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.
SourceSPIE--International Society for Optics and Photonics·JournalOptical Engineering·DateSep 25, 2014
Researchers developed a basic model circuit combining silver nanowire and molybdenum disulfide (MoS2) that efficiently guides electricity and light along the same wire. The material enables strong light emission and efficient energy transfer, promising to improve mobile technology performance and efficiency.
SourceUniversity of Rochester·JournalOptica·DateSep 4, 2014
Researchers at Monash University have developed copper nanowire aerogels that combine conductivity with flexibility, enabling the creation of stretchable conductive rubbers. The addition of a small amount of poly(vinyl alcohol) improves mechanical strength without impairing conductivity.
Researchers at Australian National University developed a technique to cool nanowire probes with lasers, increasing their sensitivity 20 times and enabling detection of tiny forces. This could improve the resolution of atomic force microscopes, measuring nanoscopic structures and molecular interactions.
SourceAustralian National University·JournalNature Communications·DateAug 14, 2014
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SAMSUNG T9 Portable SSD 2TB transfers large imagery and model outputs quickly between field laptops, lab workstations, and secure archives.
A Wayne State University professor has received a $330,000 NSF grant to explore a novel method for manufacturing nanoscale devices using solution-based processes and inexpensive raw materials. The research aims to overcome the current bottleneck in scaling up nanotechnology by connecting different functional materials into one device.
SourceWayne State University - Office of the Vice President for Research·DateJul 30, 2014
Scientists successfully integrated compound semiconductor crystals made of indium arsenide into silicon nanowires, overcoming a major obstacle in chip technology. The production method, which involves ion implantation and heat treatment, enables the creation of 'hetero-nanowires' with improved performance.
SourceHelmholtz-Zentrum Dresden-Rossendorf·JournalNano Research·DateJul 23, 2014
Yu Chen and colleagues find that superconductivity and dissipation can coexist under generic conditions in a universal manner, thanks to a peculiar nonequilibrium state of quasiparticles. The researchers also discover an unexpected property: when a magnetic field is applied, the superconducting area expands and is enhanced.
SourceUniversity of California - Santa Barbara·JournalNature Physics·DateJun 29, 2014
University of Pittsburgh physicist Sergey Frolov has received a $3 million grant to explore the use of Majorana fermions in quantum computing. Theoretical findings suggest that these particles could enable the creation of novel, incredibly powerful quantum computers.
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GoPro HERO13 Black records stabilized 5.3K video for instrument deployments, field notes, and outreach, even in harsh weather and underwater conditions.
Engineers at UC Davis developed three-dimensional nanowire transistors using a new approach to integrate semiconductors on silicon substrates. This technology enables devices to operate in high temperatures, handle high power or voltages, and optical applications.
SourceUniversity of California - Davis·JournalAdvanced Materials·DateMay 14, 2014
NTNU researchers have discovered that by tuning a small strain on single nanowires, they can become more effective in LEDs and solar cells. The discovery enables the creation of highly effective solar cells that produce a higher electric power.
SourceNorwegian University of Science and Technology·JournalNature Communications·DateApr 14, 2014
Researchers at Johannes Gutenberg University Mainz have achieved a breakthrough in inducing synchronous motion of domain walls in ferromagnetic nanowires using pulsed magnetic fields. This allows for controlled displacement of domain walls, essential for permanent data storage.
SourceJohannes Gutenberg Universitaet Mainz·JournalNature Communications·DateApr 8, 2014
A team of researchers from China's State Key Lab of Mechanics and Control of Mechanical Structures introduced innovative strategies for ultrasonic manipulation by employing various acoustic streaming fields. This enables the diversification of manipulation functions and samples, widening the application range of the technique.
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Apple iPhone 17 Pro delivers top performance and advanced cameras for field documentation, data collection, and secure research communications.
Researchers at the University of Illinois have developed a novel solar cell architecture based on dense arrays of coaxial p-n junction InGaAs nanowires on InAs stems grown directly on graphene. The resulting ternary InGaAs NW arrays demonstrate a conversion efficiency of 2.51% under air mass 1.5 global solar illumination, representing ...
SourceUniversity of Illinois Grainger College of Engineering·JournalAdvanced Materials·DateMar 24, 2014
Researchers at the University of Cincinnati have developed a new method of light-matter interaction analysis, which appears to be a good way of helping make better semiconductor nanowires. The technique uses Rayleigh scattering to probe band structures and electron-hole dynamics in single indium phosphide nanowires.
Researchers at the University of Cincinnati have identified a zero-dimensional quantum dot structure that can confine electronic excitations within semiconductor nanowires. This discovery has significant implications for harnessing solar energy, creating stronger lasers, and developing more sensitive medical diagnostic devices.
Developers have created a metal oxide shell that increases the stability of nanowire devices, which can detect disease biomarkers and record heart cells. This coating allows nanoelectronic devices to last several months in human body conditions.
SourceAmerican Chemical Society·JournalNano Letters·DateFeb 19, 2014
Fluke 87V Industrial Digital Multimeter
Fluke 87V Industrial Digital Multimeter is a trusted meter for precise measurements during instrument integration, repairs, and field diagnostics.
Researchers at NIST and JPL have designed a detector array that can extract more information than usual from single particles of light. The new device can record signal timing, enabling the use of pulse position modulation to encode multiple bits of information in space optical communications.
SourceNational Institute of Standards and Technology (NIST)·JournalApplied Physics Letters·DateFeb 12, 2014
Researchers at NC State University have developed wearable, stretchable sensors using silver nanowires that can measure strain, pressure, human touch, and bioelectronic signals. These sensors hold promise for creating responsive prosthetics and robots that can interact with their environment.
SourceNorth Carolina State University·JournalNanoscale·DateJan 16, 2014
Scientists have demonstrated laser action in semiconductor nanowires that emit light at technologically useful wavelengths and operate at room temperature. The nanowire lasers could represent the next step in developing smaller, faster, more energy-efficient sources of light for various applications.
SourceTechnical University of Munich (TUM)·JournalNature Communications·DateDec 5, 2013
Researchers at Duke University have developed copper nanowire catalysts that can efficiently harness solar energy to split water into hydrogen, a promising step towards cheaper and sturdier fuel cells. The material is abundant, inexpensive, and flexible, making it ideal for use in various applications beyond solar energy production.
SourceDuke University·JournalAngewandte Chemie·DateNov 22, 2013
Researchers have determined the atomic resolution structure of a bacterial nanowire protein, revealing its shape and form suggest ways for electrons to shuttle along the wire. The study's findings could lead to new applications such as bacterial fuel cells, carbon cycling, and biocomputers.
SourceDOE/Pacific Northwest National Laboratory·JournalJournal of Biological Chemistry·DateNov 12, 2013
Creality K1 Max 3D Printer
Creality K1 Max 3D Printer rapidly prototypes brackets, adapters, and fixtures for instruments and classroom demonstrations at large build volume.
Boston College chemists develop unique photoanodes and photocathodes using hematite and nickel iron oxide to achieve a 50% increase in photovoltage. This breakthrough brings researchers closer to harnessing artificial photosynthesis for efficient solar energy storage.
SourceBoston College·JournalAngewandte Chemie·DateOct 11, 2013
Researchers at the University of Copenhagen have developed a new method that combines advanced tools in physics and biology to improve diagnostic accuracy. By using nanowires to hold proteins, they can measure multiple biomarkers simultaneously, increasing signal quality and making diagnosis faster, cheaper, and more precise.
SourceUniversity of Copenhagen·JournalNanoscale·DateOct 3, 2013
Researchers used computer modeling to predict electronic and optical properties of silicon structures with potential applications for solar energy collection. The study found that amorphous quantum dot chains significantly increase light absorption with increased interactions between individual nanospheres in the chain.
SourceAmerican Institute of Physics·JournalJournal of Renewable and Sustainable Energy·DateOct 1, 2013
Researchers developed nanowires that block lithium diffusion, promoting layer-by-layer lithiation and potentially minimizing cracking and improving durability. This breakthrough could lead to more effective electrode architectures for lithium-ion batteries.
SourceUniversity of California - San Diego·JournalNano Letters·DateSep 30, 2013
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Apple AirPods Pro (2nd Generation, USB-C) provide clear calls and strong noise reduction for interviews, conferences, and noisy field environments.
A new MRI technique has been developed with a spatial resolution of roughly 10 nanometers, significantly improving sensitivity. The team used a novel protocol and nanoscale metal constriction to overcome obstacles in applying classic pulsed magnetic resonance techniques.
SourceUniversity of Illinois Grainger College of Engineering·JournalPhysical Review X·DateSep 27, 2013
Researchers at Ohio State University have developed a new kind of ultraviolet LED that emits light at specific wavelengths, making it suitable for commercial applications such as chemical detection, disinfection, and UV curing. The device runs on lower voltages than existing methods, making it more compact and potentially cost-effective.
SourceOhio State University·JournalApplied Physics Letters·DateSep 9, 2013
A Drexel-led team of researchers has developed a new method to measure the band offset in nanoscale devices using laser-induced current spectroscopy. This breakthrough enables the design of more efficient and effective nanoscale components, such as solar cells, LEDs, and high-speed electronics.
SourceDrexel University·JournalNano Letters·DateSep 4, 2013
Researchers at Penn University have developed a computer model to optimize the properties of metal nanowire networks for flexible touchscreens. The model helps identify the optimal balance between transparency and electrical resistance, leading to improved device performance.
SourceUniversity of Pennsylvania·JournalACS Nano·DateSep 3, 2013
Engineers at UC Berkeley created the first user-interactive sensor network on flexible plastic, responding to touch with instant light emission. The new e-skin technology has potential applications in robots, wallpapers, dashboard displays, and health monitors.
SourceUniversity of California - Berkeley·JournalNature Materials·DateJul 21, 2013
Apple Watch Series 11 (GPS, 46mm)
Apple Watch Series 11 (GPS, 46mm) tracks health metrics and safety alerts during long observing sessions, fieldwork, and remote expeditions.
Researchers at the University of Michigan have discovered a new type of stretchable conductor made from spherical nanoparticles embedded in elastic materials. The material exhibits exceptional stretchability and electrical conductivity, making it suitable for various applications such as brain implants and flexible electronics.
Researchers at UNIST demonstrated a novel method for epitaxially synthesizing uniform and homogeneous III-V semiconductor nanowires on Si wafers. The high quality of the nanowires was achieved without using metal catalysts, opening up new possibilities for opto-electronic devices.
SourceUlsan National Institute of Science and Technology(UNIST)·JournalACS Nano·DateJun 10, 2013
Researchers at Ulsan National Institute of Science and Technology have developed a hybrid transparent and stretchable electrode combining graphene and silver nanowires. The new material exhibits high electrical and optical performance, preserving mechanical flexibility and resistivity even when bent or folded.
SourceUlsan National Institute of Science and Technology(UNIST)·JournalNano Letters·DateMay 30, 2013
Scientists have developed an artificial forest of semiconductor light absorbers, interfacial layers, and co-catalysts to mimic natural photosynthesis. The system achieved a 0.12-percent solar-to-fuel conversion efficiency, but further improvements are needed for commercial use.
SourceDOE/Lawrence Berkeley National Laboratory·JournalNano Letters·DateMay 16, 2013
Garmin GPSMAP 67i with inReach
Garmin GPSMAP 67i with inReach provides rugged GNSS navigation, satellite messaging, and SOS for backcountry geology and climate field teams.
Researchers at University of Cincinnati have made a groundbreaking discovery in semiconductor nanowires, opening doors to better ways of harnessing solar energy and improving air quality sensors. The new structure has unique properties that could lead to advances in photovoltaic cells and stronger security measures.
SourceUniversity of Cincinnati·JournalNano Letters·DateApr 23, 2013
Scientists have demonstrated a process where quantum dots can self-assemble at optimal locations in nanowires, improving the efficiency of solar cells, quantum computing, and lighting devices. The breakthrough enables precise positioning of quantum dots relative to the nanowire's center, leading to high optical properties.
SourceDOE/National Renewable Energy Laboratory·JournalNature Materials·DateApr 16, 2013
Thin film solar cells can be removed from a silicon substrate by dipping them in water at room temperature. The cells can then attach to almost any surface after exposure to heat of about 90°C for a few seconds.
SourceDOE/National Renewable Energy Laboratory·JournalScientific Reports·DateApr 16, 2013
University of Michigan researchers create a new single-photon emitter that improves upon existing technology and is easier to make, paving the way for practical quantum cryptography. The device releases one photon at a time, allowing for secure communication by encoding messages in photons.
SourceUniversity of Michigan·JournalNature Communications·DateApr 9, 2013
Researchers at EPFL created a nanowire solar cell that captures up to 12 times more light than traditional flat solar cells, producing more energy with lower costs.
SourceEcole Polytechnique Fédérale de Lausanne·JournalNature Photonics·DateApr 8, 2013
Aranet4 Home CO2 Monitor
Aranet4 Home CO2 Monitor tracks ventilation quality in labs, classrooms, and conference rooms with long battery life and clear e-ink readouts.
Researchers at Polytechnique Montréal and international partners create a new method for self-doping nanowires, allowing for precise control of electronic properties. This breakthrough enables the development of novel nanoscale devices with tailored shape and composition.
SourcePolytechnique Montréal·JournalNature·DateApr 3, 2013
Researchers have discovered a single nanowire can concentrate sunlight up to 15 times the normal intensity, raising the potential for highly efficient solar cells. The breakthrough could lead to a significant impact on solar cell development and energy extraction.
SourceUniversity of Copenhagen - Niels Bohr Institute·JournalNature Photonics·DateMar 24, 2013
Research team at UNIST developed high-performance NW-OPTs, showing enhanced charge-carrier mobility and higher external quantum efficiencies compared to thin-film OPTs. This breakthrough enables bottom-up fabrication of optoelectronic nanodevices with high operational stability and easy control of photoswitching voltages.
SourceUlsan National Institute of Science and Technology(UNIST)·JournalAdvanced Functional Materials·DateMar 13, 2013
Researchers at Lund University have successfully implanted an ultrathin nanowire-based electrode into a laboratory animal's brain, capturing signals from the nerve cells. This breakthrough allows for potential long-term monitoring and treatment of conditions like Parkinson's disease.
Scientists from NREL and partners successfully demonstrated self-assembling quantum dots in a nanowire system for quantum photonics. The breakthrough could improve solar cell efficiency, quantum computing, and lighting devices due to the precise positioning of quantum dots within the nanowire.
SourceDOE/National Renewable Energy Laboratory·JournalNature Materials·DateFeb 19, 2013
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Sky-Watcher EQ6-R Pro Equatorial Mount provides precise tracking capacity for deep-sky imaging rigs during long astrophotography sessions.
The researchers developed a new type of nanoscale structure that combines one-dimensional and two-dimensional structures, creating a material with large surface area and efficient charge transfer. This 3D structure holds promise for developing next-generation sensors, photodetectors, solar cells, and energy storage technologies.
SourceNorth Carolina State University·JournalNano Letters·DateFeb 19, 2013
A paper coauthored by Pitt professor Sergey Frolov has won the 2012 Newcomb Cleveland Prize for its discovery of Majorana fermions, a physics particle ideal for quantum computing. The prize carries a $25,000 cash award and recognizes fundamental contributions to basic knowledge.
Researchers developed an ultra-sensitive sensor to detect one molecule of carbon dioxide, improving the accuracy of monitoring and measurement. The sensor technology has the potential to reduce emissions in various industries.
Researchers from Lund University have made a significant breakthrough in solar cell technology, demonstrating the potential for nanowires to produce 13.8% efficient energy. The nanowire solar cells can absorb sunlight more efficiently than traditional silicon cells, offering higher efficiency at a lower cost.
Researchers have developed a novel application of spintronics that converts magnetic energy to electric voltage efficiently and directly. The device utilizes magnetic nanostructures and manipulates magnetization dynamics to generate alternating current (AC) voltages from direct current (DC) magnetic fields.
SourceAmerican Institute of Physics·JournalApplied Physics Letters·DateJan 3, 2013
Apple iPad Pro 11-inch (M4)
Apple iPad Pro 11-inch (M4) runs demanding GIS, imaging, and annotation workflows on the go for surveys, briefings, and lab notebooks.
Researchers at NTNU have patented a method to grow semiconductor nanowires on graphene, offering excellent optoelectronic properties. This technology has the potential to enable new types of device systems, including solar cells and self-powered nanomachines, with large market potential.
SourceNorwegian University of Science and Technology·JournalNano Letters·DateSep 10, 2012
Researchers at the University of Pennsylvania have developed an all-optical photonic switch made from cadmium sulfide nanowires, enabling faster and more efficient light manipulation. This breakthrough paves the way for significant advancements in photonics and its applications in computing.
SourceUniversity of Pennsylvania·JournalNature Nanotechnology·DateSep 10, 2012
Scientists have developed a new transparent solar cell that produces energy by absorbing infrared light and is 66% transparent to the human eye. The device uses a photoactive plastic and a composite electrode made of silver nanowire and titanium dioxide nanoparticles.
SourceAmerican Chemical Society·JournalACS Nano·DateAug 1, 2012
Researchers at Sandia National Laboratories created a solar nanowire array that can absorb a wider range of the sun's wavelengths, leading to increased efficiency. The array, grown on a phalanx of nanowires, allows for higher indium percentages and lower absorption base energies.
SourceDOE/Sandia National Laboratories·JournalNanotechnology·DateJun 19, 2012
Researchers have developed a 'pyroelectric nanogenerator' that converts waste heat into electricity using the ancient pyroelectric effect. The device has the potential to power applications such as wireless sensors, temperature imaging, and medical diagnostics, offering a new source of energy from environmental waste.
SourceAmerican Chemical Society·JournalNano Letters·DateJun 13, 2012
Rigol DP832 Triple-Output Bench Power Supply
Rigol DP832 Triple-Output Bench Power Supply powers sensors, microcontrollers, and test circuits with programmable rails and stable outputs.
A research team at Case Western Reserve University discovered that gold catalysts in the form of a triangle or higher order structures can produce longer, faster-growing nanowires. These wires could be used to build next-generation invisible computer chips and highly-sensitive sensors.
SourceCase Western Reserve University·JournalNano Letters·DateJun 6, 2012
Duke University chemists created copper-nickel nanowires with improved stability and conductivity compared to plain silver and copper. The new material is an attractive option for printed electronics applications, including solar cells, LEDs, and clothing. Its low cost and high speed make it suitable for mass production.
Researchers are developing hybrid NEM devices to improve performance and reduce power consumption in electronics. While individual NEM devices show high performance, scaling up production is a challenge due to the need for reliability over millions of cycles. New material selection methods have been demonstrated to enhance robustness.
SourceNorthwestern University·JournalNature Nanotechnology·DateMay 3, 2012
Engineers at Stanford University have developed a novel method to decorate nanowires with nanoparticles, increasing surface area and altering surface chemistry. This technique may lead to improved lithium-ion batteries, more efficient thin-film solar cells and enhanced catalysts.
SourceStanford University School of Engineering·JournalNano Letters·DateApr 27, 2012
Researchers at NIST and partners have demonstrated that the thickness of the electrolyte layer is crucial in determining the performance of nanoscale lithium batteries. The team found that below a threshold of 200 nanometers, electrons can cause a short circuit, leading to rapid discharge and breakdown of the electrolyte.
SourceNational Institute of Standards and Technology (NIST)·JournalNano Letters·DateMar 21, 2012
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Sony Alpha a7 IV (Body Only) delivers reliable low-light performance and rugged build for astrophotography, lab documentation, and field expeditions.
University of California, San Diego engineers build nanowire 'trees' that capture solar energy and convert it into hydrogen fuel. The trees' vertical structure maximizes energy absorption, making them more efficient than traditional flat surfaces.
SourceUniversity of California - San Diego·JournalNanoscale·DateMar 7, 2012