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Researchers from Japan’s NIMS (National Institute for Materials Science), the University of Tokyo and Hiroshima University have jointly conducted a techno-economic analysis for hydrogen production from photovoltaic power generation (PV) utilizing a battery-assisted electrolyzer. This approximately converts to US$1.92 to US$3.00/kg to US$3.00/kg
Researchers at Harvard have demonstrated a metal-free organic–inorganic aqueous flow battery—a quinone–bromide flow battery (QBFB)—as an example of a class of energy storage materials that exploits the favorable chemical and electrochemical properties of a family of molecules known as quinones. Huskinson et al. Background.
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. —Dr.
The team projects that the high-efficiency vehicle will have a a minimum unit cost of only $1,400 to produce—the price of an average mountain bike—once the funding goal is reached. Of that, the battery will deliver 90 to 95 km; with self-charging and solar, the range increases to 120 km +. The battery is 48V, 22 Ah.
Schematic illustration of the aqueous rechargeable lithium battery (ARLB) using the coated lithium metal as anode, LiMn 2 O 4 as cathode and 0.5 Researchers from Fudan University in China and Technische Universität Chemnitz in Germany have developed an aqueous rechargeable lithium battery (ARLB) using coated Li metal as the anode.
Friend Family Distinguished Professor of Engineering, have been exploring the use of low-cost materials to create rechargeable batteries that will make energy storage more affordable. These materials could also provide a safer and more environmentally friendly alternative to lithium-ion batteries.
The demand for domestically produced and sustainably sourced battery metals has grown at a near insatiable rate over recent years, as the domestic manufacturing capacity of lithium-ion batteries has grown exponentially from less than 50 GWh/year to now more than 700 GWh/year of operational and announced capacity.
The COBRA (CObalt-free Batteries for FutuRe Automotive Applications) project has been awarded a €11.8-million million grant to develop Next Generation Cobalt-free batteries. The project will result in a unique battery system that features superior energy density, lowcost, increased cycles and reduced critical materials.
Researchers led by the Department of Energy’s Pacific Northwest National Laboratory (PNNL) have extended the capacity and duration of sodium-aluminum batteries. The new sodium-based molten salt battery uses two distinct reactions. h is achieved with an estimated raw active materials cost of $7.02 of peak charge capacity.
million contract from the United States Advanced Battery Consortium LLC (USABC). 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.
Based on an analysis of various cost of ownership scenarios for various drivetrains, including internal combustion engine (ICE) gasoline and diesel; hybrid (HEV); battery-electric (EV); plug-in hybrid electric (PHEV); and fuel cell vehicles, Lux Research concludes that fuel cell vehicles (FCVs) are “ solidly in a laggard position. ”.
kWh air-cooled battery pack. kWh battery pack, and has an estimated range of 100 miles (161 km). Based upon research of city/urban usage, eMO has the flexibility—with rear seats articulated—to do double-duty as a personal cargo carrier, without the mass and cost of a dedicated trunk. The eMO study. Click to enlarge.
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. Click to enlarge.
Stanford University scientists have identified a new solid-state Li-ion electrolyte predicted to exhibit simultaneously fast ionic conductivity, wide electrochemical stability, lowcost, and low mass density. S system also has a low elemental cost of approximately 0.05 V and possibly as high as 3 V or greater.
For the study, they define EVs as including both battery-electric (BEV) and plug-in hybrid electric (PHEV) vehicles. However, managed EV adoption can reduce the cost of achieving GHG reductions through a RES, they concluded in their paper published in the ACS journal Environmental Science & Technology. In contrast, the ?TCE
Boston-based startup Form Energy claims to have achieved a battery breakthrough using one of the oldest materials known to industrialized civilization: Iron.
ARPA-E’s new program, Robust Affordable Next Generation Energy Storage Systems (RANGE) ( earlier post ), aims to accelerate widespread EV adoption by dramatically improving driving range and reliability, and by providing low-cost, low-carbon alternatives to today’s vehicles. Advanced Aqueous Lithium-Ion Batteries.
The overarching aim of the Current Direct project is to develop and demonstrate an innovative interchangeable waterborne transport battery system and Energy-as-a-Service (EaaS) Platform in an operational environment at the Port of Rotterdam at TRL7 that facilitates fast charging of vessels, fleet optimization and novel business models.
DeepGreen is developing a new, scalable source of EV battery metals in the form of polymetallic nodules found unattached on the seafloor in the Pacific Ocean. Rising raw materials prices risk undermining EV manufacturers’ efforts to drive down the cost of EV batteries necessary for mass adoption; and. DeepGreen Metals Inc.,
F 0.7 , for sodium-ion (Na-ion) batteries (NIBs). While high-energy Li-ion batteries (LIBs) are expected to contribute in part to the solution, the high cost and low stability prohibit wide application in this area, the researchers observe. In a prior study, they developed a new Li-ion battery electrode—Li 1.1
million in Series A funds to build autonomous battery-electric rail vehicles that move freight. The Parallel system can also help alleviate the supply chain crisis by enabling lowcost and regular movement of freight in and out of ports. —Matt Soule, Co-founder and CEO, Parallel Systems.
The US Department of Energy (DOE) announced up to $45 million in funding ( DE-FOA-0002760 ) to support the domestic development of advanced batteries for electric vehicles. Advanced batteries capable of safe, rapid charging are necessary to appeal to these Americans who are unable to charge cars at home for long periods of time.
Yet-Ming Chiang (co-founder of A123 Systems), report on their development of a new energy storage concept—a semi-solid flow cell (SSFC) combining the high energy density of rechargeable batteries with the flexible and scalable architecture of fuel cells and flow batteries—in a paper published in the journal Advanced Energy Materials.
The process could significantly lower the cost of producing the one-dimensional (1D) nanostructures, enabling a broad range of uses in lightweight structural composites, advanced sensors, electronic devices—and thermally-stable and strong battery membranes able to withstand temperatures of more than 1,000 ˚C. —Gleb Yushin.
Solvay Ventures, the venture capital fund of Solvay, invested in Sepion, a California-based start-up that specializes in advanced membranes for batteries with Li-metal anodes and liquid electrolytes. Sepion raised funds to accelerate commercialization of lithium metal batteries for long-range and low-cost electric vehicles.
E-bicycle sales volumes are being driven by macroeconomic trends such as the growth of urbanization and the increasing need for low-cost transportation in developing markets. The vast majority of the e-bicycles sold in China, the world’s largest market, utilize sealed lead acid (SLA) batteries.
The electric vehicles—in van and truck configurations—are designed specifically for use by delivery and service businesses and use supercapacitor battery hybrid technology to achieve an all-electric range of 330 km (205 miles) for the IONA Van and 300 km (186 miles) for the IONA Truck—up to 40% more than comparable e-LCVs.
The results showed that more than 50% of most characterized impacts are generated from the battery operations, while the battery anode with SiNW material contributes to around 15% of global warming potential and 10% of human toxicity potential. kWh battery system comprising 12 modules with each module containing 12 LIB prismatic cells.
This partnership brings together 17 scientists and engineers from nine universities across Canada, who will work on reducing the cost of PEMFCs through the exploration of alternative non-platinum metals and the fabrication of advanced layer structures. Batteries for grid energy storage and medical devices have similar requirements.
optioned a PNNL-developed method for building titanium oxide and carbon structures that greatly improve the performance of lithium-ion batteries. The new material stores twice as much electricity at high charge/discharge rates as current lithium ion batteries, and creates increased battery capacity and a longer cycle life.
Cyclonatix, Inc is developing an industrial-sized motor/controller to operate with either DC or AC power sources, for applications in electric vehicles, solar-powered pumps, HVAC&R, gas compressors, and other commercial and industrial machines which require high efficiency, variable speed/torque, and lowcost. rechargeable battery?technology?that
Vorbeck Materials , a startup company based in Jessup, Maryland, is using a Pacific Northwest National Laboratory (PNNL)-developed method for developing graphene for better lithium air and lithium sulfur batteries. When combined with other advanced battery materials, it could effectively lower battery life cycle cost by up to 70%.
VTO is seeking projects that address the major challenges to developing and commercializing batteries for plug?in As described in multiple DOE reports, the main barriers to widespread PEV commercialization are the cost; performance and life; and abuse tolerance of high?energy energy batteries. in electric vehicles (PEVs).
Twelve research projects are receiving $30 million in funding under the AMPED program, which aims to develop advanced sensing and control technologies that could significantly improve and provide new innovations in safety, performance, and lifetime for grid-scale and vehicle batteries. batteries during charge and discharge cycles.
Karma Automotive announced its flexible and modular E-Flex platform ( earlier post ) with an efficient flat floor battery electric vehicle (BEV) architecture.
The second round was focused specifically on three areas of technology representing new approaches for advanced microbial biofuels (electrofuels); much higher capacity and less expensive batteries for electric vehicles; and carbon capture. Better Batteries - Batteries for Electrical Energy Storage in Transportation (BEEST).
The blower was developed in both a low- and high-voltage version with up to 800 volts. The project aims to reduce the currently still high manufacturing costs of these systems by using low-cost, space-saving components and a high level of integration.
A team led by Dr. Stuart Licht at The George Washington University in Washington, DC has developed a low-cost, high-yield and scalable process for the electrolytic conversion of atmospheric CO 2 dissolved in molten carbonates into carbon nanofibers (CNFs.) —Stuart Licht.
The New York State Energy Research and Development Authority (NYSERDA) has awarded $650,000 to Primet Precision Materials of Ithaca to further the company’s work on developing a more energy-efficient process to manufacture high-end battery materials. The NYSERDA funding will leverage an additional $1.5
a diversified software and services company, and ReJoule, a battery diagnostics and optimization company. The California Energy Commission Grant proposal was for the solicitation (GFO-19-310) Validating Capability of Second-life Batteries to Cost-Effectively Integrate Solar Power for Small-Medium Commercial Building Applications.
It is an ideal fun hatch which offers premium, safety and technology features, eco-friendly footprint, spirited performance, all made even more desirable with the added advantage of a lowcost of ownership. Battery Pack. The battery and motor also come with 8 years or 160,000 km warranty. Charging Option. XZ+ Tech LUX.
Haldor Topsøe A/S, a global market leader in catalysis and related process technologies, recently acquired 18% of the shares in sodium-ion battery technology company Faradion Ltd, based in Sheffield, UK. Other partners in the investment included Finance Yorkshire’s Seedcorn Fund and Rising Stars Growth Fund II LP.
The Precourt Institute for Energy, the umbrella organization for energy research and education at Stanford, will fund the following four studies: Nanostructured Polymers for High-Performance Batteries. This project explores the use of specially designed nanostructured polymers to make high-energy, low-cost, flexible and stretchable batteries.
Ford is exploring a variety of “beyond Li-ion” solutions, including Lithium-sulfur, Lithium-air and solid-state lithium-ion batteries. A Li-air battery, with its air cathode, is a low-cost system, Anandan said. All of the advanced battery systems use Li metal anodes to provide high energy density, Anandan noted.
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