Showing posts with label battery. Show all posts
Showing posts with label battery. Show all posts

2011-06-11

New Battery Design: The Semi-Solid Flow Cell

Battery Design Could Let EV Owners Say, ‘Fill ‘er Up!’ | Autopia | Wired.com



Battery technology under development at MIT could someday make recharging batteries as quick and easy as a trip to the gas station.

Known as semi-solid flow cells, the new battery design turns the chemistry of traditional lithium-ion batteries into quicksand-like tiny particles. The resultant slime — which researchers jokingly call “Cambridge crude” — has an extremely high energy density and is cheaper to manufacture than the innards of a traditional lithium-ion battery. The researchers claim battery cost and size could be cut in half as a result.


New battery design could give electric vehicles a jolt



The new design should make it possible to reduce the size and the cost of a complete battery system, including all of its structural support and connectors, to about half the current levels. That dramatic reduction could be the key to making electric vehicles fully competitive with conventional gas- or diesel-powered vehicles, the researchers say.

Another potential advantage is that in vehicle applications, such a system would permit the possibility of simply “refueling” the battery by pumping out the liquid slurry and pumping in a fresh, fully charged replacement, or by swapping out the tanks like tires at a pit stop, while still preserving the option of simply recharging the existing material when time permits.
[...]
In addition to potential applications in vehicles, the new battery system could be scaled up to very large sizes at low cost. This would make it particularly well-suited for large-scale electricity storage for utilities, potentially making intermittent, unpredictable sources such as wind and solar energy practical for powering the electric grid.

Nanoscale Conductors Enable New Battery Architecture: The Semi-Solid Flow Cell - IEEE Spectrum

The research, which was originally published in the Wiley journal Advanced Energy Materials, was able to overcome the low energy density of liquid-flow batteries by creating a semi-solid material that “kind of oozes,” according to Chiang. The new material is able to store energy in “suspensions of solid storage compounds” and the “charge transfer is accomplished via dilute yet percolating networks of nanoscale conductors.”

The result is that the cathodes and anodes of the battery are particles that are suspended in the liquid electrolyte. And the two different suspensions are pumped through systems separated by a thin porous membrane.

 The design also separates the storing and discharging of the battery into two different physical structures. According to Chiang, this separated architecture will enable batteries to be designed more efficientl

Since the design is expected to reduce the size (and cost) of a battery system by as much as half, it is being touted as a way to make electric vehicles more competitive with internal combustion engines.

2010-09-30

Volvo Car Body Panels Serve as Rechargeable Battery

At Volvo, the body becomes the battery

In a materials development project launched by the London Imperial College, nine European companies and institutes are developing carbon fibres and polymer resin that can store and charge more energy faster than conventional batteries are able to do. Volvo is the only car manufacturer participating in the project funded in part by the European Union.

 The material to be developed will be extremely strong and pliant. Thus, it can be shaped for use in building a vehicle's body panels. It also will be much lighter than today's batteries. According to Volvo, a car's weight could be reduced by as much as 15 percent if steel body panels would be replaced with the new material.


Cars of the future could be powered by their bodywork thanks to new battery technology


The researchers say that the composite material that they are developing, which is made of carbon fibres and a polymer resin, will store and discharge large amounts of energy much more quickly than conventional batteries. In addition, the material does not use chemical processes, making it quicker to recharge than conventional batteries. Furthermore, this recharging process causes little degradation in the composite material, because it does not involve a chemical reaction, whereas conventional batteries degrade over time.

The material could be charged by plugging a hybrid car into household power supply. The researchers are also exploring other alternatives for charging it such as recycling energy created when a car brakes.


Volvo

Tomorrow's Volvo car: body panels serve as the car battery

Volvo Cars contributes its expertise
The project will continue for three years. In the first stage, work focuses both on developing the composite material so it can store more energy and on studying ways of producing the material on an industrial scale. Only in the final stage will the battery be fitted to a car.

"Our role is to contribute expertise on how this technology can be integrated in the future and to input ideas about the advantages and disadvantages in terms of cost and user-friendliness," says Per-Ivar Sellergren, development engineer at the Volvo Cars Materials Centre.

Initially, the car's spare wheel recess will be converted into a composite battery.
"This is a relatively large structure that is easy to replace. Not sufficiently large to power the entire car, but enough to switch the engine off and on when the car is at a standstill, for instance at traffic lights," says Per-Ivar Sellergren.

2010-09-18

Development of High Energy Density Lithium-ion Batteries

Nanoscale materials for high-energy density lithium-ion batteries

NEI Corporation and the University of California, San Diego won a Phase II Small Business Technology Transfer contract from NASA to develop and implement high energy density cathode materials for lithium batteries. These lithium-ion (Li-ion) batteries could be used in a variety of NASA projects - and in a wide range of transportation and consumer applications.


Lithium-ion battery - Wikipedia, the free encyclopedia


A lithium-ion battery (sometimes Li-ion battery or LIB) is a family of rechargeable battery types in which lithium ions move from the negative electrode to the positive electrode during discharge, and back when charging. Chemistry, performance, cost, and safety characteristics vary across LIB types. Unlike lithium primary batteries (which are disposable), lithium-ion cells use an intercalated lithium compound as the electrode material instead of metallic lithium.


Meng Laboratory for Energy Storage and Conversion - Department of NanoEngineering - UCSD

Lithium ion batteries have become a key component of portable electronic devices as they offer high energy density, flexible lightweight design and a longer cycle life than other battery systems. More efficient batteries are required in the development of advanced transportation technologies in order to reduce the use of imported oil and the emission of greenhouse gas. Electrochemical energy storage has been identified as a critical enabling technology for advanced, fuel-efficient, light and heavy duty vehicles. New materials need to be designed to achieve higher energy/power densities, longer cycle lives and better reliability for such applications.

The ability to synthesize precise and heterogeneous nanostructures at low cost opens the door to the development of new electrochemical energy storage materials that can revolutionize energy storage systems. The energy storage systems for renewable sources and utility scale applications must have ALL of the following properties optimized: (a) high energy density, (b) high power density (fast ion and electron transport), (c) good safety, (d) long cycle life (>10years), (e) use of low-cost abundant raw materials and (f) cost-effective synthesis. To meet these demanding goals, we utilize a combination of theoretical/computational and experimental approaches to develop groundbreaking energy storage schemes.



NASA funds development of nanoscale materials for high energy density lithium-ion batteries [Jacobs School of Engineering: News & Events]


An experimental battery powers a small yellow light (front, right) in a battery research laboratory run by NanoEngineering professor Shirley Meng at the UC San Diego Jacobs School of Engineering. Photo credit: UC San Diego   See more photos from the Meng lab on Flikr.

NanoEngineering professor Shirley Meng (left) works with NanoEngineering graduate student Michael Verde to hook an experimental battery up to a test light. Photo credit: UC San Diego (See more photos from the Meng lab on Flikr


Batteries on a workbench in the Laboratory for Energy Storage and Conversion run by NanoEngineering professor Shirley Meng at the UC San Diego Jacobs School of Engineering. Photo credit: UC San Diego  (See more photos from the Meng lab on Flikr


 The metallic disks are experimental batteries being tested in the Laboratory for Energy Storage and Conversion run by NanoEngineering professor Shirley Meng at the UC San Diego Jacobs School of Engineering. Photo credit: UC San Diego  (See more photos from the Meng lab on Flikr)

2010-07-08

New Super Battery Created Under Super-High Pressures



Super-High Pressures Used to Create Super Battery: 'Most Condensed Form of Energy Storage Outside of Nuclear Energy'

Using super-high pressures similar to those found deep in the Earth or on a giant planet, Washington State University researchers have created a compact, never-before-seen material capable of storing vast amounts of energy.


Washington State University chemist Choong-Shik Yoo, seen here with students, has used super-high pressures to create a compact, never-before-seen material capable of storing vast amounts of energy. (Credit: Washington State University)



Washington State University - World Class Face to Face

WSU Researchers Use Super-high Pressures to Create Super Battery

 "If you think about it, it is the most condensed form of energy storage outside of nuclear energy," says Choong-Shik Yoo, a WSU chemistry professor and lead author of results published in the journal Nature Chemistry.

The research is basic science, but Yoo says it shows it is possible to store mechanical energy into the chemical energy of a material with such strong chemical bonds. Possible future applications include creating a new class of energetic materials or fuels, an energy storage device,  super-oxidizing materials for destroying chemical and biological agents, and high-temperature superconductors.

The researchers created the material on the Pullman campus in a diamond anvil cell, a small, two-inch by three-inch-diameter device capable of producing extremely high pressures in a small space. The cell contained xenon difluoride (XeF2), a white crystal used to etch silicon conductors, squeezed between two small diamond anvils.



Nature Chemistry | Article

Two- and three-dimensional extended solids and metallization of compressed XeF2

Minseob Kim, Mathew Debessai & Choong-Shik Yoo

The application of pressure, internal or external, transforms molecular solids into extended solids with more itinerant electrons to soften repulsive interatomic interactions in a tight space.  [...] Here, we present new discoveries of novel two- and three-dimensional extended non-molecular phases of solid XeF2 and their metallization. At ∼50 GPa, the transparent linear insulating XeF2 transforms into a reddish two-dimensional graphite-like hexagonal layered structure of semiconducting XeF4. Above 70 GPa, it further transforms into a black three-dimensional fluorite-like structure of the first observed metallic XeF8 polyhedron. [...]


a, Transparent phase III at 3 GPa, typical for phases I, II, III and IV below 40 GPa. b, Yellowish phase IV at 47 GPa. c, Reddish phase IV at 53 GPa. d, Black phase V at 74 GPa. All images are under transmitted lights. Scale bars: 100 Âµm (a)…


a, A 2 × 3 × 1 supercell of phase IV in Pnnm–2 at 52 GPa. b, View along the c axis of phase IV, showing the lone-pair electrons of Xe and F roughly overlapping. c, Unit cell of the fluorite-like 3D extended phase V in Fmmm at 98 GPa. (See Su…


While the science is still fundamental, it’s still fun to consider what the applications would be:
  • new energetic material or fuel
  • an energy storage device
  • super oxidizing materials
  • high-temperature superconductors

Sources
Super-high pressures used to create super battery: 'Most condensed form of energy storage outside of nuclear energy'
http://www.sciencedaily.com/releases/2010/07/100704162218.htm
University Relations - WSU Researchers Use Super-high Pressures to Create Super Battery
http://www.wsunews.wsu.edu/pages/publications.asp?Action=Detail&PublicationID=20580&TypeID=1
Two- and three-dimensional extended solids and metallization of compressed XeF2 : Nature Chemistry : Nature Publishing Group
http://www.nature.com/nchem/journal/vaop/ncurrent/abs/nchem.724.html
Super battery is most powerful energy storage ever (besides nuclear power) - SmartPlanet
http://www.smartplanet.com/technology/blog/science-scope/super-battery-is-the-most-powerful-energy-storage-ever-besides-nuclear-power/2758/

Related
WSU Chemistry: Yoo, Choong-Shik
http://www.chem.wsu.edu/faculty-research/yooc
Choong-Shik Yoo Group: Novel Energetic Materials Research
http://yoo.chem.wsu.edu/researchprojects/novelmaterialresearch
New ultra-battery is the most powerful non-nuclear energy storage ever
http://gizmodo.com/5580592/new-ultra+battery-is-the-most-powerful-non+nuclear-energy-storage-ever
New ultra-battery is the most powerful non-nuclear energy storage ever
http://io9.com/5580592/new-ultra+battery-is-the-most-powerful-non+nuclear-energy-storage-ever?utm_source=feedburner&utm_medium=feed&utm_campaign=Feed:+gizmodo/full+(Gizmodo)
Superpowered energy-storing wonder stuff created in lab • The Register
http://www.theregister.co.uk/2010/07/05/wonder_energy_stuff/

2010-03-13

New Way to Produce Electricity: Thermopower Waves in Carbon Nanotubes

Clipped from: BBC News - Nanometre 'fuses' for high-performance batteries
BBC

Nanometre 'fuses' for high-performance batteries

Minuscule tubes coated with a chemical fuel can act as a power source with 100 times more electrical power by weight than conventional batteries.

As these nano-scale "fuses" burn, they drive an electrical current along their length at staggering speeds.


The never-before-seen phenomenon could lead to a raft of energy applications.

Researchers reporting in Nature Materials say that unlike normal batteries, the nanotubes never lose their stored energy if left to sit. 

Clipped from: Big power from tiny wires



Big power from tiny wires

New discovery shows carbon nanotubes can produce powerful waves that could be harnessed for new energy systems.

A carbon nanotube (shown in illustration) can produce a very rapid wave of power when it is coated by a layer of fuel and ignited, so that heat travels along the tube.


A previously unknown phenomenon

In the new experiments, each of these electrically and thermally conductive nanotubes was coated with a layer of a reactive fuel that can produce heat by decomposing. This fuel was then ignited at one end of the nanotube using either a laser beam or a high-voltage spark, and the result was a fast-moving thermal wave traveling along the length of the carbon nanotube like a flame speeding along the length of a lit fuse. Heat from the fuel goes into the nanotube, where it travels thousands of times faster than in the fuel itself.  As the heat feeds back to the fuel coating, a thermal wave is created that is guided along the nanotube. With a temperature of 3,000 kelvins, this ring of heat speeds along the tube 10,000 times faster than the normal spread of this chemical reaction. The heating produced by that combustion, it turns out, also pushes electrons along the tube, creating a  substantial electrical current.


Clipped from: YouTube - Nanotube fuses for energy



The never-before-seen phenomenon could lead to a raft of energy applications.
Researchers reporting in Nature Materials say that unlike normal batteries, the nanotubes never lose their stored energy if left to sit.


The team, led by Michael Strano of the Massachusetts Institute of Technology, coated their nanotubes - cylinders just billionths of a metre across - with a chemical fuel known as cyclotrimethylene trinitramine. 



Clipped from: Chemically driven carbon-nanotube-guided thermopower waves : Abstract : Nature Materials
Nature Materials
Published online: 7 March 2010 | doi:10.1038/nmat2714

Chemically driven carbon-nanotube-guided thermopower waves

Wonjoon Choi, Seunghyun Hong, Joel T. Abrahamson, Jae-Hee Han, Changsik Song, Nitish Nair, Seunghyun Baik & Michael S. Strano



Sources:
  1. BBC News - Nanometre 'fuses' for high-performance batteries
  2. Big power from tiny wires
  3. YouTube - Nanotube fuses for energy
  4. Chemically driven carbon-nanotube-guided thermopower waves : Abstract : Nature Materials
  5. MIT Discovers Thermopower Waves which Have Hundreds of Times the Energy by Weight of Lithium ion Batteries
Related:
  1. Nanotubes help create thermopower waves
  2. MIT researchers discover new energy source - CNN.com
  3. Thermopower waves draw big power from tiny wires | R&D Mag
  4. MIT Scientists Discover a Way to Generate Electricity with Thermopower Waves in Carbon Nanotubes : TreeHugger
  5. MIT Scientists Discover Thermopower Waves Using Carbon Nanotubes | Inhabitat
  6. the green skeptic™: Thermopower Waves: A New Discovery at MIT
  7. Its All About Pakistan
  8. People

2009-12-14

Batteries of paper with nanotubes and nanowires

clipped from news.bbc.co.uk

Battery made of paper charges up

Batteries made from plain copier paper could make for future energy storage that is truly paper thin.
Paper battery
clipped from www.eetimes.com
Paper battery said to outperform lithium ion

PORTLAND, Ore. — A paper battery based on carbon nanotubes and silver nanowires could store an electric charge in a mobile device. Researchers also claim the new battery is disposable and that its shape could conform to the shape of different devices.
Bing Hu, a Stanford Univeristy post-doctoral fellow, applies special ink to ordinary paper, depositing nanotubes on the surface that can then be charged to create a battery.
clipped from www.stanford.edu
Stanford University
Stanford scenes
clipped from news.stanford.edu

At Stanford, nanotubes + ink + paper = instant battery

Dip an ordinary piece of paper into ink infused with carbon nanotubes and silver nanowires, and it turns into a battery or supercapacitor. Crumple the piece of paper, and it still works. Stanford researcher Yi Cui sees many uses for this new way of storing electricity.

clipped from www.stanford.edu
Nanomaterials Science and Engineering

7th of December 2009
Liangbing's paper on conductive paper battery and supercap was published in PNAS, and has been highlighted in the press, including in New York Times, Technology Review, Stanford Report, EE Times, and Scientific American.

clipped from www.youtube.com

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Sources:
  1. BBC News - Battery made of paper charges up
  2. EETimes.com - Paper battery said to outperform lithium ion
  3. Stanford University
  4. At Stanford, nanotubes + ink + paper = instant battery
  5. Yi Cui Group
  6. YouTube - Nanotubes + ink + paper = instant battery
Related:
  1. Highly conductive paper for energy-storage devices — PNAS
  2. Paper batteries no longer an idea of the future - International Business Times -
  3. At Stanford, nanotubes + ink + paper = equal instant battery (w/ Video)
  4. Paper Battery Shows Promise for Grid, Vehicle Energy Storage - NYTimes.com
  5. Technology Review: Batteries Made from Regular Paper
  6. Dip ordinary paper into ink infused with nanotubes and nanowires to create an instant battery (12/13/2009)

2009-10-04

Paper-Based Thin-Film Batteries

Technology Review - Published By MIT
A Salt and Paper Battery

The simple, non-polluting battery could be used in compact devices.

Researchers at Uppsala University in Sweden have made a flexible battery using two common, cheap ingredients: cellulose and salt. The lightweight, rechargeable battery uses thin pieces of paper--pressed mats of tangled cellulose fibers--for electrodes, while a salt solution acts as the electrolyte.

clipped from pubs.acs.org
Nano Letters

Ultrafast All-Polymer Paper-Based Batteries

Abstract Image

The key to the discovery lies in the way in which the algae, Cladophora, produce a unique type of cellulose with a very large surface area (approximately 80 square meters of surface area per gram of material).

Uppsala universitet

Nanotechnology and Functional Materials

Welcome to the division for Nanotechnology and Functional Materials. We are a part of the Department for Engineering sciences and situated at the Ångström Laboratory. The division was established in 2004 and is headed by prof. Maria Strømme.


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Sources:
  1. Technology Review: A Salt and Paper Battery
  2. Ultrafast All-Polymer Paper-Based Batteries - Nano Letters (ACS Publications)
  3. Swedish Researchers Discover Algae-Based, Non-Metallic Batteries | Alt Dot Energy
  4. Nanotechnology and Functional Materials
Related:

2009-08-14

Ceramatec’s Batteries Could Power Your Home

clipped from www.javno.com

Battery Powered House Stores Sun’s Energy
Battery Powered House Stores Sun’s Energy

Scientists have made a prototype of a battery that could store enough energy for a whole house to be run for an entire day, reports the Popular Mechanics website. A small disc is in question that could prove to be the solution for the most efficient and cheapest storage of solar energy.

The Key to the Battery-Powered House


The new battery runs on sodium-sulfur—a composition that typically operates at greater than 600 F. “Sodium-sulfur is more energetic than lead-acid, so if you can somehow get it to a lower temperature, it would be valuable for residential use, Ralph Brodd, an independent energy conversion consultant, says.
http://www.reallycoolbattery.com/index.html_files/index.009.png
clipped from www.heraldextra.com

New battery could change world, one house at a time

ASHLEY FRANSCELL/Daily Herald
Ceramatec President Ashok V. Joshi and his team

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Sources:
  1. Battery Powered House Stores Sun’s Energy - World - Javno
  2. Battery Powered House – Solar Panels and Home Battery Solutions - Popular Mechanics
  3. Ceramatec Battery Technology
  4. New battery could change world, one house at a time
Related:
  1. Ceramatec’s Disc Shaped Batteries Could Power Your Home | Batteries
  2. Ceramatec :: Homepage
  3. Tiny battery traps solar power to run a house for 24 hrs - Science - Health & Science - NEWS - The Times of India