Researchers have developed a new semiconducting material called multielement ink that can be processed at low temperatures, paving the way for more sustainable semiconductor industry. The breakthrough enables faster and lower-energy production of semiconductors, which could significantly reduce carbon emissions.
Scientists developed a workflow that combines CRISPR gene editing with computational models to predict necessary gene edits, reducing product development cycles from years to months. The approach showed promise in engineering strains to convert lignin into target molecules, offering an eco-friendly alternative for biomanufacturing.
Researchers create more effective quantum emitters using pulsed ion beams, leading to better control over their optical properties. This breakthrough marks a step towards the development of a quantum internet and potential applications in sensing radiation.
Researchers found that carpets are a stubborn reservoir of thirdhand smoke contaminants, and ozonation is only partially effective at removing them. Replacing carpets may be the best solution to eliminate these pollutants.
Researchers successfully engineered microbes to produce biological alternatives for the starting ingredients in poly(diketoenamine), an infinitely recyclable plastic. This breakthrough creates a bio-based material with improved properties and reduced costs, offering a sustainable solution to the plastic waste problem.
Scientists have teamed up to improve drug delivery by designing more effective lipid nanoparticles. Their latest study documents how high-throughput workflows can produce and characterize LNPs at record speed, with neatly ordered structures leading to better silencing of faulty genes in human neurons.
Climate change is shifting snowfall to rainfall on mountains across the Northern Hemisphere, increasing the risk of floods, landslides, and soil erosion. The study found that for every 1 degree Celsius increase in global temperature, high elevations can expect an average of 15% more rain.
Researchers at Lawrence Berkeley National Laboratory have developed a novel approach to synthetic biology that enables the simultaneous characterization of hundreds of transcription factors in a plant. This breakthrough has significant implications for agriculture and sustainability, as understanding how transcription factors regulate ...
A new study finds that clean energy microgrids can reduce power outages in wildfire-prone areas of California by up to 30%, cutting costs from 15-30 cents per kWh compared to conventional technologies.
A decade-long study reveals that warmer temperatures lead to significant loss of organic compounds in deep forest soils, affecting carbon sequestration. This finding has implications for natural carbon sinks and soil management practices.
A cutting-edge experiment has revealed the quantum dynamics of photosynthesis, starting with a single photon. The discovery solidifies current understanding and will help answer questions about how life works at the smallest scales. By studying individual photons, scientists can build artificial systems that generate renewable fuels.
Researchers found that rail-based mobile energy storage can cost-effectively provide backup power for extreme events, potentially saving the power sector up to 60% of transmission line costs. The US rail network has the capacity to bring energy where it's needed, and this technology could work well in regions with robust freight capaci...
Scientists at Berkeley Lab develop an ultrafast x-ray imaging technique to study the distortions of a methane molecule after absorbing light. The research provides insights into how molecules react to light and can be useful for developing new methods to control chemical reactions.
Researchers have engineered bacteria to combine natural enzymatic reactions with the carbene transfer reaction, producing new-to-nature carbon products that can be used in biochemicals and advanced biofuels. This breakthrough could reduce industrial emissions by providing sustainable alternatives to chemical manufacturing processes.
Research finds extreme precipitation days will become more frequent, with up to 20-30% increase in moisture release. The LOCA2 climate projections cover the lower 48 US states, southern Canada, and northern Mexico, providing granular-level information for local planners.
A new study suggests that using underground water for thermal energy storage (ATES) can reduce heating and cooling energy demand in the US by 40%, making urban energy infrastructure more resilient. ATES stores energy as temperature underground, leveraging natural geological features to heat or cool buildings during extreme weather events.
Scientists have developed a high-throughput genetic screening approach to identify viral proteins that target bacterial cell walls, leading to potential new antibiotics. The method uses a coded library of DNA fragments to investigate unknown genes in environmental samples, sidestepping the need for culturing bacteria.
Scientists have developed a conductive polymer coating called HOS-PFM that can significantly enhance the performance of lithium-ion batteries in electric vehicles. The coating ensures battery stability and high charge/discharge rates while extending battery life by up to 15 years.
A Berkeley Lab-led team has designed a new type of solid electrolyte consisting of a mix of various metal elements, resulting in a more conductive and less dependent material. The new design could advance solid-state batteries with high energy density and superior safety, potentially overcoming long-standing challenges.
Researchers at Berkeley Lab have developed a new technique that captures real-time movies of copper nanoparticles as they convert carbon dioxide into renewable fuels and chemicals. The study reveals that metallic copper nanograins serve as active sites for CO2 reduction, paving the way for advanced solar fuel technology.
Researchers developed a new polymer-based device that efficiently handles record amounts of energy while withstanding extreme temperatures and electric fields. The device has outstanding dielectric properties, especially at high electric fields and temperatures.
A recent study suggests that doubling protected lands for biodiversity could lead to substantial regional shifts in land use and potentially fail to protect world's most biodiverse hotspots. The research also found that the land used for growing crops for biofuels could be significantly impacted by the doubling of current protected areas.
Researchers have observed exciton quasiparticles confined in atomically thin materials, opening paths to controlling excitons for quantum and optolectronic applications. Custom-built materials can now be designed to confine and manipulate excitons.
Researchers link extreme thunderstorms to Amazon tree deaths, predicting 43% increase in large windthrow events by the end of the century. The tropics will see a 50% increase in areas susceptible to extreme storms triggering windthrows.
Electrons play a key role in facilitating rapid heat transfer between layers of 2D semiconductor materials, allowing for efficient energy dissipation in futuristic electronic devices. The study provides new insights into the behavior of atomic motions and electronic pathways in nanoscale junctions.
Researchers at Berkeley Lab have developed a new method of heating and cooling called ionocaloric cooling, which could provide efficient and safe cooling for homes. The technique uses ions to drive solid-to-liquid phase changes, making it potentially more efficient than current refrigerants.
AQT at Berkeley Lab organized a workshop on classical control systems for quantum computing, bringing together industry leaders and researchers to share experimental control advances. The workshop highlighted the need for advanced features in classical control electronic systems to optimize quantum computer performance.
Scientists at Lawrence Berkeley National Laboratory have made the first direct measurement of the Donnan electric potential, a phenomenon that has eluded researchers for over a century. The measurement could yield new insights into membrane transport, ion exchange, and energy storage strategies.
Researchers have created a new metal alloy that boasts the highest recorded toughness, with properties that improve at lower temperatures. The alloy, CrCoNi, exhibits exceptional strength and ductility, making it ideal for structural applications, despite most materials becoming brittle at low temperatures.
Researchers have created a method to edit the genomes of bacteriophages, viruses that infect bacteria, using CRISPR technology. This innovation has the potential to revolutionize the control of microbiomes and treat dangerous drug-resistant infections.
Researchers at Lawrence Berkeley National Laboratory demonstrate a new method to produce liquid acetate from carbon dioxide, inspired by carbon-hungry microorganisms. This breakthrough could accelerate the development of carbon-free alternatives to fossil fuels and help mitigate climate change.
Researchers warn of impending 35-60 year droughts in western US unless greenhouse gas emissions are curbed to limit warming to 2.5 degrees Celsius. Mountain snowpack is shrinking due to global warming, threatening agriculture, ecosystem support, and urban water supplies.
Researchers measured the half-lives of five exotic isotopes at the Facility for Rare Isotope Beams (FRIB), a DOE Office of Science user facility. The study provides fundamental information about nuclei near their limits of existence, testing models of the atomic world and advancing research in astrophysics and nuclear physics.
Researchers discovered Borgs, DNA packages that supercharge methane-eating microbes' metabolic rate. These genetic elements play a role in balancing atmospheric methane levels by encoding cellular machinery for methane consumption.
A team at Lawrence Berkeley National Laboratory has developed a method to create tiny light-emitting points called color centers in twisted crystalline boron nitride, which can be easily controlled between two quantum states. This breakthrough offers a route toward scalable quantum computing and sensing.
A new experiment at Jefferson Lab found that proton-proton and neutron-neutron collisions were responsible for roughly 20% of all collisions, surprising previous measurements which showed a much smaller share. The discovery improves the precision of previous measurements by a factor of ten.
Researchers found that many proteins thought to be monomeric exist as hexamers or other shapes, with some even forming tetramers. This discovery suggests a high degree of structural plasticity among proteins.
A new study by Berkeley Lab scientists reveals that thirdhand smoke can exceed health risk guidelines, putting whole households at risk. The study found that concentrations of toxic chemicals in indoor environments where cigarettes have been smoked can lead to exposure through inhalation, dust ingestion, and dermal absorption.
Researchers optimized the ZZ SWAP network protocol, introducing a new technique to improve quantum error mitigation. This enables more efficient execution of quantum algorithms like QAOA, which can solve combinatorial optimization problems.
A team of scientists from Lawrence Berkeley National Laboratory has designed a new material system to overcome the challenges of mixed-plastic recycling. They created customized polydiketoenamine (PDK) plastics that can be recycled efficiently and indefinitely, providing a low-carbon manufacturing solution for plastic products.
Researchers at Lawrence Berkeley National Laboratory have created a new type of fuel that has higher energy density than traditional heavy-duty fuels. The biofuel, called POP-FAMEs, is produced by bacteria fed with plant matter and can significantly reduce greenhouse gas emissions when burned.
Scientists discovered a new species of giant filamentous bacterium, Thiomargarita magnifica, with DNA clustered within membrane-bound compartments. This unique organism challenges traditional understanding of bacterial morphology and genomic complexity.
Researchers developed a thin-layer version of barium titanate, enabling faster switching and lower voltages for next-gen memory and logic devices. The findings could pave the way for more sustainable computing power with reduced energy consumption.
A new study suggests achieving a 50% reduction in US greenhouse gas emissions by 2030 is possible through increasing renewable capacity and transitioning to electric vehicles. This would limit global warming to 1.5 degrees Celsius, aligning with the UN's climate target.
The Berkeley Lab team has demonstrated a three-qubit native quantum gate, the iToffoli gate, with high fidelity of 98.26%. This breakthrough enables universal quantum computing and reduces circuit running times.
Scientists have developed a new material that conducts heat 150% more efficiently than conventional materials, enabling smaller, faster microelectronics. This breakthrough could lead to more efficient electronic devices powered by microchips that consume less energy and reduce carbon emissions.
Researchers have discovered layered 2D materials that can host unique magnetic features, including skyrmions, which remain stable at room temperature. The discovery could lead to novel low-energy data storage and information processing systems.
The IPCC report emphasizes the need for aggressive actions to reduce greenhouse gas emissions drastically, beyond current pledges. Researchers from Berkeley Lab contributed to the latest report, highlighting the importance of transformational changes in energy and feedstock sourcing.
A collaboration between Berkeley Lab researchers developed a novel approach to mitigate noise in quantum computers, enabling reliable results from IBM quantum computers. The new method combines three other techniques to correct errors, allowing for bigger simulations and tackling complex problems.
Researchers aim to quantify and characterize the lithium in California's Salton Sea geothermal reservoir to secure a domestic supply chain. The project will investigate environmental impacts and provide insights on the subsurface resource potential.