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According to the latest report from the United Nations (UN), the global population in 2018 was 7.6 By 2050, the global population is expected to soar to 9.7 Credit: The University of Hong Kong. The world has experienced significant urbanization in recent decades. billion and the urban population was 4.2
A team of researchers led by Dr. James Muckerman at the US Department of Energy’s (DOE) Brookhaven National Laboratory (BNL) have developed a new class of high-activity, low-cost, non-noble metal electrocatalyst that generates hydrogen gas from water. Click to enlarge. —Wei-Fu Chen.
Researchers at Stanford University, with colleagues at Oak Ridge National Laboratory and other institutions, have developed a nickel-based electrocatalyst for low-cost water-splitting for hydrogen production with performance close to that of much more expensive commercial platinum electrocatalysts. Credit: Gong et al.
LeMond Composites, founded by three-time Tour de France champion Greg LeMond, has licensed a low-cost, high-volume carbon fiber manufacturing process developed at the US Department of Energy’s Oak Ridge National Laboratory (ORNL). Earlier post.) Thom Mason, Oak Ridge National Laboratory Director.
and the University of Houston will work together to further understanding of the geology and composition of crude oil. This collaboration with a premier energy university reaffirms our commitment, as the market leader in instruments for this industry, to continue to develop new technologies and applications for our customers.
Bank of America has joined Stanford University’sGlobal Climate & Energy Project (GCEP), a collaboration of academic and business experts that identifies and supports new avenues of research to make environmentally sustainable, low-cost energy available to everyone.
Stanford researchers, with a colleague from King Fahd University of Petroleum and Minerals, have developed a simple and environmentally sound way to make ammonia with tiny droplets of water and nitrogen from the air. An open-access paper on their work is published in Proceedings of the National Academy of Sciences (PNAS). —Song et al.
The University of Michigan (U-M) and Shanghai Jiao Tong University (SJTU) have selected six research teams to share $1.05 Goal: To develop next-generation high-energy density batteries to help bring about low-cost and safe electric vehicles with driving ranges well above 250 miles.
Under the FOCUS program, projects will develop advanced solar converters that turn sunlight into electricity for immediate use, while also producing heat that can be stored at lowcost for later use as well as innovative storage systems that accept both heat and electricity from variable solar sources. Arizona State University.
to pursue opportunities in large-scale, low-cost and permanent carbon capture and storage (CCS). Importantly, FPX will have the right to use any intellectual property developed by CO 2 Lock, further raising the potential for development of a low- or zero-carbon nickel mining operation at Decar. FPX Nickel Corp.,
The US Department of Energy (DOE) has begun work on the Grid Storage Launchpad (GSL), a $75-million facility located at Pacific Northwest National Laboratory (PNNL) in Richland, Washington that will boost clean energy adaptation and accelerate the development and deployment of long-duration, low-cost grid energy storage.
GE Global Research will develop thin-film sensors that enable. cost associated with thermal management. Utah State University. Utah State University will develop electronic hardware and. Pennsylvania State University. Pennsylvania State University is developing an innovative. Washington University.
IACMI is dedicated to overcoming these barriers by developing low-cost, high-production, energy-efficient manufacturing and recycling processes for composites applications. In the wind energy industry, advances in low-cost composite materials will help manufacturers build longer, lighter and stronger blades to create more energy.
The projects selected are located in 25 states, with 50% of projects led by universities, 23% by small businesses, 12% by large businesses, 13% by national labs, and 2% by non-profits. University of Massachusetts, Amherst. Development of a Dedicated, High-Value Biofuels Crop The University of Massachusetts, Amherst will develop an.
The University of Massachusetts Amherst recently granted a biofuels startup company, Anellotech , exclusive global rights to the university’s catalytic fast pyrolysis (CFP) technology developed by chemical engineer and UMass Amherst faculty member George Huber for producing renewable biogasoline and other biohydrocarbon fuels.
Electromechanics - University of Texas at Austin. The University of Texas at Austin will develop an at-home. parts, leading to a more reliable, lighter, and cost effective. parts, leading to a more reliable, lighter, and cost effective. University. Colorado State University will develop a vehicle-based natural.
REPAIR teams will develop technology that enables gas utilities to update their distribution systems at lowcost and continue to reliably service commercial and residential gas delivery needs nationwide. University of Colorado, Boulder. General Electric Global Research. University of Maryland.
Unlike the electrode materials found in most lithium-ion batteries, Prussian blue enjoys a widespread availability and lowcost that make batteries based on Prussian blue electrodes an economically attractive, environmentally friendly technology. As a global leader in transportation energy services, Chevron has recognized this.
Escalating investment in geothermal power could result in a 134% increase in global geothermal capacity between 2010 and 2020, from 10.7 Currently, the United States is the global geothermal leader with 3.1 NETL will partner with Penn State, West Virginia University, and the University of Pittsburgh in the 2-year effort.
The Global Climate and Energy Project (GCEP) at Stanford University has awarded $10.5 The mineral perovskite is a promising, low-cost material for enhancing the efficiency of silicon solar cells. efficiency, low-cost silicon solar cells. Investigator: Hongjie Dai, Chemistry. Light trapping in high?efficiency,
American Battery Technology Company , Large-Scale Demonstration of Domestic Manufacturing of Low-Cost and Low- Environmental Impact Battery-Grade Lithium Hydroxide from Unconventional Domestic Sedimentary Resources, $57,744,831. Ascend Elements , Apex – Integrated Sustainable Battery Precursor, $316,186,575.
The selected projects—spanning 22 states and coordinated at universities, national laboratories, and private companies—will advance technologies for a wide range of areas, including electric vehicles, offshore wind, storage and nuclear recycling. Cornell University. Stanford University. The Ohio State University.
The new projects in four focus areas join the existing Faraday Institution research projects that collectively aim to deliver the organisation’s mission to accelerate breakthroughs in energy storage technologies to benefit the UK in the global race to electrification. CATMAT will be led by Professor Saiful Islam of the University of Bath.
The University of Queensland, Australia will host and lead a international research consortium focused on developing renewable aviation fuel from algae. million NIRAP funding to the Institute for Molecular Bioscience would help develop biodiesel, methane and hydrogen from low-cost, high productivity microalgal photo-bioreactors.
the developer of a Consolidated Bioprocessing (CBP) platform for the low-cost production of cellulosic ethanol, and the University of Massachusetts Amherst, announced two intellectual property (IP) advances that extend the patent estate for their novel ethanol-producing microorganism, Clostridium phytofermentans , also known as the Q Microbe.
Announced by Secretary Brouillette in January 2020, the Energy Storage Grand Challenge is designed to create and sustain US global leadership in energy storage technology, utilization, and exports. The Research Foundation for The SUNY Stony Brook University. University of Delaware. University of Maryland.
Italy-based Snam, a global energy infrastructure company, and RINA, a global testing, inspection, certification and engineering consultancy services firm, have signed a Memorandum of Understanding to collaborate in the hydrogen sector, in order to realize the significant potential of hydrogen as a fundamental energy carrier.
Eagle Picher, in partnership with the Pacific Northwest National Laboratory, will develop a new generation of high energy, lowcost planar liquid sodium beta batteries for grid scale electrical power storage applications. LowCost, High Energy and Power Density, Nanotube-Enhanced Ultracapacitors. DOE grant: $7,200,000).
Globally, the use of methanol as an alternative fuel has attracted interest because of its low production cost, renewable capacity, and good combustion-related properties (higher thermal efficiency, higher engine power, and lower regulated emissions).
At the IAA Summit in Munich, HIF Global, together with Porsche AG, Volkswagen Group Innovation and MAN Energy Solutions, announced the development and installation of a Direct Air Capture (DAC) unit at the HIF Haru Oni Demonstration facility in southern Chile in 2024. Earlier post.) Why not combine the two? Earlier post.)
The use of heavy fuel oils (HFOs) contributes to global warming due to the fossil origin of these fuels and, moreover, generating non-negligible emissions of pollutants such as sulfur oxides. Although cleaner fuels are available, many companies opt for HFOs due to their lowcost. The participants are Vertoro B.V. (NL);
General Motors and the University of Michigan have formed the GM/U-M Institute of Automotive Research and Education, with a strategic focus on reinventing the automobile and developing the next generation of high-efficiency vehicles powered by diverse energy sources. —Tom Stephens.
The company will be an engineering partner on each of six processes for biofuel production being evaluated under the program: fermentation, catalytic conversion, catalytic fast pyrolysis, hydropyrolysis, hydrothermal liquefaction, and a low-cost, one-step syngas-to-distillates process.
Earlier this month, ARENA also released a report that identified opportunities for Australia to export hydrogen as global demand for hydrogen increases in the next decade. Funding recipients are: Australian National University (ANU) Hydrogen Generation by Electro-Catalytic Systems – $615,682. ANU Direct Water Electrolysis – $1,235,407.
Researchers in South Korea have developed a simple, low-cost and eco-friendly method of creating nitrogen-doped graphene nanoplatelets (NGnPs) with excellent catalytic performance in both dye-sensitized solar cells and fuel cells to replace conventional platinum (Pt)-based catalysts for energy conversion. —Jeon et al.
LeMond and Deakin University are teamed to commercialize this innovative technology which enables reductions of 75% and 70% in capex and energy consumption per kilo of output respectively. million of seed capital from individual and institutional investors, including Deakin University.
Enedym, a switched reluctance motor (SRM) spinout from McMaster University, closed a $15-million financing round from an international group of strategic investors within the US, Canada, Europe, and India, including P&A Paletta Giving Inc., TRIO Capital Group Inc., Napino Group, KWG Capital Inc., Earlier post.).
Echion Technologies, a spin-off from the University of Cambridge developing niobium oxide-based materials for anodes, has closed a £10-million (US$13.8 million) Series A funding round. Twice the volumetric capacity of LTO anodes. Safe operating voltage. 1000’s of cycles demonstrated.
The small size, multi-fuel capability and potential lowcost of the ULRE could also help speed adoption of electric vehicles. Ionotec Ltd (lead), Dynamic-Ceramic Ltd, Birmingham University, University College London, Aloxsys Inc. Axeon Technologies Ltd (lead), University of St Andrews, Nexeon Ltd, Ricardo UK Ltd.
Start-up Liquid Light, a developer of process technology to make major chemicals from low-cost, globally-abundant carbon dioxide ( earlier post ), has closed a $15-million Series B financing. New investors include Sustainable Conversion Ventures, which focuses on renewable fuels and chemicals investments.
The companies are collaborating to integrate the YASA direct-drive motor ( earlier post ) with the new Sevcon Gen 4 ( earlier post ) Size 8 400V controller for use in global EV and HEV automotive applications. Oxford YASA Motors Limited is Oxford University’s 65 th spin-out company.
Dr. Wood developed a new method for image analysis for this purpose, upon which she created a new low-cost technique that is compatible with current manufacturing processes. The award was presented in a ceremony at Stanford University by Dr. Kurt Bock, Chairman of the Board of Executive Directors of BASF SE, and Prof.
The report is specifically focused on the potential for technology from select UK companies to enable a disruptive step-change in fuel cell cost reduction to accelerate consumer uptake, leading to approximately double the number of fuel cell cars on the road globally by 2030 versus current expectations. 500,000 units per year).
Porter Machinery Company; Honeywell Aerospace; Montana Tech of The University of Montana; and TechSolve, Inc.). University of Pittsburgh (Acutec Precision Machining Inc.; McGowan Institute for Regenerative Medicine at the University of Pittsburgh (ExOne and Magnesium Elektron Powders). GE Global Research (3DSim, Inc.;
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