Researchers have developed an implantable optrode array capable of exciting below-surface neurons in large mammal brains. The new device addresses challenges in optical stimulation and neuroscience, enabling studies to link neural activity to specific cognitive functions.
Researchers developed a new method using frequency domain measurement in functional near infrared spectroscopy (fNIRS), improving image quality and spatial resolution. This innovation enables enhanced brain imaging with greater depth sensitivity, paving the way for more accurate neuroimaging applications.
Researchers have developed an all-optical diffractive neural network that achieves unprecedented levels of inference accuracy, closing the performance gap with electronic neural networks. The design incorporates a differential detection scheme, which enables specialized sub-networks to recognize specific object classes.
Researchers have demonstrated a new imaging modality that accurately evaluates plaque-based cholesterol, allowing for more timely treatment of atherosclerosis. The technology combines laser photoacoustics and frequency-domain signal processing to detect cholesterol in arterial plaque.
The new bimetalic nanoantenna design generates three times more thermoelectric voltage and is 1.3 times more efficient than classic dipole nanoantennas for solar energy harvesting. This innovation has potential applications in waste heat energy harvesting, sensing, and other fields.
Researchers have developed a new methodology that allows solid state lighting to measure and self-adjust its spectral power distribution based on environmental conditions. This enables the system to maintain consistency and stability over time, making it suitable for applications requiring precise light spectra.
Researchers develop 3D-printed coronary phantoms to validate CT-FFR diagnostic software, improving non-invasive CAD risk assessment. The phantom models replicate patient vasculature, allowing for physiological testing and efficient validation of CT-FFR estimation methods.
The inaugural issue of Advanced Photonics showcases significant research across optics and photonics technologies, including light-sheet microscopy and deep learning for digital holography. The journal aims to provide a trusted source of groundbreaking research in optics and optical technologies.
The DeepLesion database is the largest publicly available medical image dataset, containing over 32,000 annotated lesions from 10,000 case studies. It has tremendous potential to jump-start the field of computer-aided detection and diagnosis.
Researchers estimate oil spill thickness/volume using satellite observations, enabling more accurate monitoring and response efforts. The study provides critical insights for assessing the impact of oil spills on marine and coastal resources.
Researchers have reported significant advancements in measuring blood flow velocity in deep tissues using a handheld ultrasound probe. The new technique, known as photoacoustic flowmetry, has the potential to bring diagnostic capabilities closer to clinical use.
The special section on OCT published by SPIE Journal of Biomedical Optics highlights its continued relevance in medicine and biology. New opportunities emerge in areas like gastroenterology, dermatology, and oncology.
Researchers successfully identified pulmonary metastases in a patient with osteosarcoma, making it easier to locate tumors for resection. The technique utilizes targeted fluorescence and binds to specific molecular markers, allowing for the detection of small or hard-to-locate nodules.
The Journal of Applied Remote Sensing has awarded three exceptional articles for their outstanding contributions to remote sensing research and applications. The winning articles focus on ice cloud measurement, a neural-network architecture for scene classification, and through-wall imaging.
A new framework allows physicians to tailor radiation dose to achieve optimal image quality for pediatric patients. The framework considers the interdependency of quality, dose, and size, providing a basis for optimizing individual scan parameters.
The special section aims to facilitate consumer-driven advancements in wearable virtual system applications, including automotive, industrial, and military vision systems. Papers describe various approaches and technologies to address challenges such as latency, acuity, field-of-view, fashion, and donning/doffing.
Researchers developed a technique using multimodal autofluorescence and light scattering to evaluate kidney function after ischemic injury. The study suggests that variations in tissue microstructure, fluorophore emission, and blood absorption spectral characteristics contribute to the behavior of recorded signals.
Researchers developed a laser phosphor display that can absorb ambient light, generating power while displaying high-resolution images. The system achieves up to 71% energy harvesting, but face challenges with ghost images and design optimization.
Researchers used cold pressor tests to assess the relationship between pain threshold and tolerance, and the associated hemodynamic response in the cerebral cortex. The study found no gender difference in hemodynamic responses to pain but sheds light on hidden differences in biological variables in the human brain.
A new potassium-sensitive fluorescence-imaging method enables accurate measurement and spatiotemporal mapping of the brain, shedding light on chemical activity within it. The nanosensor has improved spatial resolution, allowing for investigation into potassium micro-domains around activated neurons.
A special section in the Neurophotonics journal presents research in super-resolution microscopy, revealing new techniques to study neural structure and function. The findings have significant implications for understanding neurodegenerative diseases such as Alzheimer's and Parkinson's.
Optical probes have been developed to overcome light scattering in deep-brain imaging, allowing for precise stimulation of neural circuits. This breakthrough enables researchers to control individual neurons with remarkable resolution, opening up new avenues for neuroscience and neuromedical research.
A new technique for real-time temperature monitoring during cryotherapy procedures has been reported, using red blood cells as temperature sensors to convert optoacoustic images to temperature maps. This approach potentially prevents noncancerous tissue from being destroyed or damaged during cryotherapy.
A new imaging device uses long-wavelength infrared imaging to detect small thermal radiation emitted from dental caries, allowing for earlier diagnosis and potential reversal. The tool has the benefits of being noncontact, noninvasive, and low-cost, with great potential as a commercially viable diagnostic imaging device.
Researchers have developed a new approach to destroying hazardous space debris using laser impulses. By pushing the debris into the Earth's atmosphere, the debris can be destroyed, posing less of a threat to active communication and navigation satellites used by billions of people on Earth.
Near-infrared spectroscopy technologies offer improved quality of life through portable, sensitive, and non-invasive diagnosis and treatment of diseases. The latest advances enable researchers to investigate complex illnesses and dysfunctions.
A new concept in space telescope design proposes a modular structure and an assembly robot to build extremely large telescopes in space. The robotic system would enable tasks to be performed without astronaut fatigue.
Researchers have developed new time-domain diffuse optics systems that provide deeper insights into human bodies using light. These systems have the potential to detect and identify tissue components, including organs and functions previously unreachable with traditional diagnostic devices.
Scientists at JPL have designed a high-throughput pushbroom imaging spectrometer that can provide Landsat swath and resolution with better than 10 nm per pixel spectral resolution. This design enhances the science potential of Landsat, allowing for better understanding of glacial melt, urbanization, and water sources.
Researchers used OCT to visualize and assess biofilm on intubated endotracheal tubes in vivo, detecting the presence of pneumonia-related bacteria. The study showed that OCT can measure biofilm thickness and gather information about its extent, potentially leading to reduced infection rates.
The Journal of Biomedical Optics special section honors Osamu Shimomura's work on green fluorescent protein, enabling researchers to observe molecular-level activity in live cells. Recent studies detail new applications of protein photonics, including multicolor imaging and monitoring cellular magnesium levels.
Researchers have developed a new noninvasive light-based imaging technology that can see inside the living brain, providing a tool to study how diseases change brain tissue over time. The method doubles the image depth range, enabling examination of acute and chronic morphological or functional vascular changes in the deep brain.
Scientists applied remote sensing and GIS to study bearded capuchin monkey habitats in northeastern Brazil, finding that distance to human influence and elevation are key landscape characteristics. The study's findings inform conservation efforts for this species' unique stone tool use.
The new augmented microscopy technology overlays real and computer-generated images to help surgeons visualize blood flow, cancerous tissue, and anatomical structures more accurately. This innovation aims to improve the translation of research into clinical practice, particularly in neurosurgery and laser surgery.
Researchers at Pohang University of Science and Technology have made significant advancements in organic light-emitting diodes (OLEDs) for solid-state lighting. The team developed flexible electrodes using graphene, conducting polymers, and silver nanowires, which demonstrated good electrical, optical, and mechanical performance.
Researchers at University of Illinois develop a data-based method to diagnose breast cancer using spatial light interference microscopy, promising fast and accurate results. The technique uses quantitative imaging parameters to analyze breast tissue lesions, overcoming limitations of manual inspection.
Researchers used OCT to study brain vascular imaging during real-time experimental stroke, revealing high-resolution images of in vivo vascular networks and biologically initiated rescue mechanisms. This could provide guidance for clinicians treating stroke patients.
Medical laser technologies hold promise for various applications, including iron deficiency screening, breast cancer treatment, glioblastoma multiforme surgery, nasal airway obstruction relief, and varicose vein treatment. However, their translation into clinical practice is hindered by multiple barriers that need to be overcome.
The Journal of Biomedical Optics publishes a special section on advances in biomedical optics, celebrating the United Nations-declared International Year of Light. Papers report new methods for noninvasive disease screening, diagnosis, and treatment monitoring using light-based technologies.
Recent advances in voltage-sensitive dye imaging have paved the way for real-time functional imaging of live tissue electrical activity. Research by Larry Cohen and his team has enabled this frontier field, with recent articles demonstrating its legacy.
Scientists have developed a new light-based tool to monitor and improve swimming technique and aid in muscle recovery. The technology uses near-infrared spectroscopy to measure muscle oxygenation underwater, providing valuable feedback for swimmers and helping track rehabilitation progress.
Researchers have developed a method to extract audio information from high-speed video recordings by detecting vibrations caused by sound waves. The technique, reported in the SPIE journal Optical Engineering, uses an image-matching process based on vibration from sound waves and can recover spoken words from videos.
Researchers have developed bioinspired materials with potential applications in detecting heavy metals and fostering faster surgery recovery time. The materials interact with light to enable applications in therapy, biosensing, and bioimaging.
Researchers develop new single-photon detection strategies with high accuracy enhancements, enabling precise timing resolution and fast reset times. New technologies improve space missions and quantum optics, advancing the field of single-photon devices.
Researchers are studying nature's secrets to develop efficient light-based technologies. From seashells to spider wings, scientists are discovering inspiration in the natural world to create innovative solutions for energy, healthcare, and communications.
The new journal Neurophotonics adds to the rapidly growing understanding of the brain through advanced optical methods and applications. Key findings include photoacoustic tomography techniques that display brain activity with high accuracy, and novel technologies for brain energy metabolism.
A new special section in Optical Engineering highlights optics research for human vision improvement. The studies showcase new techniques for earlier disease diagnosis and more accurate guidance for treatment.
The Journal of Medical Imaging has launched with freely accessible articles on new research in cancer diagnosis, image quality assessment, and other topics. The journal covers fundamental and translational research in medical imaging, spanning physics, tomographic reconstruction algorithms, computer-aided diagnosis, and more.
Researchers developed an external laser device to detect alcohol vapors inside moving cars, reducing accidents caused by drivers under the influence. The device can identify cars with intoxicated drivers or passengers and alert authorities, potentially decreasing traffic checks.
A team of scientists created wearable technology that helps surgeons visualize cancer cells by making them glow blue, reducing the need for follow-up surgeries and associated costs. The innovation uses a custom video display, head-mounted device, and targeted molecular agent to distinguish cancer cells from healthy tissue.