Showing posts with label supercaps. Show all posts
Showing posts with label supercaps. Show all posts

Friday, October 9, 2020

Another Supercapacitors, this time "Eco-Friendly" (saltwater)

 An AZOMaterials article highlights a paper in Nature Communications. It is worth noting that the researchers label this storage a "hybrid supercapacitor." Here are a few paragraphs from that article

The hybrid supercapacitor can be charged and discharged as fast as a capacitor and can store nearly as much energy as standard batteries. In contrast to the latter, it can be charged and discharged a lot faster and for more number of times: while the service life of a lithium-ion battery is a few thousand cycles, a supercapacitor can handle about one million charging cycles.

 :::

A specifically sustainable, but hitherto largely uninvestigated variant of such a hybrid supercapacitor comprises carbon and aqueous sodium iodide (NaI) electrolyte, with a negative supercapacitor electrode and a positive battery electrode.

Researchers Demonstrate Viability of Eco-Friendly Supercapacitors
https://www.azom.com/news.aspx?newsID=54747
8 Oct 2020

Prehal, C., et al. (2020) Persistent and reversible solid iodine electrodeposition in nanoporous carbons. Nature Communications. https://doi.org/10.1038/s41467-020-18610-6.


Thursday, October 8, 2020

Graphene SuperBattery and Electric Vehicles


From an  azom.com article

 

What is the SuperBattery? 

With charging cycles numbering in the hundreds of thousands, the SuperBattery is a promising prospect for addressing the three foremost issues related to electric vehicle use: long charging times, battery deterioration and concerns about vehicle range.

According to reports, the SuperBattery is a hybrid system that merges standard lithium-ion cells and Skeleton Technology's proprietary ultracapacitor cells. The main factor that differentiates the SuperBattery from similar systems is the Curved Graphene material that is used to make the ultracapacitors. As with other ultracapacitors, the SuperBattery does not have enough energy density to be a total replacement for lithium-ion batteries.

More details in the article

The Groundbreaking Graphene SuperBattery and the Future of Electric Vehicles
https://www.azom.com/article.aspx?ArticleID=19711



https://www.skeletontech.com/skelcap-ultracapacitor-cells

 All SkelCap ultracapacitors are 2.85V and the Farads range from 1200F to 3400F.

Thursday, July 9, 2020

State of the Art Supercapacitors, 3000uF 2.7v 3Wh



Maxwell Technologies  BCAP3000 P270 K05

1.124 lbs



https://www.mouser.com/ProductDetail/Maxwell-Technologies/BCAP3000-P270-K05?qs=TvYXSR6pz%2F1WUj0IwfQPeA%3D%3D


https://www.mouser.com/ProductDetail/PowerStor-Eaton/XL60-2R9348T-R?qs=f9yNj16SXrKO8xTIvD81mg%3D%3D

About $90 each.


To put this in perspective

Specific energy for:

    Diesel oil 
         12700 W·h/kg

    Lithium Ion Batteries 
   100–265 W·h/kg

    Supercaps
            5.7 W·h/kg




Sunday, May 11, 2014

Flexible supercapacitor raises bar for volumetric energy density




Scientists have taken a large step toward making a fiber-like energy storage device that can be woven into clothing and power wearable medical monitors, communications equipment or other small electronics.

Saturday, February 23, 2013

More Good News About Supercaps

Looks like I am going to win my bet.
That battery life video that had gone viral due to a recent post on UpWorthy (and which we told you about Tuesday) now has an update. We told you that researchers at Ric Kamen's lab at UCLA had found a way to make a non-toxic, highly efficient energy storage medium out of pure carbon using absurdly simple technology. Today, we can report that the same team may well have found a way to make that process scale up to mass-production levels.


The recap: Graphene, a very simple carbon polymer, can be used as the basic component of a "supercapacitor" -- an electrical power storage device that charges far more rapidly than chemical batteries. Unlike other supercapacitors, though, graphene's structure also offers a high "energy density," -- it can hold a lot of electrons, meaning that it could conceivably rival or outperform batteries in the amount of charge it can hold. Kaner Lab researcher Maher El-Kady found a way to create sheets of graphene a single carbon atom thick by covering a plastic surface with graphite oxide solution and bombarding it with precisely controlled laser light.
English translation: He painted a DVD with a liquid carbon solution and stuck it into a standard-issue DVD burner.
The result: Absurdly cheap graphene sheets one atom thick, which held a surprising amount of charge without further modification.
That work was reported a year ago; we mentioned it due to the video virally making the rounds this week. Late Tuesday, UCLA announced that El-Kady and Kaner have a new article in press, in the upcoming issue of Nature Communications, describing a method by which El-Kady's earlier, slightly homebrewed fabricating process shown in the video can be made more efficient, raising the possibility of mass production. As the authors say in their article abstract,
More than 100 micro-supercapacitors can be produced on a single disc in 30 min or less.
El-Kady and Kaner found a way to embed small electrodes within each graphene unit, and place the whole thing on a flexible substrate that allows the supercapacitor to be bent. The team is already claiming energy density comparable to existing thin-film lithium ion batteries.
In the video we shared Tuesday, Kaner says that this technology, if it pans out, offers possibilities like a smart phone getting a full day's charge in a second or two, or an electric car reaching "full" in a minute. This week's press release from UCLA offers other intriguing possibilities:
The new micro-supercapacitors are also highly bendable and twistable, making them potentially useful as energy-storage devices in flexible electronics like roll-up displays and TVs, e-paper, and even wearable electronics. The researchers showed the utility of their new laser-scribed graphene micro-supercapacitor in an all-solid form, which would enable any new device incorporating them to be more easily shaped and flexible. The micro-supercapacitors can also be fabricated directly on a chip using the same technique, making them highly useful for integration into micro-electromechanical systems (MEMS) or complementary metal-oxide-semiconductors (CMOS). As they can be directly integrated on-chip, these micro-supercapacitors may help to better extract energy from solar, mechanical and thermal sources and thus make more efficient self-powered systems. They could also be fabricated on the backside of solar cells in both portable devices and rooftop installations to store power generated during the day for use after sundown, helping to provide electricity around the clock when connection to the grid is not possible.
Kaner says that his lab is now looking for partners in industry that can help make these graphene supercapacitors on an industrial scale.
It's tempting to be cynical about the possibility of a magic bullet energy storage solution; such a breakthrough could solve any number of problems from annoying dead smart phones to two-hour charge times for electric cars to an inefficient power distribution grid, and it's easy to really want this kind of thing to be true. Plenty of seemingly promising technical innovations in the last few years haven't lived up to their hopeful hype. There's always the chance that further study will reveal a fatal flaw in graphene supercapacitor technology. 

Saturday, May 12, 2012

Super Capacitor Fwd: Prepare yourself to be shocked ...

Wow if this is real it's a significant leap forward.


---------- Forwarded message ----------
From: kc kim
Date: Sat, May 12, 2012 at 2:24 PM
Subject: Prepare yourself to be shocked ...

Hello My Friend(s),

   Super Capacitor with very commonly available stuff :

http://www.youtube.com/watch?v=_oEFwyoWKXo&feature=related

Tomorrow is Here,
-Casey.

Sunday, June 5, 2011

Graphene-based supercapacitor hits new energy storage high

From Gizmag: Graphene-based supercapacitor hits new energy storage high

High surface area of graphene make supercapcitors possible
A breakthrough in supercapacitor performance has been achieved with the development of a device that can store as much energy as a battery while recharging in seconds. The graphene-based supercapacitor being developed in the U.S. by researchers at Nanotek Instruments can store as much energy per unit mass as nickel metal hydride batteries and could one day be used to help deliver almost instant charging to recharge mobile phones, digital cameras or micro electric vehicles.
With the high surface area of their electrodes and an extremely narrow gap between the electrodes, supercapacitors, also known as electric double-layer capacitors or electrochemical capacitors, can store a large amount of electrical charge in a tiny volume. The newly developed device has electrodes made graphene mixed with an acetylene black called Super P that acts as a conductive additive and a binder that holds it all together. The resulting slurry is coated onto the surface of a current collector and assembled in coin-sized capacitors. The electrolyte-electrode interface is made of "Celguard-3501" and the electrolyte is a chemical called EMIMBF4.
Specific energy density of the new capacitor (a measure of how much electricity can be stored per weight) has been measured at 85.6 Wh/kg at room temperature and 136 Wh/kg at 80 degrees Celsius (176 F), which is comparable to Ni-mh batteries. These are the best values for electric double layer supercapacitors based on carbon nanomaterials recorded to date.
"This new technology makes for an energy storage device that stores nearly as much energy as in a battery but which can be recharged in seconds or minutes," Jang said. "We believe that this is truly a breakthrough in energy technology."
The team, which includes scientists from Angstron Materials in the U.S. and Dalian University of Technology in China, is now trying to further improve the energy density of the device.
"Our goal is to make a supercapacitor that stores as much energy as the best lithium-ion batteries (for the same weight) but which can still be recharged in less than two minutes," Jang said. "Despite the theoretically high specific surface area of single-layer graphene (which can reach up to 2.675 m2/g), a supercapacitance of 550 F/g has not been reached in a real device because the graphene sheets tend to re-stack together. We are trying to overcome this problem by developing a strategy that prevents the graphene sheets from sticking to each other face-to-face. This can be achieved if curved graphene sheets are used instead of flat ones."

Friday, January 8, 2010

super caps will win for electric vehicles

Read:   Battery Costs For Electric Cars Versus Prius from future pundit

Battery technology is too expenive heavy, takes too long to charge and needs replacing every 5 to 10 years.
There are also concerns that the exotic metals and chemicals need make them will in short supply if we try to scale up the number of electric vehicles on the road.

My argument for supercaps winning is this.
I am telling ya, supercaps will win. There is a system for bussed now where they can recharge at each stop.http://thegreentank.blogspot.com/2009/10/ultracapacitor-bus-recharges-at-each.html

I can easily see highways and roads with spots that can recharge cars as they are driving.
They can be every few feet or even every few miles along the road, maybe make a special lane for them.  Dynamic mircopayments can be done for charging for the electricity sold and it can be supply from solar along road side or off the grid.

See a story I wrote with my vision for this. http://johnsokol.blogspot.com/2009/11/apple-part-1.html

Monday, November 9, 2009

Supercaps

There are super conductors, and would you believe there are super dielectrics!

In theory you could store an almost unlimited amount of power in a cap made of super conductors and super dielectrics.
So "in theory" you could store enough electricity in a sugar cube to drive for years.

In reality neither material would be perfect setting upper limits. Still EESTOR's super caps at 3600 V can complete with lithium Ion batteries in power to weight already.

There is no reason why we don't have 1MV super caps.

There is no one looking at super conductors or dielectrics for caps right now. Most are building supercaps that are only good for 1 Volt or very low voltages, which means the dielectrics are super thin and therefor must be almost perfect in order not the short out.
The thicker the dielectrics the less perfection on the nano scale is needed.

I bet in 2015 we are still driving gasoline based cars and almost nothing would have changed, but just a lot of political rhetoric as people die from climate change.

http://thegreentank.blogspot.com/2009/10/ultracapacitor-bus-recharges-at-each.html

They aren't using the best supercaps, just the cheapest ones.


--------

Dielectrics.

In the EEStor patent they were claiming 610 V/um breakdown voltages for Aluminum coated CMBT, this is astonishing since I was having a hard time finding anything else above 100 V/um with Mica at 140 to 210 V/um

1100 V/um for bulk alumina which is basically Aluminum oxide also know as Saphire. 
But can you really get this in a bulk manufactured product?

Super Dielectrics.
Perovskite with High Dielectric Constant May Lead to High Performance Capacitors

Perovskite crystals, seems there are some geometric structures that make this material Super-K CCTO CaCu3Ti4O12 a very good dielectric, it has some interesting properties at low temeratures too.

Physicists discover the 'superinsulator'
thin films of titanium nitride cooled towards absolute zero in a magnetic field. Although the material is usually a superconductor, in which electrical current can propagate without resistance, the team have found that in these conditions the material’s resistance rises to infinity

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EEStor Issued a Patent For Its Supercapacitor


US Patent 7466536 EEStor
Utilization of poly(ethylene terephthalate) plastic and composition-modified barium titanate powders in a matrix that allows polarization and the use of integrated-circuit technologies for the production of lightweight ultrahigh electrical energy storage units (EESU)



TheEEStory.com News, Reviews and Discussion of EEStor Inc.
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US Patent 7251118 Nonplanar-Nanostructures
Method and apparatus for large scale storage of electrical potential
Nonplanar-Nanostructures company web site

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Basic Physics of PARALLEL-PLATE CAPACITORS

Tecate Group - ultracapacitors