2009年2月5日木曜日

ACAL Energy Announces Record Fuel Cell Power Levels


Platinum free cathode technology now performing at level of conventional fuel cells
ACAL Energy Ltd. has today announced the achievement of a significant technical milestone that should enable rapid commercialisation of its platinum free cathode technology (FlowCath(tm)) for proton exchange membrane (PEM) fuel cells. The Company has obtained peak power density figures from its development fuel cells that consistently exceed 570mW/cm2 since late December 2008. This performance represents a new record power density level from a liquid platinum free cathode system. ACAL Energy’s system is now performing at levels competitive with conventional fuel cells. Further improvements are expected in 2009, with an ultimate peak power density target of over 1W/cm2.

PEM fuel cells are a highly efficient and clean energy production technology, capable of replacing combustion engines in a wide variety of applications including remote and distributed power, residential cogeneration as well as automotive and mobile power applications. FlowCath(tm) replaces the expensive precious metal catalyst found in conventional fuel cells with a proprietary low cost liquid catalyst. This not only reduces the cost of the fuel cell, but also provides significant durability and reliability benefits through system simplification and the elimination of the most common failure mechanisms found in standard fuel cells. The company plans to introduce a 1kW demonstration system in 2009.

“This is a very significant achievement and clearly demonstrates that ACAL Energy’s liquid cathode technology will deliver performance that compares very well with conventional platinum fuel cells” comments Dr Sb Cha, Chief Executive of ACAL Energy, “… at much lower cost and improved reliability. I congratulate our technical team and Dr. Andy Creeth, our CTO, on this impressive achievement.”

For further information, please contact Amanda Lyne at ACAL Energy:
Tel: +44 (0)1928 511581
E-mail : alyne@acalenergy.co.uk
http://www.acalenergy.co.uk

About ACAL Energy Limited
ACAL Energy is a developer of a new fuel cell technology that will enable low cost and highly reliable fuel cell systems for a wide variety of applications. The company was founded in August 2004 by FlowCath(tm) inventor Dr Andrew Creeth and is headquartered in Runcorn, UK.
Fuel cells are a highly efficient and clean energy production technology capable of replacing combustion engines in applications including remote and distributed power and residential cogeneration, as well as automotive and mobile power applications. FlowCath(tm) replaces the expensive precious metal catalyst found in conventional fuel cells with a proprietary low cost liquid catalyst. This not only reduces the cost of the fuel cell, but also provides significant durability and reliability benefits through system simplification and the elimination of the most common failure mechanisms found in standard fuel cells.

Morphic: Exergy Fuel Cells wins major project grant “selection Industria 2015” with the project MICROGEN 30

Exergy Fuel Cells S.r.I, a subsidiary of Morphic Technology AB, in partnership with ICI Caldaie and several other Companies and Research Institutes has won the Italian “selection Industria 2015” with the project MICROGEN 30.
The value of the grant for Exergy is 1,960,000 EUR. The project MICROGEN30 met was ranked number 1 in the List drawn up by the Ministry of Economic Development.


INDUSTRIA 2015 is the plan for New Industrial Politics in Italy enacting the EU Directive 2006/32/EC of April 5th, 2006. Quoting the Directive: “European Community has the urge to improve energy efficiency. State Members will have to hit the target of energy saving of 9% within the 9th year from the application of the Directive, by applying any measure of energy management improvement and energy efficiency”.
In this frame, The Ministry of Economic Development by Industria 2015 will sustain economically the projects that aim to improve energy management, industrialization process of sustainable energy technologies and related R & D in a small – medium time range ( 2015 ).

The MICROGEN30 is a medium size CHP (Combined Heat and Power) energy system based on a PEM fuel cell for stationary application, in this case for residential units. The goal for the system is to generate 30 kW electricity and 50kW heat.
>> more

Morphic: Exergy Fuel Cells signs Letter 0f Intent for Supply of Fuel Cells for Recreation Vehicles

Exergy Fuel Cells, a subsidiary of Morphic Technologies AB, has entered into a cooperation with Narbonne Accessoires in Narbonne, France, and signed a Letter Of Intent regarding the exclusive distribution of the Exergy Fuel Cell power systems in the distribution network of Narbonne Accessoires in France and Spain.

Narbonne Accessoires is the leading distributor of accessories for Recreation Vehicles in France and Spain. Following the verification and approval of the products, Narbonne Accessoires will collaborate on the introduction of Exergy’s Fuel Cell systems with the following marketing activities:

- Install a display in each store to demonstrate the product and its technology
- Train its salesmen on fuel cell power advantages compared to traditional systems
- Deliver fuel cartridges in all stores, as available stock
- Communicate the Exergy brand in the Narbonne catalogue (400,000 copies) and inside French and Spanish press - Introduce the power system on Recreation Vehicles fairs in Paris (Le Bourget September 2009) and in Barcelona (October 2009)
>> more

Short about Exergy Fuel Cells
Exergy Fuel Cells develops and produces high performance and competitive PEM fuel cells of its own patented design, in a variety of versions and sizes. Several of the fuel cell products have left the prototype stage and are in series manufacturing. Exergy also offers fuel cell stacks and components to other fuel cell system developers. This makes Exergy Fuel Cells one of the companies with the widest product range in the industry, being prepared for large volume production.

2009年2月4日水曜日

Morphic Awarded Patent on Method for CO2 Capture and Liquid Fuel Production

Morphic has been granted a patent on a method and system for absorbing atmospheric carbon dioxide using wind turbines, and then combining the CO2 with water and excess electricity to produce liquid biofuels.
The technology for CO2 absorption has been verified in a laboratory environment, and the company is now looking for partnerships with a view to evaluating a potential commercialization of the concept.

Since 2004 Morphic has been conducting intensive research and development into energy conversion, covering processes as well as technical systems, with the aim of finding ways to convert and store renewable energy in various forms, and to adapt it for later use in fuel cells for a range of different applications.

The basic idea behind the patent is to absorb carbon dioxide using an enzyme, carbonic anhydrase, which is used to coat the blades of the wind turbine. The function is the same biochemical process that removes carbon dioxide from the blood in a human. An application for a patent on an “energy converter” for producing methanol from electricity, carbon dioxide and water was submitted as far back as 2004. The invention that has now been patented is a more advanced version of the same energy converter, where Morphic believes it has solved the problem of how to extract the CO2 from the air.
[Copyright by FuelCell japan: http://www.fcpat-japan.com/]
>> More

2009年1月29日木曜日

Development of High Efficiency and Quick Start SOFC Steadily Progresses

A regional R & D consortium has continued a high performance SOFC which is featured with high efficiency and quick start, aiming at commercialization of the SOFC in April 2011.

The cell part of the fuel cell takes a honeycomb structure. The structure enlarges a reaction area where oxygen reacts with hydrogen.
A unique technology to uniformize temperature distribution over the cell is also used. Use of this technology successfully makes the fuel cell hard to be broken even when the fuel cell is quickly started.

Start-up time of SOFC = 5 minutes
(1.5 hours in conventional SOFCs)
The output density of SOFC = 28 watts per one liter of the module volume
(6 watts in conventional SOFCs)

Size of 100 watts SOFC generator:
30 high x 25 wide x 18 deep (unit = cm)
The SOFC generator having this size is portable in handling.

Current technological problems - to reduce the cost of the fuel cell by using cheap metal for the current collector.
Technological problems after 2009 - to improve durability and impact resistance of the fuel cell and to further improve the efficiency and to reduce the size of the controller.

Applications of currently developing SOFC are:
Power sources in leisure and disaster sites and auxiliary power sources for electric vehicles

The local enterprises and Muroran Advancement Center of Industrial Technology and Management (MACITM) cooperatively wrestle with technology development to find solutions to how to efficiently and inexpensively supply hydrogen fuel, in Muroran of Hokkaido.

Regional SOFC R & D consortium:
The SOFC R & D consortium consists of 11 enterprises and university, including Phoenix Fuel Cells Co., Ltd., Muroran Institute of Technology, and is managed by Muroran Advancement Center of Industrial Technology and Management.
The SOFC development is currently done, with the initiative by PHOENIX FUEL CELLS, on the basis of the results of the study having been made by the R & D consortium for two years.

Source: Muroran Minpo
Refer also to news item 18

2009年1月7日水曜日

Happy New Year

The new year has started while trailing economical difficulties and unexpected social phenomena that we have not experienced for a long time.
The strongest tool to solve such serious problems remains suffering from high impedance to the passage of the bills necessary for solving the problems.
I do not know the reason for this.
The situation is going worse and worse ... at relatively high speed.

The technology article first presented in this year is "Succeeded in Synthesizing a Crystal Organic-Inorganic Nano-Hybrid Film".
My plan was to upload the article to the site on December 30 last year.
Sorry for the delay of uploading the article.

As known, the platinum currently used for the electrode catalyst of the fuel cell has limits (limited resource and expensive) in its use.
Some technical solution to this is required urgently.
I thought that the success of synthesizing the nano-hybrid thin film is very significant in this sense, and translated the details of the technology news into English.

2009年1月5日月曜日

Succeeded in Synthesizing a Crystal Organic-Inorganic Nano-Hybrid Film

- Breakthough Technology for Realization of Thin Film Material for Electrode Catalyst -

Keywords:
Organic molecules, non-organic molecules, rubeanic acid copper, proton conductivity, fuel-cell electrode catalyst, amorphous material, crystal organic-inorganic nano-hybrid film, nano-hybrid thin film synthesizing technology, electrode catalyst, coordination polymers, rubeanic acid copper, rubeanic acid copper thin film, crystal nano-film, crystal complex film, organic ligands, dithiooxamidato ligands, super-flat surface, bottom-up process, sapphire substrate, metal ions, surface x-ray diffraction method, atomic arrangement, high brilliance radiation, Spring-8, ligand symmetry, substrate surface smoothness, amorphous material, ion conductivity

Introduction
A nano-hybrid thin film of crystal porous coordination polymer having a laminated layer structure of organic molecules and non-organic molecules in the order of atom layer has been successfully synthesized.
It is said that the nano-hybrid thin film is a promising thin film material for the fuel-cell electrode catalyst.

Co-developed by:
* Dr. Hiroshi Kitagawa, Dr. Katsuhiko Kaneizuka (Department of Chemistry, Faculty of Sciences, Kyushu University)
* Researchers Dr. Osami Sakata and Dr. Rie Aoki (JASRI)
* Dr. Mamoru Yoshimoto (Interdisciplinary Graduate School of Science and Engineering, Tokyo Institute of Technology)

It has been considered that a complex called "a rubeanic acid copper", listed as one of the ion conduction materials, has high proton conductivity, and will possibly serve as the fuel-cell electrode catalyst. The rubeanic acid copper is generally an amorphous material. Because of being amorphous, i.e., non-uniform structure, it is not suitable for the making devices. The lab. team synthesized a crystal organic-inorganic nano-hybrid film by a bottom-up process, which was created by the lab. team. A rubeanic acid copper and copper ions were used for synthesizing the film. The nano-hybrid film was investigated by using high brilliance synchrotron radiation (surface/interface structure analysis beam line BL13XU) of SPring-8, large radiation facility. The surface x-ray diffraction method was used for the measurement.
From the investigation results, it was confirmed that in the interlayer and intra-layer, the complexes are periodically arrayed in the order of atom layer, viz., the crystal film was formed.
The nano-hybrid thin film synthesizing technology will be applied to the making of devices such as organic electroluminescence elements and transistors, in addition to the fuel cell catalyst. The technology must have been published on "Journal of the American Chemical Society", issued on November 26, 2008.

Background
To form the fuel cell and the electrode catalyst, it is essential to develop a material having high ion conductivity.
Bear this in mind, the researchers have synthesized various coordination polymers and measured the ion conductivities of the polymers.
Through the measurement, it was found that rubeanic acid copper exhibits an extremely high ion conductivity. The researchers felt the possibility of realizing a device having high ion conductivity by sandwiching the rubeanic acid copper between the electrodes.

The amorphous material has been used for the fuel cell. A crystal material, if it could be used in place of the amorphous material, will give rise to the following advantages of decrease of the defective percentage of the resultant products and increase of ion conductivity.

A lab team has succeeded in forming a bulk crystal of the rubeanic acid copper. The structure of the crystal is unstable, however. Because of the unstable structure, its crystal has been insufficiently evaluated.

Many researchers have competitively tried to form the rubeanic acid copper thin film having a uniform structure in the inorganic chemical field in the world.
Howevr. no one has succeeded in forming the thin film of the rubeanic acid copper, so far as we know. It figures that concurrently forming of a number of crystal structures would cause low crystallinity of the formed thin film.

Experiments
Fig. 1:
To control the reactivity of copper ions with rubeanic acid as organic ligands, a try was made to laminate copper ions and rubeanic acid on the substrate interface in paired fashion, as shown in Fig. 1.
Specifically, rubeanic acid and copper were laminated on a super-flat sapphire substrate surface to form a pair of layers, and the same process was cyclically repeated to form successive paired layers, as blocks are built up (This film forming process will be referred to as a "bottom-up process".). As a result, an organic-inorganic nano-hybrid film was formed.
More specifically, a sapphire substrate having been pre-processed (modified with binder) was immersed in an aqueous solution of metal ions to fix the metal ions to the substrate. Then, the resultant was immersed in an ethanol solution of organic ligands to fix the ligands to the metal ions.
In this way, one cycle layer (rubeanic acid copper thin film having a uniform structure) was formed.
It is noted here that a thickness of the nano-thin film can be controlled by selecting the number of the film forming processes cyclically performed, and that this thin film forming process, or the bottom-up process, is very simple.
It is further noted that the bottom-up process is advantageous in that it uniformly forms the thin film over a large area, and is environment-friendly with no need of the vacuum and heat treatments. The bottom-up process comes in the category of the solution process.

Fig. 2:
Thin films of single-layer (a), bi-layers (b) and tri-layer (c) were formed.
The transmission electron spectra of those films were measured.
In each cycle layer of each layer, a fixed amount of rubeanic acid copper was fixed. This was confirmed through a measurement result that the absorbance peak increased with increase of the film thickness (see Fig. 2).

The absorption intensity is approximately proportional to the film thickness.
In Fig. 2, increased absorption intensities appear in a wavelength region from 300 to 900 nm, and from the figure it is seen that the nano-film grows as the number of cycles increases. No information about an arrangement of atoms in each cycle layer was gathered. A measurement was made to check the atomic arrangements of the films. In the measurement, the X-ray source of the laboratory was used and the diffraction method was employed. The measurement failed to present the structural information.

There would be two reasons for that the measurement failed to provide the structural information. Firstly, the thickness of the test pieces is very thin, less than 10 nm. Secondly, the diffraction intensity of the thin films is weak, unlike the semiconductor thin film of which the crystallinity is considerably high and the film forming process is matured.

To cope with this, the surface x-ray diffraction method using the high brilliance radiation in Spring-8 was used to invest the atomic arrangement of the thin film. Diffraction intensities of the x-rays diffracted in the thin films were successfully measured with well satisfaction, by the method.

Fig. 3:
Three thin films of rubeanic acids having different ligands were formed by the bottom-up method. Each thin film consists of 11 cycle layers.
The rubeanic acids were:
1) rubeanic acid (symmetric molecule, Fig. 3-1)
2) pi-extended rubeanic acid (Fig. 3-2)
3) ethanol rubeanic acid (asymmetric molecule, Fig. 3-3)

Fig. 4:
In the nano-films of the rubeanic acid and the pi-extended rubeanic acid, diffraction peaks were observed in both the out-of-plane measurement (Fig. 4-1) and the in-plane measurement (Fig. 4-2). Presence of the diffraction peaks indicates that the rubeanic acid copper nano-film has a crystal structure.

In the case of the nano-film of the ethanol rubeanic acid, diffraction peaks were observed in the out-of-plane measurement. From this, it was confirmed that the nano-film grew with increase of the number of cycles. No diffraction peak was observed in the in-plane measurement of the nano-film. This indicates that the arrangement of atoms of the rubeanic acid copper was not formed in the nano-film.

From the study, it was taught that the ligand symmetry and the smoothness of the substrate are essentially taken into accoutn when the crystal coordination polymer material is formed on the substrate.

Specifically, at least two conditions to form a crystal nano-film were derived from the study. The first condition is to use the symmetrical molecule. Three molecules, including symmetrical and asymmetrical molecules, were experimented. In the case of using the symmetrical molecule, atoms were distinctly arranged within the plane. In the asymmetrical molecule, no atoms were arranged. The second condition was to use a substrate which is flat in atomic levels. A nano-film having a 3-dimensional atom arrangement was formed only when the super-flat sapphire substrate was used.

Bottom-Up Method
A typical process having been used to crystallize the material that is amorphous in bulk state, is the heat treatment. The heat treatment is unable to crystallize such a material that is unstable, for example, decomposable by heating, however.
The bottom-up method developed this time successfully crystallized the rubeanic acid copper, which has been considered to be difficult to crystallize.

The success of the crystallization implies that a functional material, which has been considered to be impossible to crystallize, can be crystallized by the bottom-up method.
The bottom-up method as the synthesizing method comes in the category of the solution method. This method is advantageous in that it uniformly forms the thin film over a large area, and it is environment-friendly with no need of using the vacuum treatment and the heat treatment.
In this sense, the bottom-up method will be applied to electroluminescence element, transistors and the like, in addition to the fuel cells.

The source, written in Japanese, is linked at:
http://www.kyushu-u.ac.jp/pressrelease/2008/2008-11-26.pdf
http://www.spring8.or.jp/ja/current_result/press_release/2008/081126

#: For Figs. 1 to 4, reference is made to FuelCell japan