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ion Ventures, a modern utility and energystorage infrastructure specialist, and LiNa Energy , a solid-state battery technology developer, concluded their first successful trial of LiNa’s proprietary solid-state sodium-nickel battery platform at an undisclosed location in South East England last week.
Xcel Energy has released the preliminary results from its wind-to-battery (W2B) storage project in Minnesota, and termed the technology successful. We have proved that this technology can perform the functions of storage that we were looking for to help us manage the variability of wind energy on our operating system.
The US Department of Energy’s Advanced Research Projects Agency-Energy (ARPA-E) has selected 19 new projects to receive a total of $43 million to develop breakthrough energystorage technologies and support promising small businesses. Advanced Management And Protection Of Energy-Storage Devices (AMPED).
Sodium-ion batteries (SIBs), with the intrinsic advantages of resource abundance and geographic uniformity, are desired alternative battery technology to Li-ion batteries (LIBs) for grid-scale energystorage and transportation applications. A 60 mAh single-layer pouch cell was also fabricated and demonstrated stable performance.
Scheme of the new full sodium-ion battery, which combines an intercalation cathode and a conversion anode. The reported performance of the new Na-ion battery suggests that the sodium-ion system is a potentially promising power source for promoting the substantial use of low-cost energystorage systems in the near future, the team concluded.
The US Department of Energy is awarding $620 million for projects around the country to demonstrate advanced Smart Grid technologies and integrated systems. The selected projects include advanced battery systems (including flow batteries), flywheels, and compressed air energy systems. (DOE Los Angeles Department of Water and Power.
low-cost Na-ion battery system for upcoming power and energy. storage systems, the team concludes in a paper published in the journal Advanced Materials. low-cost Na-ion battery system for upcoming power and energy. storage systems, the team concludes in a paper published in the journal Advanced Materials. Earlier post.)
The New York State Energy Research and Development Authority (NYSERDA) has awarded $250,000 to each of eight companies and research centers to develop working prototypes for a wide range of energy-storage technologies. The recipients are all members of the NY Battery and EnergyStorage Technology ( NY-BEST ) Consortium.
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 energystorage technologies to benefit the UK in the global race to electrification. Next generation sodium ion batteries–NEXGENNA.
A plot of ESOI for 7 potential grid-scale energystorage technologies. Benson from Stanford University and Stanford’s Global Climate and Energy Project (GCEP) has quantified the energetic costs of 7 different grid-scale energystorage technologies over time. Credit: Barnhart and Benson, 2013.
Researchers at the University of Maryland, with colleagues at the University of Illinois at Chicago, report on a new method for expanding graphite for use as a superior anode for sodium-ion batteries in a paper in Nature Communications. to enlarge the interlayer lattice distance to accomodate the larger sodium ions.
The New York State Energy Research and Development Authority (NYSERDA) will award $8 million to help develop or commercialize 19 advanced energystorage projects. College of Nanoscale Science and Engineering of the University at Albany. City University of New York. Cornell University. Murray, Jr.,
Researchers at Chalmers University of Technology, Sweden, have developed a nanometric graphite-like anode for sodium ion (Na + storage), formed by stacked graphene sheets functionalized only on one side, termed Janus graphene. The estimated sodiumstorage up to C 6.9 100 to 150 mA h g ? 100 to 150 mA h g ?1
Natron Energy, a developer of new battery cell technology based on Prussian Blue analogue electrodes and a sodium-ion electrolyte, has ( earlier post ), has been awarded a $3-million grant by the California Energy Commission (CEC) for “Advanced EnergyStorage for Electric Vehicle Charging Support.”
Researchers at the University of Maryland have developed a nanocomposite material of amorphous, porous FePO 4 nanoparticles electrically wired by single-wall carbon nanotubes as a potential cathode material for sodium-ion batteries (SIBs). SWNT composite is a promising cathode material for viable sodium-ion batteries.
The US Department of Energy’s National Energy Technology Laboratory (NETL) is conducting research on alternative options to reduce costs and make large-scale energystorage safer and more practical. Innovative fabrication methods can also lead to significant energystorage system improvements.
Swedish sodium-ion battery developer Altris presented a pure Prussian White cathode material with a capacity of 160 mAh/g, making it the highest capacity declared to date. Prussian White is a framework material consisting of sodium, iron, carbon and nitrogen (Na x Fe[Fe(CN) 6 ] with x>1.9). Earlier post.)
Building on earlier work, researchers in China have fabricated a hierarchical metal-organic nanocomposite for use as a cathode in sodium-ion batteries (SIBs). 2017) “In-Situ Formed Hierarchical Metal-Organic Flexible Cathode for High-EnergySodium-Ion Batteries” ChemSusChem doi: 10.1002/cssc.201701484. and Huang, Y.
Researchers at the University of Texas, including Dr. John Goodenough, are proposing a strategy for high-capacity next-generation alkali (lithium or sodium)-ion batteries using water-soluble redox couples as the cathode. The cell operates without a catalyst and has high storage efficiency. Credit: ACS, Lu et al. —Lu et al.
Solid-state sodium battery company LiNa Energy ( earlier post ) has closed out a £3.5-million LiNa Energy, a spin-out from Lancaster University, established in 2017, is commercializing a safe, cobalt- and lithium-free solid-state sodium battery. million (US$4.8-million)
Natron Energy , a developer of new battery cell technology based on Prussian Blue analogue electrodes and a sodium-ion electrolyte, has closed a strategic investment by Chevron Technology Ventures (CTV) to support the development of stationary energystorage systems for demand charge management at electric vehicle (EV) charging stations.
Friedrich Schiller University Jena (FSU) and the Fraunhofer Institute for Ceramic Technologies and Systems Hermsdorf / (IKTS) are launching the new Center for Energy and Environmental Chemistry (CEEC) at Jena in Germany.
The winning concepts were: A molten air battery that uses a molten salt electrolyte at elevated temperature from Professor Stuart Licht at George Washington University. A novel rechargeable zinc battery from the research group of Professors Paul Wright and James Evans from the University of California, Berkeley.
Stanford researchers have developed a sodium-ion battery (SIB) that can store the same amount of energy as a state-of-the-art lithium ion, at substantially lower cost. Thus, further research is required to find better sodium host materials. Thus, further research is required to find better sodium host materials.
British battery R&D company Faradion has demonstrated a proof-of-concept electric bike powered by sodium-ion batteries at the headquarters of Williams Advanced Engineering, which collaborated in the development of the bike. Oxford University was also a partner. Sodium-ion intercalation batteries—i.e., Earlier post.)
The researchers present these results in the journal Nature Reviews Materials as part of a cost and resource analysis of sodium-ion batteries. … However, at present, the use of cobalt is still often necessary for cathode materials with high energy density owing to its stabilizing effect in layered oxides (including NCM(622) and NCA).
After years of anticipation, sodium-ion batteries are starting to deliver on their promise for energystorage. But so far, their commercialization is limited to large-scale uses such as storing energy on the grid. Sodium-ion batteries just don't have the oomph needed for EVs and laptops.
Chemists at the University of Waterloo have identified the key reaction that takes place in sodium-air batteries. Understanding how sodium-oxygen batteries work has implications for developing the more powerful lithium-oxygen battery, which has been proposed by some as the “holy grail” of electrochemical energystorage.
We managed to show that layered transition metal oxides, which are widely used in lithium, sodium, and potassium batteries, can be a promising class of materials for Ca cathodes. Haesun Park, Chung-Ang University, co-corresponding author. —Prof. Haesun Park, Christopher J. 202101698.
Researchers at Vanderbilt University have demonstrated that ultrafine sizes (∼4.5 nm, average) of iron pyrite (FeS 2 ) nanoparticles are advantageous to sustain reversible conversion reactions in sodium ion and lithium ion batteries. A paper on their work is published in the journal ACS Nano.
million research center, led by Michigan Engineering and funded by the US Department of Energy, will focus on understanding an emerging branch of science involving mechanical and chemical phenomena that affect advanced battery designs. Those include long-duration energystorage and hydrogen fuel cells.
Researchers at Bristol have developed high-performance sodium and potassium ion batteries using sustainably sourced cellulose. Scientists astounded by performance of sustainable batteries with far-reaching implications for electric vehicles and devices.
Bristol-led team uses nanomaterials made from seaweed to create a strong battery separator, paving the way for greener and more efficient energystorage. Sodium-metal batteries (SMBs) are one of the most promising high-energy and low-cost energystorage systems for the next-generation of large-scale applications.
The post New Sodium-Ion Battery Could Charge An Electric Vehicle In Seconds, Not Minutes appeared first on CleanTechnica. The electric vehicle revolution has barely gotten under way, and already the goalposts for EV charging times are moving on to the next phase.
A research group from Osaka Metropolitan University has developed a cheaper positive electrode to enhance all-solid-state sodium batteries. The post Sodium batteries improved with new electrode material appeared first on Innovation News Network.
Stationary energystorage systems that can operate for many cycles, at high power, with high round-trip energy efficiency, and at low cost are required. Existing energystorage technologies cannot satisfy these requirements. —Wessells et al. It fits perfectly— really, really nicely. —Yi Cui.
A team at the Ohio State University has developed a membrane that regulates bi-directional ion transport across it as a function of its redox state and that could be used as a programmable smart membrane separator in future supercapacitors and redox flow batteries. Structure and function of a smart membrane separator. (A) Click to enlarge.
Australia-based Sparc Technologies has entered into a strategic partnership agreement with the Queensland University of Technology (QUT). We will be targeting the production of materials for the high growth market of sodium-ion batteries which is displaying significant promise as an alternative to lithium-ion batteries.
A team led by researchers at Oregon State University have demonstrated that diffusion may not be necessary to transport ionic charges inside a hydrated solid-state structure of a battery electrode. —Xiulei (David) Ji, OSU, co-corresponding author. Grotthuss mechanism. Source: OSU. —Xiulei Ji. —Xiulei Ji.
The Center for Electrochemical EnergyStorage Ulm & Karlsruhe ( CELEST ), the largest German research platform for electrochemical, comprising research into Li-ion batteries, post-Li technologies, fuel cells, and redox-flow batteries, has begun operation. A high priority of CELEST will also be the education of young scientists.
A team from the University of Science and Technology Beijing is proposing a new super-valent battery based on aluminium ion intercalation and deintercalation. Nowadays, due to their outstanding energy and power density, Li-ion batteries have become a mainstay for EES [electrical energystorage]. Wang et al.
The same approach was also applied to design stable SEI layers for sodium and zinc anodes. Mallouk, Evan Pugh University Professor of Chemistry. The Office of Vehicle Technologies in the US Department of Energy and the National Science Foundation supported this work. V Li|LiNi 0.5 —Thomas E.
Battery modeling , led by Dr Gregory Offer, Imperial College London, with researchers from the Universities of Bath, Birmingham, Lancaster, Oxford, Portsmouth, Southampton, Warwick and UCL. Safety control and countermeasures are built into the design of today's LiB systems, but this adds complexity, cost and weight.
Currently, eight MXenes have been reported by our team, but there are likely many more that will be discovered—the MXene-and-ion combinations that have been tested to date are by no means an exhaustive demonstration of the material’s energystorage capabilities. —Yury Gogotsi. Maria R.
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