The study reveals that water molecules at the RNA surface perform tipping motions, known as librations, which influence the structure and dynamics of RNA. The findings show a complex scenario where water fluctuations are transferred to RNA vibrations, essential for avoiding local overheating.
The study observes actual chromatin motions using single-molecule fluorescence spectroscopy approaches, revealing the internal structure and rapid dynamics of chromatin fibers. The researchers found that nucleosomes form short stacks that quickly fall apart and reform within milliseconds.
Researchers at UC Riverside used ultraviolet Raman spectroscopy to investigate the strength of electron spin interactions with phonons in antiferromagnetic nickel oxide crystals. The study sheds light on long-standing puzzles surrounding this material and has important implications for developing spintronic devices.
Astronomers have identified benzonitrile, a specific aromatic molecule, in a cold molecular cloud of the Taurus region using radio spectroscopy. This finding provides insights into the composition of interstellar material and its potential incorporation into new stars and planets.
Developed in Brazil, the device measures temperatures in a wide band between 80-750 kelvin using spectroscopy and has applications in manufacturing and biological processes. It can be used in electronic equipment identification and detection of viral or bacterial infections.
Researchers have developed a new way of organizing nanostructures that enhances Raman spectroscopy, allowing for the detection of molecules at low concentrations. The technique uses silver nanoparticles on nanowires to boost sensitivity, enabling the detection of compounds in nanomolar or even picomolar concentrations.
The new instrument uses micro Raman spectroscopy to detect organic compounds and minerals associated with biological activity. It can analyze samples up to 10 centimeters away with high resolution, significantly improving previous instruments.
Researchers at Georgia State University have developed a blood test that can diagnose two types of cancer, lymphoma and melanoma, using mid-infrared spectroscopy. The test has shown promising results in differentiating between healthy mice and those with tumorous conditions, and could potentially be used for screening humans.
A newly developed technique has allowed researchers to study the reactions of hydrogenases, enzymes that catalyze hydrogen production from algae and bacteria. The study reveals that the iron atoms in these enzymes briefly form a hydride before releasing molecular hydrogen.
Researchers at Lomonosov Moscow State University have developed a new time-resolved spectroscopy method that analyzes quantized light transmitted through samples without femtosecond lasers. This design allows for cheaper analysis and preserves the sample, enabling studies of interactions and processes in substances.
Researchers measured optical and electrical properties of thin carbon nanotube films, finding that they exhibit conductive behavior with few energy barriers. The team used terahertz-infrared spectroscopy to analyze the charge transfer mechanisms in these films.
Physicists at MIT and Princeton University have developed a new technique to map the energy and momentum of electrons beneath a material's surface. By using momentum and energy resolved tunneling spectroscopy, researchers can visualize the band structure of materials, which determines their electrical and optical properties.
The researchers synthesized new ionic and nonionic surfactants that can efficiently collect petroleum on water surfaces. The compounds have been identified as having high surface activity, allowing them to localize thin oil films and limit their distribution.
Researchers found that lichen samples from Moscow and Nizhny Novgorod had higher free radical concentrations than those from cleaner towns. The study suggests using electron paramagnetic resonance spectroscopy to monitor air quality in cities without traditional stations.
A new non-destructive method using Raman spectroscopy has been demonstrated to make abraded serial numbers on polymers visible again. Researchers from INRS have successfully recovered erased information from polycarbonate samples without damaging the material.
Researchers have developed a new technique, diffuse reflectance spectroscopy (DRS), to accurately measure soil carbon levels in coastal wetlands like mangrove forests. This method has higher accuracy and is non-toxic, fast, and inexpensive, making it suitable for large-scale monitoring.
Researchers at Brown University have improved the resolution of laser terahertz emission microscopy (LTEM) to 20 nanometers, enabling detailed imaging of individual nanostructures. This technique can be used to study a wide variety of materials, including semiconductors and perovskite solar cells.
Hubble identifies potential targets for Webb using preparatory science observations, filling observational gaps in the infrared spectrum. Astronomers plan to use Hubble to survey multiple targets and determine the best strategy for Webb, optimizing observation time.
Researchers at U-M have developed a technique to detect chemicals, including explosives and gases, quickly and accurately using a laser-based method. The new approach combines two techniques to speed up detection while preserving accuracy.
Xi-Cheng Zhang and his team have successfully generated terahertz waves from liquid water, a fundamental breakthrough with significant applications in imaging and spectroscopy. The discovery paves the way for non-destructive inspection of objects and potential uses in security screening, medical imaging, and more.
The NASA Mars 2020 rover will feature a new SuperCam instrument with Raman spectroscopy capabilities, allowing it to detect carbon-based signatures of organic materials. The instrument uses a conduction-cooled laser system and can produce 1000 shots in one burst, significantly improving sampling efficiency.
Researchers propose using the element vanadium to verify microfossils for signs of life on Mars. Vanadium can substitute into biological compounds and is found in known biological sources, such as chlorophyll.
Gallium selenide, a 2D semiconductor, loses electrical conductivity in air due to oxidation, hindering its application in nanoelectronic devices. Encapsulating GaSe in vacuum-manufactured devices with protective layers can maintain its optoelectronic properties.
Researchers developed a device to assess mitochondrial oxygenation, predicting cardiac arrest in critically ill heart patients. The device uses resonance Raman spectroscopy to quantify oxygen levels and has been shown to accurately predict cardiac arrest with 97% specificity.
Scientists at NIST have developed a laboratory instrument that can measure the source of carbon in materials, enabling new applications in biofuels and bioplastics industries. The instrument uses cavity ringdown spectroscopy to detect subtle differences in CO2 wavelengths, allowing for accurate measurement of heavy CO2 concentrations.
Researchers have created a terahertz saturable absorber using graphene produced by liquid phase exfoliation, enabling ultrafast lasers with high modulation. The devices have great potential for applications such as time-resolved spectroscopy of gases and molecules, quantum information, and ultra-high speed communication.
Washington University engineer Jr-Shin Li has developed a mathematical formula to design broadband pulse sequences, leading to enhanced signal sensitivity in various quantum experiments. The formula, published in Nature Communications, is the first to use analytical methods, resolving challenges associated with numerical optimization.
Researchers have developed a high-tech method using visible near-infrared diffuse reflectance spectroscopy (vis-NIRS) to analyze soil texture. This technique allows for rapid, cost-effective, and portable measurements of clay, silt, and sand content, providing valuable insights into soil properties.
Scientists at King Abdullah University of Science & Technology (KAUST) have discovered a crystalline material that changes shape in response to light, showcasing its potential applications in novel optoelectronic devices
A new infrared spectroscopy-based blood test may help diagnose ulcerative colitis more effectively and at a lower cost than current colonoscopy methods. Researchers identified nine absorption peaks in mouse blood samples that indicate the presence of the disease.
A new method using molecular spectroscopy enables researchers to extract biochemical profiles containing information about disease progression. The method facilitates improved understanding of the mechanistic processes on molecular and cellular levels that are key to developing diabetes.
The Department of Energy's Office of Science Early Career Research Program has awarded funding to four Oak Ridge National Laboratory researchers. The selected researchers will study exotic nuclei, simulate magnetically confined fusion plasmas and investigate the role of symbiotic relationships between plants and microbes.
Scientists have found a stratosphere on an enormous gas giant exoplanet WASP-121b with an atmosphere hot enough to boil iron. The discovery was made using spectroscopy to analyze the planet's brightness at different wavelengths of light, revealing glowing water molecules.
Researchers developed a new light-trapping sensor that improves spectroscopy's detection capabilities for drugs, bomb-making materials, diseases and other molecules. The device uses SEIRA spectroscopy to absorb up to 81% of infrared light, outperforming previous technologies.
Using infrared spectroscopy and statistical analysis of organic molecules in fossil leaves, researchers have solved long-standing questions about extinct plant relationships. The study reveals that ancient plant species grouped according to well-established botanical relationships, shedding light on their evolution.
Researchers from PTB and JILA develop a laser with an unprecedented 10 mHz linewidth, setting a new world record. The precision of the laser allows for accurate measurements in optical atomic clocks and spectroscopy.
A multimodal optical spectroscopy probe has been developed to detect brain, lung, colon, and skin cancer cells with nearly 100% sensitivity. The probe's high accuracy enables surgeons to minimize cancer cells during surgery, improving patient outcomes and reducing the risk of recurrence.
Researchers successfully improved an ambient-pressure photoelectron spectroscopy instrument using hard X-rays to measure samples under real atmospheric pressure for the first time. This achievement broadens the range of applications for photoelectron spectroscopy, enabling direct examination of reactions between solids and gases.
Scientists at the University of Konstanz and Umea University have successfully generated a structural model of the adenylate kinase enzyme in its closed state. This breakthrough allows researchers to analyze the precise moment when the enzyme is biochemically active, shedding light on its biochemical mechanisms.
Researchers develop ultrafast scanning fluorescence correlation spectroscopy to observe membraneless organelles. The technique reveals low-density, permeable structures, contrary to expected dense packing.
Researchers at Umeå University have successfully mapped the structure and function of a transient enzyme state using X-ray crystallography and NMR spectroscopy. The study reveals that the transient state is essential for enzyme function and provides clues on how enzymes speed up reactions with incredible specificity and efficacy.
Researchers at Cornell University have observed a previously unknown characteristic of water surrounding DNA, revealing a chiral water superstructure that follows the iconic helical structure of DNA. This discovery has significant implications for understanding reactivity and biology in biological systems.
Scientists have developed a non-destructive technique to examine human sperm using Magnetic Resonance Spectroscopy, which may improve diagnosis of fertility problems. The test can distinguish between good and poor sperm populations based on molecular composition differences.
Researchers have developed a technique to continuously monitor the properties of materials exposed to radiation, enabling real-time information about microstructural evolution. This nondestructive and noncontact method uses transient grating spectroscopy to detect changes in thermal and elastic properties.
Researchers at University of Illinois create first significant examples of optical crystallography for nanomaterials, improving precision of nanocrystal engineering and understanding of reactions. The new technique uses absorption spectroscopy to identify crystal type in liquid-dispersed nanomaterials, offering simple, accurate analysis.
Researchers developed a high-throughput fabrication technique to print nanoscale imaging probes onto the tip of glass fibers, accelerating production from months to days. This enables the widespread adoption of nano-optical structures with potential applications in imaging, sensing, and spectroscopy.
Scientists have developed a method to precisely control graphene's electronic transport properties using in-situ Raman spectroscopy. This technique allows for the creation of tailored graphene-based materials with controlled function, enabling their utilization in the semiconductor industry.
Researchers have developed a new microscopic technique to analyze single melanoma cells, which are often irregular and dark, making them difficult to investigate. The technique, using modified photoacoustic spectroscopy, can detect non-uniform cancer cells and track their spread.
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 at the Institute of Physical Chemistry of Poland have demonstrated that increasing light intensity can accelerate chemical reactions by several dozen percent. This discovery has implications for various applications, including microscopic imaging techniques and ultra-fast spectroscopy.
A new laser-induced breakdown spectroscopy (LIBS) approach refines detection of mercury in landfill leachate, offering rapid results without generating hazardous chemicals. The technique's sensitivity is improved through a double-pulse setup, allowing for the detection of lower mercury concentrations.
The EU has awarded a €900,000 grant to the Helmholtz Institute Freiberg for Resource Technology to develop new technologies for sustainable mineral exploration and efficient resource extraction. The project aims to advance drone-based exploration methods and multisensor drones to map natural rock samples and drill cores.
Researchers at Linköping University developed a non-invasive magnetic resonance spectroscopy test to diagnose fatty liver disease. The new method can detect liver damage with as little as 3% fat content, increasing sensitivity and accuracy.
Researchers capture snapshots of electronic structure during a transient state of a reaction using femtosecond pulses of X-ray light on a tabletop apparatus. The study provides insights into the ring-opening reactions of cyclic molecules, relevant to photobiological synthesis and optoelectronic technologies.
Scientists at Ruhr-University Bochum have established a new process for identifying biomarkers in cancer diagnosis, utilizing infrared spectroscopy. The method enables precise analysis of protein changes in tumor tissue, facilitating personalized therapy.
Researchers at Kyoto University have developed a novel imaging technique using gamma-ray spectroscopy to visualize and quantify ground-level radiation. This method enables the detection of previously unknown contamination hotspots around the Fukushima Daiichi Nuclear Power Plant, allowing for more effective decontamination efforts.
Researchers at Los Alamos National Laboratory have made breakthrough discoveries on quantum dot materials using ultrafast electro-optical spectroscopy. The study reveals the cause of a significant voltage drop in quantum dots, allowing for potential improvements in device efficiency.
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.
The study used Fourier transform infrared spectroscopy to detect biomolecular changes in white blood cells stimulated with bacterial components, revealing a threefold increase in microvesicle production and altered lipid content.
Researchers at Jülich's Peter Grünberg Institute have created a new method for high-resolution electron energy loss spectroscopy (HREELS) that allows for fast and efficient measurements. This innovation enables scientists to investigate unstable or sensitive samples, paving the way for breakthroughs in materials analysis.