EEStor
Valued at some $66 million after Zenn Motor invested $2.5 million for a 3.8% stake in 2007, EEStor aims to solve the renewable energy problem with its "battery-ultracapacitor" hybrid technology. While traditional batteries wear out and have to be thrown away, "ultracaps" can be used and recharged for decades with almost no degradation; the downside is that they tend to hold about 25 times less energy per pound than lithium ion batteries, meaning that they have to be recharged fairly often. EEStor says it solved that problem using a ceramic ultracapacitor with a barium-titanate insulator that can absorb higher amounts of energy per given unit of mass. While critics claim the ultracaps are too costly to manufacture, EEStor plans to hit the market later this year.
http://www.forbes.com/2008/02/27/battery-motorola-mit-ent-tech-cx_bn_0228battery_slide_3.html?thisSpeed=3000000
Saturday, March 29, 2008
EEStor battery-ultracapacitor
EEStor unveils ultracapacitor-based battery system, Li-ion shudders in fear
Lockheed Martin Signs Agreement with EESTOR, Inc., for Energy Storage Solutions
EEStor, based in Cedar Park, TX, is developing a ceramic battery chemistry that could provide 10 times the energy density of lead acid batteries at 1/10th the weight and volume. As envisioned, EESUs will be a fully “green” technology that will be half the price per stored watt-hour than traditional battery technologies.
“Lockheed Martin has a wide range of innovative energy solutions for federal, state and regional energy applications,” said Glenn Miller, vice president of Technical Operations and Applied Research at Lockheed Martin Missiles and Fire Control. “The EEStor energy storage technology provides potential solutions for the demanding requirements for energy in military and homeland defense applications.”
EESUs are planned as nontoxic, non-hazardous and non-explosive. Since the EESU design is based on ultra-capacitor architecture, it will allow for flexible packaging and rapid charge/discharge capabilities. EESUs will be ideally suited for a wide range of power management initiatives that could lead to energy independence for the Warfighter.
“Lockheed Martin continues to focus on providing our Warfighters with new and innovative technologies that will make their jobs easier,” said Lionel Liebman, manager of Program Development – Applied Research at Lockheed Martin Missiles and Fire Control. “Our ruggedized BattPack™ energy storage unit generated considerable interest at the Association of the United States Army Annual Meeting in October 2007 for its potential for fuel savings in vehicular silent watch applications. The potential of an even safer, smaller and more powerful EESU in BattPack™ would significantly enhance the Warfighter’s capabilities.”
EESU qualification testing and mass production at EEStor’s facility in Cedar Park is planned for late 2008.
EEStor, Inc., of Cedar Park, TX, originally developed its solid-state EESU technology as a longer lasting, lighter, more powerful environmentally friendly electronic storage unit for a wide variety of applications. EEStor’s vision also includes EESU facilitating the conversion of wind energy and photovoltaics into primary electrical energy providers and increasing the role of renewables for increasing energy production. Its CEO and president, Richard Weir, is also the inventor named on its EESU principal technology patent.
Headquartered in Bethesda, Md., Lockheed Martin employs about 140,000 people worldwide and is principally engaged in the research, design, development, manufacture, integration and sustainment of advanced technology systems, products and services.
http://www.lockheedmartin.com/news/press_releases/2008/010908_LockheedMartinSignsAgreement.htmlKleiner Perkins' Latest Energy Investment EEStor Inc
The company was founded in 2001 by Richard D. Weir, Carl Nelson, and Richard S. Weir, who have backgrounds as senior managers in disk-storage technology at such companies as IBM and Xerox PARC. They previously co-founded disk-storage startup Tulip Memory Systems, where they won 16 U.S. patents.
According to a May, 2004 edition of Utility Federal Technology Opportunities, an obscure trade newsletter, EEStor claims to make a battery at half the cost per kilowatt-hour and one-tenth the weight of lead-acid batteries. Specifically, the product weighs 400 pounds and delivers 52 kilowatt-hours. (For battery geeks: "The technology is basically a parallel plate capacitor with barium titanate as the dielectric," UFTO says.) No hazardous or dangerous materials are used in manufacturing the ceramic-based unit, which means it qualifies as what Silicon Valley types call "cleantech."
As of last year, EEStor planned to build its own assembly line to prove the battery can work and then license the technology to manufacturers for volume production, UFTO says. Selling price would start at $3,200 and fall to $2,100 in high-volume production. Of course, all of this may have changed since KPCB got involved.
KPCB's investments are closely watched because the firm has made some of the most successful bets in VC history (Google, Amazon.com, Netscape, AOL, etc.). Energy investments carry a little extra risk for the firm since it is relatively new to the sector. Speaking at Stanford University in February, KPCB general partner John Doerr said the firm had made four energy investments so far, including fuel-cell maker Ion America. It will be interesting to watch how these companies develop.
http://www.businessweek.com/the_thread/dealflow/archives/2005/09/kleiner_perkins_1.htmlLockheed signs deal with EEStor
Lockheed Martin has signed a deal with EEStor to try to integrate the ultracapacitor start-up's electrical energy storage units into the defense contractor's products.
Financial terms of the agreement, announced Wednesday, were not disclosed.
EEStor is developing a ceramic battery chemistry that could provide 10 times the energy density of lead acid batteries at about a tenth of the weight and volume, according to Lockheed. A Lockheed spokesman said the company is interested in energy storage systems a soldier can carry, but also car batteries and energy systems for remote buildings.
Lockheed will spend most of the year evaluating samples it gets from EEStor and, if all goes well, it can start incorporating them into products. EEStor will begin to conduct qualification testing and mass production of the units in late 2008. As part of the contract, Lockheed will have the exclusive right to use EEStor products in the homeland security market.
The company also announced that former Dell Chairman Mort Topfer has joined its board. Last year, it was reported that Topfer left the board. The Toronto Star broke that story. (I wrote a story repeating what the Star said, citing the newspaper.) Reporter Tyler Hamilton says that Topfer did leave, but is now rejoining.
This marks another unexpected turn in the EEStor saga. The company has devised an energy storage device that it says can change the battery industry. Zenn Motors of Canada is an investor and wants to incorporate the batteries into its cars. Kleiner Perkins Caufield & Byers is said to be an investor.
EEStor, however, doesn't say a lot. In fact, the company rarely gives statements or issues releases, though it's one of the favorite topics of debate in the clean-tech world. For instance, EEStor didn't say it will begin qualification and testing on the battery units that are part of this deal. Lockheed did, in its own release (which, incidentally, doesn't include quotes from EEStor). EEStor didn't put a release out on the deal, though it put one out on Topfer.
Some people who have visited the company's facilities or reviewed its patents have come away believers. Others have become skeptics. EEStor had hoped to come out with products in 2007 but was forced to delay.
The Lockheed deal gives the company a shot of credibility. Critics, though, will likely remain skeptical until they see the devices. Defense contractors, after all, sign lots of deals like this.
Supercapacitor
Supercapacitors, also known as ultracapacitors or electrochemical double layer capacitors (EDLC), are electrochemical capacitors that have an unusually high energy density when compared to common capacitors, typically on the order of thousands of times greater than a high-capacity electrolytic capacitor. For instance, a typical D-cell sized electrolytic capacitor will have a storage capacity measured in microfarads, while the same size supercapacitor would store several farads, an improvement of about 10,000 times. Larger commercial supercapacitors have capacities as high as 5,000 farads.[1]
Supercapacitors have a variety of commercial applications, notably in "energy smoothing" and momentary-load devices. Some of the earliest uses were motor startup capacitors for large engines in tanks and submarines, and as the cost has fallen they have started to appear on diesel trucks and railroad locomotives.[2] More recently they have become a topic of some interest in the green energy world, where their ability to quickly soak up energy makes them particularly suitable for regenerative braking applications, whereas batteries have difficulty in this application due to slow charging times. If the LEES or EEStor devices can be commercialized, they will make an excellent replacement for batteries in all-electric cars and plug-in hybrids, as they combine quick charging, temperature stability and excellent safety properties.
http://en.wikipedia.org/wiki/Supercapacitor
A New Deal for EEStor
| Good-bye batteries?: The startup EEStor says that it has technology that will store ten times as much energy as lead acid batteries. Credit: Morris County Municipal Utilities Authority |
Earlier this month, a stealthy startup that says its ultracapacitor-based energy storage system could make conventional batteries obsolete took a small step toward proving its many skeptics wrong.
The company, EEStor, based in Cedar Park, TX, has made bold claims about its technology but has so far failed to deliver a working commercial product. However, an agreement announced this month with Lockheed Martin, based in Bethesda, MD, suggests that the company could be making progress--at least enough to convince a major defense contractor that the technology has merit. The agreement gives Lockheed an exclusive international license to use EEStor's power system for military and homeland-security applications--everything from advanced remote sensors and missile systems to mobile power packs and electric vehicles. The technology, Lockheed said in a statement, "could lead to energy independence for the Warfighter."
Lockheed has not seen a working prototype but said that qualification testing and mass production of EEStor's system is planned for late 2008. Lockheed would not disclose the terms of the partnership. "We fully intend to work with EEStor this year to prototype and demonstrate this technology for the soldier," says Lionel Liebman, Lockheed's manager of program development in its applied research division. "We're looking at a lot of applications where the EEStor application can help."
EEStor says that its patented system is a nontoxic, safe, and lower-cost alternative to conventional electrochemical battery technologies, offering ten times the energy density of lead-acid batteries. The company also claims that its system allows rapid and virtually unlimited charging and discharging without significant degradation of the unit. (See "Battery Breakthrough?") But many experts have been skeptical, citing the difficulty of working with the material at the core of the company's system: a ceramic made of barium-titanate.
A lack of news from the company has only fed the skepticism. The last public announcement from EEStor came last January, when it revealed that it had made high purity barium-titanate powders on its first automated production line. But the company has so far failed to deliver units of its storage product to minority investor ZENN Motor, a company based in Toronto that plans to use it in electric vehicles. Originally, the devices were to have shipped in the first half of last year.
EEStor chief executive Richard Weir declined to comment on the development of the technology and the agreement with Lockheed. But he told Technology Review in an e-mail message that he's anticipating another "technical news release in the near future," at which time he would be open to discussing EEStor's progress in more detail.
ZENN chief executive Ian Clifford remains optimistic. "Every restatement of delivery time has been for good reasons," he says, suggesting that the Lockheed announcement and the due diligence that led to it "add credibility to the technology." He's now expecting delivery of the energy-storage unit in mid-2008. And it won't be a prototype, he emphasizes: it will be a mass-produced commercial product. "This is about commercialization, not hitting technology roadblocks. We're in constant contact with EEStor, with regular visits to their site. We always come away from every meeting much more excited that this is going to happen."
ZENN has already switched to a different motor in its current low-speed electric vehicle, partly in anticipation of the new energy storage technology. "We're first in line," says Clifford. "We understand we'll be taking the first product off the production facility being built right now."
Liebman, who says that he has visited EEStor's facility in Cedar Park and was impressed, also expressed confidence in the company. He notes that EEStor's approach so far allows for a rapid ramp-up in production. "I think it's very real," he says.
http://www.technologyreview.com/Biztech/20090/page2/Battery Breakthrough? ultracapacitors
| The ZENN car will be the first commercial application of EEStor's new energy storage system. The company is expecting delivery of the systems later this year. Credit: ZENN Cars |
A secretive Texas startup developing what some are calling a "game changing" energy-storage technology broke its silence this week. It announced that it has reached two production milestones and is on track to ship systems this year for use in electric vehicles.
EEStor's ambitious goal, according to patent documents, is to "replace the electrochemical battery" in almost every application, from hybrid-electric and pure-electric vehicles to laptop computers to utility-scale electricity storage.
The company boldly claims that its system, a kind of battery-ultracapacitor hybrid based on barium-titanate powders, will dramatically outperform the best lithium-ion batteries on the market in terms of energy density, price, charge time, and safety. Pound for pound, it will also pack 10 times the punch of lead-acid batteries at half the cost and without the need for toxic materials or chemicals, according to the company.
The implications are enormous and, for many, unbelievable. Such a breakthrough has the potential to radically transform a transportation sector already flirting with an electric renaissance, improve the performance of intermittent energy sources such as wind and sun, and increase the efficiency and stability of power grids--all while fulfilling an oil-addicted America's quest for energy security.
The breakthrough could also pose a threat to next-generation lithium-ion makers such as Watertown, MA-based A123Systems, which is working on a plug-in hybrid storage system for General Motors, and Reno, NV-based Altair Nanotechnologies, a supplier to all-electric vehicle maker Phoenix Motorcars.
"I get a little skeptical when somebody thinks they've got a silver bullet for every application, because that's just not consistent with reality," says Andrew Burke, an expert on energy systems for transportation at University of California at Davis.
That said, Burke hopes to be proved wrong. "If [the] technology turns out to be better than I think, that doesn't make me sad: it makes me happy."
Richard Weir, EEStor's cofounder and chief executive, says he would prefer to keep a low profile and let the results of his company's innovation speak for themselves. "We're well on our way to doing everything we said," Weir told Technology Review in a rare interview. He has also worked as an electrical engineer at computing giant IBM and at Michigan-based automotive-systems leader TRW.
Much like capacitors, ultracapacitors store energy in an electrical field between two closely spaced conductors, or plates. When voltage is applied, an electric charge builds up on each plate.
Ultracapacitors have many advantages over traditional electrochemical batteries. Unlike batteries, "ultracaps" can completely absorb and release a charge at high rates and in a virtually endless cycle with little degradation.
Where they're weak, however, is with energy storage. Compared with lithium-ion batteries, high-end ultracapacitors on the market today store 25 times less energy per pound.
This is why ultracapacitors, with their ability to release quick jolts of electricity and to absorb this energy just as fast, are ideal today as a complement to batteries or fuel cells in electric-drive vehicles. The power burst that ultracaps provide can assist with stop-start acceleration, and the energy is more efficiently recaptured through regenerative braking--an area in which ultracap maker Maxwell Technologies has seen significant results.
On the other hand, EEStor's system--called an Electrical Energy Storage Unit, or EESU--is based on an ultracapacitor architecture that appears to escape the traditional limitations of such devices. The company has developed a ceramic ultracapacitor with a barium-titanate dielectric, or insulator, that can achieve an exceptionally high specific energy--that is, the amount of energy in a given unit of mass.
For example, the company's system claims a specific energy of about 280 watt hours per kilogram, compared with around 120 watt hours per kilogram for lithium-ion and 32 watt hours per kilogram for lead-acid gel batteries. This leads to new possibilities for electric vehicles and other applications, including for the military.
"It's really tuned to the electronics we attach to it," explains Weir. "We can go all the way down from pacemakers to locomotives and direct-energy weapons."
The trick is to modify the composition of the barium-titanate powders to allow for a thousandfold increase in ultracapacitor voltage--in the range of 1,200 to 3,500 volts, and possibly much higher.
EEStor claims that, using an automated production line and existing power electronics, it will initially build a 15-kilowatt-hour energy-storage system for a small electric car weighing less than 100 pounds, and with a 200-mile driving range. The vehicle, the company says, will be able to recharge in less than 10 minutes.
The company announced this week that this year it plans to begin shipping such a product to Toronto-based ZENN Motor, a maker of low-speed electric vehicles that has an exclusive license to use the EESU for small- and medium-size electric vehicles.
By some estimates, it would only require $9 worth of electricity for an EESU-powered vehicle to travel 500 miles, versus $60 worth of gasoline for a combustion-engine car.
"My understanding is that the leap from powder to product isn't the big leap," says Ian Clifford, CEO of ZENN, which is also an early investor in EEStor. "We're the first application, and that's thrilling for us. We took the initial risk because we believed in what they are doing. And energy storage is the game changer."
The key challenge, however, is to ensure that the barium-titanate powders can be made on a production line without compromising purity and stability. "Purification gives you better production stability, gives you better permittivity, and gives you the high voltages you're looking for," says Weir. "We've now got the chemicals certified and purified to the point we're looking for." (Better permittivity of the insulator improves the amount of charge that can be stored without letting the current leak across the two plates.)
EEStor announced this week that the first automated production line for its powder has performed as required and that permittivity will meet or exceed expectations. It also said that it achieved 99.9994 percent purity for its barium-nitrate powder, a crucial ingredient in the dialectric. San Antonia-based Southwest Research Institute independently confirmed the results.
In a traditional ultracap, that permittivity is given a rating of 20 to 30, while EEStor's claim is 18,500 or more--a phenomenal number by most accounts. "This is a very big step for us," says Weir. "This puts me well onto the road of meeting high-volume production."
Jim Miller, vice president of advanced transportation technologies at Maxwell Technologies and an ultracap expert who spent 18 years doing engineering work at Ford Motor, isn't so convinced.
"We're skeptical, number one, because of leakage," says Miller, explaining that high-voltage ultracaps have a tendency to self-discharge quickly. "Meaning, if you leave it parked overnight it will discharge, and you'll have to charge it back up in the morning."
He also doesn't believe that the ceramic structure--brittle by nature--will be able to handle thermal stresses that are bound to cause microfractures and, ultimately, failure. Finally, EEStor claims that its system works to specification in temperatures as low as -20 °C, revised from a previous claim of -40 °C.
"Temperature of -20 degrees C is not good enough for automotive," says Miller. "You need -40 degrees." By comparison, Altair and A123Systems claim that their lithium-ion cells can operate at -30 °C.
Burke, meanwhile, says that there's a big difference between making powder in a controlled environment and making defect-free devices in a large quantity that can survive underneath the hood of a car.
"I have no doubt you can develop that kind of [ceramic] material, and the mechanism that gives you the energy storage is clear, but the first question is whether it's truly applicable to vehicle applications," Burke says, pointing out that the technology seems more appropriate for utility-scale storage and military "ray guns," for which high voltage is an advantage.
Safety is another concern. What happens if a vehicle packed with a 3,500-volt energy system crashes?
Weir says the voltage will be stepped down with a bi-directional converter, and the whole system will be secured in a grounded metal box. It won't have a problem getting an Underwriters Laboratories safety certification, he adds. "If you drive a stake through it, we have ways of fusing this thing where all the energy is sitting there but it won't arc … It will be the safest battery the world has ever seen."
Regarding concerns about temperature, leakage, and ceramic brittleness, Weir did not reply to an e-mail asking him how EEStor overcomes such issues.
Nonetheless, the company has some solid backing. Its board has attracted Morton Topfer, former vice chairman of Dell and mentor to Michael Dell.
The company is also backed by Kleiner Perkins Caufield & Byers, a venture-capital powerhouse that has an impressive track record: it made early and highly successful bets on Google, Amazon.com, and Sun Microsystems, among others. Whether EEStor can translate that success to the energy sector remains to be seen.
"I'm surprised that Kleiner has put money into it," says Miller.
Weir maintains that his company will meet all of its claims, and then some. "We're not trying to hype this. This is the first time we've ever talked about it. And we will continue to meet all of the production requirements."
http://www.technologyreview.com/read_article.aspx?id=18086&ch=specialsections&sc=batteries&pg=3EEstor Future Capacitor
EEStor is a company based in Cedar Park, Texas, United States that claims to have developed a superior type of capacitor for electricity storage, which EEStor calls 'Electrical Energy Storage Units' (EESU). Its CEO and president is Richard Weir, who is also the inventor named on their principal technology patent.[1]
These units use barium titanate coated with aluminum oxide and glass to achieve a level of capacitance claimed to be much higher than what is currently available in the market. The claimed energy density is 1.0 MJ/kg (existing commercial supercapacitors typically have an energy density of around 0.01 MJ/kg, while lithium ion batteries have an energy density of around 0.54–0.72 MJ/kg).[2]
Based on these claims, a five-minute charge should give the capacitor sufficient energy to drive a small car 300 miles (480 km). However, standard household wiring is not capable of delivering the power required for this, so charging times this short would probably require purpose-built high capacity dispensing stations.[3] Overnight charging at home should still be practical[4], as is using a second EESU for the home which could be charged overnight using cheap, off-peak electricity to then charge the EEStor unit in the car in 5-10 minutes on demand.[5]