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Heliogen and Bloom Energy have successfully demonstrated the production of green hydrogen by integrating the companies’ technologies: Heliogen’s concentrated solar energy system and the Bloom Electrolyzer. Electricity accounts for nearly 80% of the cost of hydrogen from electrolysis. Source: Heliogen. Source: Heliogen.
has developed a proprietary catalytic process that transforms low-costcommercially available, or even waste by-product, renewable alcohols into renewable isoprene that would be expected to compete head-to-head on price with natural and petroleum-based chemical equivalents while reducing CO 2 emissions.
million to 10 industry-led projects to advance nuclear technologies, including two aimed at expanding clean hydrogen production with nuclear energy. The 50 kW demonstration will prove that high-efficiency syngas production can be achieved at low capital-cost using GRC’s unique thermal-spray-based SOCC technology.
But until now, flow batteries have relied on chemicals that are expensive or hard to maintain, driving up the cost of storing energy. Vanadium is used in the most commercially advanced flow-battery technology now in development, but it sets a rather high floor on the cost per kilowatt-hour at any scale. Commercialization.
FCRD's primary business will be the development of fuel cell systems for commercial vehicles to contribute to the realization of a clean mobility society in China. — signed a joint venture agreement for the establishment of United Fuel Cell System R&D (Beijing) Co., Each company will invest in the joint venture.
Silicon-Valley-based Ampcera announced a low-cost flexible solid electrolyte (SE) membrane technology for solid-state batteries (SSBs). Performance and cost are the bottlenecks in the commercialization of SE technology and SSBs. Hui Du, co-founder and CTO of Ampcera. Argyrodite, LGPS, LPS, LSPS, etc.);
The program aims to converge automotive mass production techniques with the reliability of commercial-grade aerospace. The path to delivering low-cost aircraft systems starts with engineering services, then parts fabrication, and finally system integration supporting the launch of ASX’s all-electric eVTOL aircraft, the MOBi-One.
Evonik has now developed a novel anion exchange membrane (AEM), which should contribute to the breakthrough of electrolytic production of hydrogen. Our membrane could allow commercial realization of highly efficient and economically viable electrolysis technology.
Hyundai Motor Company is spearheading the development of a hydrogen fuel cell commercial vehicle ecosystem in China with regional partners. Hyundai believes China has a massive potential for hydrogen powered commercial vehicles. —In Cheol Lee, Executive Vice President and Head of Commercial Vehicle Division at Hyundai Motor.
However, most processes rely on high temperatures and are often too expensive for widespread commercial use. In addition to geologic production, methane can be produced from renewable or recycled CO 2 sources, and can be used as fuel itself or as an H 2 energy carrier.
This will be the world’s first demonstration project in which a large amount of ammonia will be co-fired in a large-scale commercial coal-fired power plant. Ammonia enables efficient, low-cost transport and storage of hydrogen. The project will run for approximately 4 years from June 2021 to March 2025.
These awardees will work to acheive important technical and commercialization milestones to advance successful design of a fusion pilot plant (FPP) to move fusion toward technical and commercial viability. Commercial fusion power on a decadal timescale with the compact, high-field ARC power plant. Xcimer Energy Inc.
Researchers at the Korea Institute of Science and Technology (KIST) have developed a steam-carrier-adopted composite membrane reactor system to produce pure H 2 (>99.99%) from ammonia with high productivity (>0.35 Membrane reactor for production of H 2 from NH 3. mol-H 2 g cat ?1 Credit: KIST. 2020.118483.
a global supplier of hydrogen fuel cell-powered commercial vehicles, announced a joint venture to build up to 100 hydrogen hubs across the United States and globally. into locally produced, renewable hydrogen for Hyzon’s fleet of zero-emission commercial vehicles. Raven SR , a renewable fuels company, and Hyzon Motors Inc.,
Rice University researchers have created an efficient, low-cost device that splits water to produce hydrogen fuel. That lowers the entry barrier for commercial adoption. Ajayan, and Jun Lou (2020) “A Low-Cost and High-Efficiency Integrated Device toward Solar-Driven Water Splitting” ACS Nano doi: 10.1021/acsnano.9b09053.
Westinghouse Electric Company and Bloom Energy Corporation have entered into a Letter of Intent to pursue clean hydrogen production in the commercial nuclear power market. Solid oxide technology is well suited for nuclear applications, efficiently harnessing steam to further improve the economics of hydrogen production.
Start-up Power Japan Plus announced plans to commercialize a dual-carbon battery technology, which it calls the Ryden dual carbon battery. Power Japan Plus will begin benchmark production of 18650 Ryden cells later this year at the company’s production facility in Okinawa, Japan. Capacity vs. cycle number. Click to enlarge.
A multi-institutional team led by the US Department of Energy’s (DOE) Argonne National Laboratory (ANL) has developed a low-cost cobalt-based catalyst for the production of hydrogen in a proton exchange membrane water electrolyzer (PEMWE). volts (Nafion 212 membrane) and low degradation in an accelerated stress test.
The two-year project, which includes a 50% cost share, will focus on the development of a low-cost, fast-charging EV battery technology. The continued growth of the EV industry requires lower-cost, faster-charging batteries. 24M has been awarded a $3.8-million
AW-Energy Oy is entering the commercial hydrogen market by introducing a combined WaveRoller and HydrogenHub process for the production of green hydrogen. In AW-Energy’s concept, wave energy complements solar power production to enable large-scale green hydrogen. The technology can be deployed as single units or in farms.
a division of GCL Poly, in China to make the final modifications to the solar cells required to manufacture the Gen 1 hydrogen production panels to be used in demonstration pilot plants. Gen 2 will use easily scalable low-cost electrochemical processing for manufacturing multi-junction nanoparticles for PEC production of hydrogen.
This project will expand Anovion’s existing manufacturing capacity in Sanborn, NY—notably the only qualified US source of battery-grade synthetic graphite commercially shipping product today. Materials Separation & Processing (Cathode Minerals). Albemarle US , Kings Mountain Lithium Materials Processing Plant, $149,658,312.
Desktop Metal, a provider of mass-production additive-manufacturing (AM) solutions, has qualified the use of 4140 low-alloy steel for the Production System platform, which leverages patent-pending Single Pass Jetting (SPJ) technology designed to achieve the fastest build speeds in the metal additive manufacturing industry.
Sionic’s silicon-anode battery cell designs incorporate the company’s complete technology innovations that deliver up to 50% greater energy density, 30% lower cost, and increased safety, and can be integrated into cylindrical, pouch, or prismatic cell formats in existing cell production supply chains and infrastructure.
A new fabrication technique could allow all-solid-state automotive lithium-ion batteries (ASSLBs) to adopt nonflammable ceramic electrolytes using the same production processes as in batteries made with conventional liquid electrolytes. The standard electrode assemblies, including the polymer binder or glue, can be stable in these conditions.
As part of product validation, Lightning integrated a 24-kWh battery pack with Enevate technology into the Strike Carbon e-motorcycle. The charging time for similar production electric motorcycles is usually one to four hours.
Most recently in November 2022, ABTC was selected for a competitive US DOE grant for a $20-million project to develop and commercialize a set of next-generation battery recycling technologies to even further enhance the recovery of recycled products and reduce the cost of operations.
Archer, a manufacturer of electric vertical takeoff and landing (eVTOL) aircraft, and Fiat Chrysler Automobiles (FCA) have entered into a definitive agreement to enable Archer to benefit from access to FCA’s low-cost supply chain, advanced composite material capabilities, and engineering and design experience. trillion by 2040.
The company will use the investment to continue scaling operations and increasing manufacturing capabilities as it ramps up production in the United States. million in cost share for the development of low-cost, fast-charge electric vehicle batteries. —Yves Yemsi, chief operating officer of Lilium. Earlier post.).
ENEOS Corporation has constructed a demonstration plant in Brisbane, Australia, to produce methylcyclohexane (MCH), a liquid organic hydrogen carrier (LOHC), using its proprietary low-cost electrochemical synthesis of organic hydride method Direct MCH. Earlier post.) The plant will begin operation this month.
The team will convert natural gas into carbon nanotubes with concurrent production of hydrogen, spin them into fibers, and evaluate the fiber performance and properties with the target of displacing metals. High Value, Energy Saving Carbon Products and Clean Hydrogen Gas from Methane, $3,479,624. Nanocomp Technologies, Inc.
The ZEV products ranged from a class 5 on a SEA Electric SEA-Drive 120a on a Hino M5 chassis, up to a Hino XL Series class 8 tractor powered by Toyota’s Fuel Cell system ( earlier post ). For customers ready to move in that direction now, the SEA Electric SEA-Drive 120a paired with a Hino M Series chassis is commercially available today.
VoltStorage develops and produces commercial storage systems based on the particularly ecological vanadium redox flow technology for commercial and agricultural enterprises. In addition, product development of the iron-salt technology will be accelerated towards commercialization.
Hydrazine (H 2 NNH 2 ) is also observed as a by-product and is suspected to be an intermediate in the formation of ammonia. This one-step nitrogen-fixation strategy to produce ammonia is eco-friendly and lowcost, which converts widely available starting materials into a value-added product. —Song et al.
This marks a first-of-its-kind manufacturing achievement and is an important step towards Sakuu’s planned commercial-scale production of next-generation SwiftPrint batteries, including solid-state batteries, from its Kavian platform in gigafactories worldwide, the company said.
Researchers from the Korea Electrotechnology Research Institute (KERI) and Kumoh National Institute of Technology (KIT), have developed a low-costproduction technology for silicon disulfide (SiS 2 ) for solid-state electrolytes (argyrodite-type) that has potential to accelerate the commercialization of all-solid-state batteries (ASSBs).
Sakuu battery’s Wh/L capabilities have increased exponentially since development began in August of 2020, and with this latest benchmark test completed in February 2022, is more promising than leading commercially available batteries.
The SOEC is mainly built of abundant and low-cost ceramic materials in a metal housing. Topsoe is currently a global leader in hydrogen technology, catalysts, and services that enable efficient production of hydrogen. —Amy Hebert, Chief Commercial Officer of Haldor Topsoe. E tn , thermoneutral potential.
A team from the University of Calgary and Rice University has used flash joule heating (FJH) ( earlier post ) to convert low-value asphaltenes—a by-product of crude oil refining—into a high-value carbon allotrope, asphaltene-derived flash graphene (AFG). Flash graphene from asphaltenes. (A)
24M announced that it has developed and delivered commercially-viable, high energy density lithium-ion cells. These deliveries represent a significant milestone in the 24M mission to scale its unique, capital-efficient, low-cost approach to advanced lithium-ion battery manufacturing. —Naoki Ota, CTO of 24M.
European Energy , a Danish developer and operator of green energy projects, has ordered a 50 MW electrolyzer from Siemens Energy for use in developing the first large-scale commercial e-Methanol production facility. Start of commercial methanol production is planned for second half of 2023.
COBRA incorporates environmental impact studies to help ensure that the carbon footprint of the end product is reduced, by eliminating cobalt and other toxic or scarce elements, while using metal components with recyclability of more than 95%. The project launched earlier this year and will run until January 2024. 50% pack weight reduction.
A key objective of the Gigastack project is to identify and to highlight regulatory, commercial and technical challenges for real applications of industrial-scale renewable hydrogen systems. Producing hydrogen has traditionally been associated with high carbon emissions, but by using renewable electricity—e.g.,
The current extension will allow the company to increase focus on its more efficient GEN 2 hydrogen production technology which is intended to reduce the cost of producing renewable hydrogen significantly. The University of Iowa has been a key and productive partner in the development of our GEN 1 panels.
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