOCT) approaches, with FDOCT offering superior sensitivity and speed. Doppler OCT combines Doppler principles with OCT to visualize tissue structure and blood flow concurrently. Additionally, polarization-sensitive OCT detects tissue birefringence. Advanced methods aim to enhance the speed and sensitivity of Doppler OCT, crucial for various clinical applications such as ocular diseases and cancer diagnosis. Swept source FDOCT systems further improve imaging capabilities by increasing range and sensitivity. Overall, this technology represents significant advancements in biomedical imaging, offering insights into both structural and functional aspects of tissue physiology.
Sinter-Free Low-Temperature 3D-Printing Of Nanoscale Optical Grade Fused Silica Glass
Researchers at UC Irvine have developed a new method to 3D-print free-form silica glass materials which produces products with unparalleled purity, optical clarity, and mechanical strength under far milder conditions than currently available techniques. The novel processing method has potential to radically transform microsystem technology by enabling development of silica-based microsystems.
Imaging of cellular immune response in human skin
This patent application describes methods for non-invasive, label-free imaging of the cellular immune response in human skin using a nonlinear optical imaging system.
Advanced Imaging by LASER-Trained Algorithms Used to Process Broad-Field Light Photography and Videography
Diagnosing retinal disease, which affects over 200 million people worldwide, requires expensive and complicated analysis of the structure and function of retinal tissue. Recently, UCI developed a training algorithm which, for the first time, is able to assess tissue health from images collected using more common and less expensive optics.
Hollow Core Optical Waveguiding Enabled By Zero-Index Materials
Researchers at UC Irvine have developed a novel optical fiber technology that uses newly developed “zero-refractive index” material as a guiding medium, overcoming the significant limitations of conventional optical fiber where light properties are limited by glass core material. This novel technology will dramatically improve optical communication transmission speed and power by orders of magnitude.
Dynamic Target Ranging With Multi-Tone Continuous Wave Lidar Using Phase Algorithm
Researchers at the University of California, Irvine have developed a novel algorithm that is designed to be integrated with current multi-tone continuous wave (MTCW) lidar technology in order to enhance the capability of lidar to acquire range (distance) of fast-moving targets as well as simultaneous velocimetry measurements. This technology revolutionizes remote sensing by providing high precision, single-shot simultaneous ranging and velocimetry measurements without the need for sweeping.
Advanced Imaging By LASER-Trained Algorithms Used To Process Broad-Field Light Photography and Videography
Mapping Ciliary Activity Using Phase Resolved Spectrally Encoded Interferometric Microscopy
Researchers at UCI have developed an imaging technique that can monitor and measure small mobile structures called cilia in our airways and in the oviduct. This invention will serve as a stepping stone for study of respiratory diseases, oviduct ciliary colonoscopy and future clinical translations.
Noninvasive Method and Apparatus for Peripheral Assessment of Vascular Health
UCI researchers introduce a medical device which noninvasively and accurately monitors vascular health metrics such as endothelial function, arterial stiffness, and blood pressure.
Laser-Induced Confocal Microscope for Dielectrophoretic Fluorescence-Activated Droplet Sorting
A system that enhances and accelerates enzyme evolution process for synthetic biology applications using microfluidic technology and fluorescent sensors.
Multiple-absorbers offer increased solar conversion efficiencies for artificial photosynthesis
Researchers at UCI have, for the first time, developed a method for modeling the efficiencies of artificial photosynthetic devices containing multiple light absorbers. As these devices more closely parallel naturally occurring photosynthesis, they offer higher performance than standard single-absorber devices.
Combination of a drug with low level light therapy (LLT) for treatment of wounds
This is a combination of a drug and light technology for the purpose of accelerating the healing of wounds on the skin, ulcers, and elsewhere in the body. Both methods have been shown to accelerate wound healing, and combining the two will potentially result in more rapid healing than either would alone.
Multi-Tone Continuous Wave LIDAR
Object detection and ranging is a fundamental task for several applications such as autonomous vehicles, atmospheric observations, 3D imaging, topography and mapping. UCI researchers have developed a light detection and ranging (LIDAR) system which makes use of frequency modulated continuous waves (FMCW) with several simultaneous radiofrequency tones for improved speed of measurement while maintaining robust spatial information.
Nano Biosensing System
Metabolites can provide real-time information about the state of a person’s health. Devices that can detect metabolites are commercially available, but are unable to detect very low concentrations of metabolites. Researchers at UCI have developed surfaces that use nanosensors to detect much lower concentrations of such metabolites.
Polarization mode dispersion-based physical layer key generation for optical fiber link security
Researchers at UCI have developed a novel method for encrypting optical communications, which is simpler, less expensive, and less computationally-demanding than standard solutions.
Security Key Generation Technique for Inter-Vehicular Visible Light Communication
The invention is a technique that provides a novel, reliable and secure cryptography solution for inter-vehicular visible light communication. Through combining unique data as the road roughness and the driving behavior, a symmetric security key is generated for both communicating vehicles. As the data used is unique to the communicating vehicles only, the generated keys are thus unique, securing a reliable communication channel between both vehicles.
In-Situ TEM Holder With STM Probe And Optical Fiber
Researchers at UCI have developed a fully integrated sample mount for the simultaneous high-resolution imaging and electronic and optical characterization of thin film devices.
A Combined Microfluidic and Fluorescence Lifetime Imaging(FLIM) Platform to Identify Mammalian Circulating Cancer Cells in Whole Blood
Separating and classifying circulating cancer cells from whole blood using a single cell trap microfluidic platform coupled with label free fluorescence life time imaging.