Researchers at Arizona State University have developed a material that can detect and heal cracks in structural materials, increasing toughness by 11 times. The innovative 'autonomous adaptive structure' uses shape-memory polymers to mimic biological systems' healing traits.
Researchers have developed a micromirror-based beam steering system that can precisely control individual atoms using tiny laser pulses. This technology has the potential to enable more efficient and accurate quantum computing applications.
A study reviews nuclear power economics and concludes that the current fuel cycle is unsustainable due to uncertainty about waste management. Reprocessing and recycling of spent fuel is an alternative, but its implementation is controversial due to proliferation risks and high costs.
Researchers at Rensselaer Polytechnic Institute developed a technique to probe the temperature rise in the vicinity of RF-actuated nanoparticles. The study found that the measured temperature rise was consistent regardless of whether the sensors were mixed with or covalently bonded to the nanoparticles.
Researchers have developed a new technique using rotating light to observe nuclei indirectly via orbiting electrons, providing complementary information to conventional NMR. This method uses Optical Faraday Rotation and can magnify the signal by creating a long optical path in a short tube.
Researchers have successfully fabricated a hybrid system using nano-diamonds and photonic crystals, paving the way for multi-qubit systems on a single chip. This achievement brings the dream of a quantum computer closer to reality, with potential applications in various fields of science and engineering.
Researchers at US Naval Academy have designed novel blade modifications inspired by humpback whale flippers to improve turbine performance in converting low-velocity tidal flow energy into electricity. The modified blades proved effective in extracting energy at low speeds without degrading performance at high flow speeds.
Flexible scales on sharks' bodies allow for change in direction while swimming at full speed by controlling water flow separation. This discovery has implications for designing more efficient aircraft, wind turbines, and other systems prone to flow separation issues.
Caltech researchers have designed jellyfish-inspired pumps that utilize flexible designs and adaptable tissue composition to create efficient fluid transport systems. The pumps are optimized for medical applications, such as delivering medication or removing excess fluids from the body, without causing damage to surrounding tissues.
Virginia Tech researchers have developed a promising new cancer treatment using magnetic fluid hyperthermia, which heats up magnetic nanoparticles to kill tumor cells. The treatment has shown no adverse effects on surrounding healthy tissue.
Researchers have devised a predictive model to control the formation of banded ring patterns left behind by coffee droplets. The model suggests that particle deposition can be controlled by altering physical parameters such as evaporation and surface tension.
Charles Meneveau and Johan Meyers develop a model to calculate optimal turbine spacing for large wind farms. They find that energy production depends less on horizontal winds and more on entraining strong winds from higher in the atmosphere, leading to an optimal distance of about 15 rotor diameters.
Researchers studied Chrysopelea paradisi snakes as they glided from a branch to the ground. The analysis revealed that the snakes never achieved equilibrium gliding state, but were instead pushed upward due to aerodynamic forces. This temporary effect would eventually cause the snake to hit the ground.
A team of researchers has built a robotic hummingbird wing to discover how these birds manage to hover in gusty conditions. The robotic wing replicates the figure-eight pattern of a hummingbird's wings, creating vortices on both the downstroke and upstroke.
Researchers are presenting innovative air-flow technology to increase wind turbine efficiency, reducing costs and environmental impact. Tiny grooves on turbine blades also show promise in drag reduction.
Asymmetrical airflow affects vocal fold motion in individuals with paralysis, causing chaotic irregular vibrations and impaired intelligible speech. The discovery may lead to the development of implant materials that mimic voice apparatus properties to restore good vibrations.
Researchers at Harvard University have developed a simple physical model that reproduces the characteristics of real bird song, using a stretched rubber tube to mimic the zebra finch's sounds. The device, which relies on minimal neural control, produces harmonics and patterns similar to those found in actual bird songs.
Researchers are using magnetic resonance imaging to analyze the mixing of hot and cool air in jet turbines, aiming to optimize bypass design and reduce coolant usage. This technique could lead to significant energy savings and improved performance, potentially slashing development time from years to just hours.
Researchers build robotic jump rope device to control rope parameters, capturing motion with high-speed cameras. They find that air-induced drag affects the shape of the rope, reducing total drag. Insights from the study may inform other situations involving flexible filaments in engineered and natural systems.
Researchers in California and South Africa re-designed an aircraft with a bird-inspired shape to improve aerodynamics and reduce fuel consumption. The study showed that a flying wing configuration can generate nearly wing-only levels of lift and drag, potentially making planes more energy efficient.
Artificial black holes made with metamaterials can trap EM waves, preventing them from escaping like a black hole traps light. This technology could be used to measure how light is absorbed when passing through the material and enable the harvesting of light for solar cells.
A team of researchers has developed a way to prevent cavitation damage in jet fuel pumps, essential components in modern aircraft. The study provides realistic data for computer models, enabling designers to create lighter, more efficient, and longer-lasting pumps.
Researchers have developed a device that uses sound waves to detect bacteria in water, potentially speeding up the process by 15% compared to existing methods. The device broadcasts ultrasound waves into the liquid, exerting pressure on bacteria that pushes them into a collection pocket for identification.
University of Maryland researchers developed a scheme to detect concealed radioactive material without searching containers one by one. The concept uses gamma-ray emission from the material ionizing the surrounding air, facilitated by high-power, coherent terahertz or infrared radiation.
Researchers have developed a simple method to fabricate free-standing polymer membranes with precisely patterned holes, opening up potential applications in microfluidics. The technique uses photolithography and prepolymer, allowing for easy fabrication of membranes with accurate sizes and shapes.
Researchers have developed a non-invasive technique using microwaves to measure vital signs, such as heart rate and stress levels. The system detects changes in reflected waves caused by body movements, allowing for near-real-time monitoring.
A study by Diandong Ren finds that rising global temperatures decrease wind speeds, reducing the power output of wind turbines. This means that more wind turbines are needed to achieve the same amount of energy production, highlighting the need for a switch to renewable energy sources earlier.
Researchers from Argentina have successfully created a new type of Foucault pendulum that is smaller and more efficient than traditional devices. The new pendulums, which are designed to be compact enough to fit in a lobby or classroom, use advanced techniques to reduce the elliptical drift of the pendulum and improve precision.
Researchers have developed a new technique using Time-of-Flight Secondary Ion Mass Spectrometry (ToF-SIMS) to detect and differentiate explosives. This technology provides rapid identification of components in explosives like C4, including the explosive active components, additives, binders, and contaminants.
A research team developed tools to study supercritical CO2's impact on minerals, which could be affected by stored carbon dioxide. The new high-pressure atomic force microscope can observe changes at the atomic scale, addressing a key question about the feasibility of carbon capture and storage.
A team of researchers has discovered that lubricin, a synovial fluid glycoprotein, reduces wear to bone cartilage. This discovery has significant implications for the treatment of osteoarthritis, the most common form of joint disease.
By using glancing-angle deposition, researchers can create a forest of nanorods on a target surface, which offers a range of potential applications including nanosensors and fuel-cell cathodes. This technique extends shadowing effects to higher temperatures, leading to larger-diameter nanorods with unique properties.
Ohio State University researchers conducted experiments to test commercially available Li-ion batteries thousands of times, finding irreversible changes at the nanoscale that lead to battery loss of charge. The study suggests that coarsening of electrode materials may be responsible for this loss.
A study on single-molecule magnets may lead to breakthroughs in molecular spintronics, a field combining electronics with spin manipulation. Researchers have better understood the inner level structure of these tiny magnets, which could enable practical applications for quantum computation and information storage.
Millions in China's Guizhou province suffer from fluorosis due to air pollution from burned coal, leading to dental problems and joint pain. The Chinese government has implemented programs to improve ventilation in homes and reduce particulate matter.
Scientists have created tiny energy storage devices, no bigger than a grain of sand, with the potential to power micro- and nano-scale devices. The new batteries are part of a larger effort to miniaturize lithium-ion technology, which could lead to breakthroughs in fields like medicine and electronics.
Scientists have developed a new polymer-type material that exhibits biocidal activity toward MRSA and other Gram-negative bacteria when exposed to light, making it suitable for antibacterial countertops. The conjugated polyelectrolyte (CPE) material has shown promising results in killing bacteria without harming mammalian cells.
Researchers at MIT have successfully stored energy in carbon nanotubes using a thermopower process, which converts chemical energy into electricity. This breakthrough could lead to the development of more efficient power generation and storage systems.
A group led by Takhee Lee demonstrated an optimal combination of materials and processing for a resistive memory circuit design. The scientists showed that exposing the contacts to an oxygen plasma improved the on/off signal ratio more than 10-fold, enabling high-performance memory devices.
Researchers at Zyvex Labs have demonstrated a process for removing individual hydrogen atoms from silicon surfaces and adding single atomic layers of silicon. This technique allows for the creation of atomically precise three-dimensional structures with potential applications in nanotechnology, quantum computing, and more.
Researchers have developed techniques to permanently bind antibacterial coatings to medical devices, aiming to prevent the formation of biofilms that can cause infection. The new coatings use a plasma polymer layer and novel diterpene compounds derived from Australian plants to effectively target bacteria.
Researchers have discovered a short-range scattering mechanism in type-II GaSb/GaAs quantum dots, which may lead to more efficient transport of electrons and improved performance in quantum dot-based devices. This breakthrough has significant implications for the future design of novel quantum devices.
Researchers have developed miniature solar cells that can release chemotherapeutic drugs directly to tumors, reducing systemic side effects. The devices convert light into electric current and can be controlled by varying the intensity of light.
A new theoretical model reported in the Journal of Chemical Physics investigates protein unfolding under smaller forces, revealing a previously uncharacterized sequential loss of structure involving fluctuation between two intermediates. The researchers discovered more steps and complexity compared to previous experiments and models.
Researchers used transmission electron microscopy to study the effects of increasing hydrogen concentrations on iron metal catalysts. They found that too much hydrogen causes fibers with thick walls, instead of nanotubes, or no growth at all.
Researchers have successfully made tiny high-frequency capacitors using a complex mineral, paving the way for high-frequency microwave applications. The capacitors, made from barium strontium titanate, exhibited excellent microwave properties up to 40 GHz.
A microfluidic device developed in Hong Kong enables non-invasive testing of anti-tumor drugs by subjecting cancerous cells to different concentration gradients. The device integrates a previously validated analysis method that quantifies cell apoptosis in real-time, allowing for precise control and reduced costs.
Researchers have developed a new method to analyze neutron reflection to identify buckyballs within polymer-based photovoltaic cells. This breakthrough technique allows for more efficient and cost-effective production of solar cells, which could lead to widespread adoption.
A new disposable device based on microfluidics can efficiently capture cancer cells overexpressing HER2, enabling therapy with trastuzumab. The device offers a non-invasive alternative to current methodologies and has shown promising results in early studies.
Researchers have developed tiny devices that convert waste heat into electricity using pyroelectric nanowires. The devices can generate an electrical current in response to temperature changes, offering a potential solution for powering small devices and biological applications.