Click >>>>>Here<<<<<<
Wednesday, November 12, 2014
Tuesday, November 11, 2014
Monday, September 8, 2014
Microsoft Desktop 2000 Wireless Keyboard and Mouse Combo
Specifications of Microsoft Desktop 2000 Wireless Keyboard and Mouse Combo
| General Specifications | |
|---|---|
| Brand | Microsoft |
| Battery | 2 x AA Alkaline (Mouse) and 2 x AAA Alkaline (Keyboard) Batteries |
| Battery Life | 18 months (Keyboard) and 8 months (Mouse) |
| Interface | Wireless |
| Model | Desktop 2000 |
| Multimedia Keys | Yes |
| OS Supported | Windows 7, Windows Vista, Windows XP (excluding Windows XP 64-bit), Mac OS X v10.4 - 10.7 |
| Palm Rest | Yes |
| Part Number | M7J-00019 |
| Total Keys | 104 |
| Warranty | |
|---|---|
| Warranty Summary | 3 Years. <<<Click to Buy here>>> |
Monday, June 2, 2014
Engineers make world's fastest organic transistor, herald new generation of see-through electronics
Two university research
teams have worked together to produce the world's fastest thin-film
organic transistors, proving that this experimental technology has the
potential to achieve the performance needed for high-resolution
television screens and similar electronic devices.
Read more at: http://phys.org/news/2014-01-world-fastest-transistor-herald-see-through.html#jCp
Two university research teams have worked together to produce the world's fastest thin-film organic transistors, proving that this experimental technology has the potential to achieve the performance needed for high-resolution television screens and similar electronic devices.Read more at: http://phys.org/news/2014-01-world-fastest-transistor-herald-see-through.html#jCp
Engineers from the University of Nebraska-Lincoln (UNL) and Stanford University show how they created thin-film organic transistors that could operate more than five times faster than previous examples of this experimental technology.
Flexible, transparent thin film transistors for flexible screens.
researchers at the
U.S. Department of Energy's Argonne National Laboratory reported the
creation of the world's thinnest flexible, see-through 2-D thin film transistors.
These transistors are just 10 atomic layers thick—that's about how much your fingernails grow per second.
Transistors are the basis of nearly all electronics. Their two settings—on or off—dictate the 1s and 0s of computer binary
language. Thin film transistors are a particular subset of these that
are typically used in screens and displays. Virtually all flat-screen
TVs and smartphones are made up of thin film transistors today; they
form the basis of both LEDs and LCDs (liquid crystal displays).
Read more at: http://phys.org/news/2014-05-flexible-transparent-thin-transistors-screens.html#jCp
Researchers at the U.S. Department of Energy's Argonne National Laboratory reported the creation of the world's thinnest flexible, see-through 2-D thin film transistors.These transistors are just 10 atomic layers thick—that's about how much your fingernails grow per second.
Transistors are the basis of nearly all electronics. Their two settings—on or off—dictate the 1s and 0s of computer binary
Read more at: http://phys.org/news/2014-05-flexible-transparent-thin-transistors-screens.html#jCp
These transistors are just 10 atomic layers thick—that's about how much your fingernails grow per second.
Transistors are the basis of nearly all electronics. Their two settings—on or off—dictate the 1s and 0s of computer binary language. Thin film transistors are a particular subset of these that are typically used in screens and displays. Virtually all flat-screen TVs and smartphones are made up of thin film transistors today; they form the basis of both LEDs and LCDs (liquid crystal displays).
Saturday, May 31, 2014
Multilayer, microscale solar cells enable ultra-high efficiency power generation.
This gives Efficiency of 43.9%,Printing based assembly of quadruple junction,four terminal micro scale solar cells allows realization of extremely high efficiency modules.
The project involved a collaborative team of researchers at the University of Illinois and the photovoltaic companies Semprius and Solar Junction. According to the group’s paper.
For more details >>> Click Here<<<<<<<
The
project involved a collaborative team of researchers at the University
of Illinois and the photovoltaic companies Semprius and Solar Junction.
According to the group’s paper, the module’s top cell consists of a
three-junction (3J) microcell with its own anti-reflective coating to
ensure efficient transmission of light to the uppermost layers. The
bottom cell uses a diffused-junction germanium (Ge) architecture. In a
stacked 3J/Ge assembly, the top 3J cell captures light with wavelengths
between 300 nm and 1,300 nm. Wavelengths from 1,300 nm to 1,700 nm pass
through to the bottom Ge cell with minimal interface reflections, due to
the use of a thin layer of a unique type of chalcogenide glass. - See
more at:
http://engineering.illinois.edu/news/article/7958#sthash.2yr50MuB.dpuf
“Printing-based
assembly of quadruple-junction four-terminal microscale solar cells
allows realization of extremely high-efficiency modules, - See more at:
http://engineering.illinois.edu/news/article/7958#sthash.2yr50MuB.dpuf
“Printing-based
assembly of quadruple-junction four-terminal microscale solar cells
allows realization of extremely high-efficiency modules, - See more at:
http://engineering.illinois.edu/news/article/7958#sthash.2yr50MuB.dpuf
“This
is a high-throughput, parallel assembly process that allows for
simultaneous formation of arrays of stacked multi-junction cells in a
fully automated step-and-repeat mode with high yields—greater than 95
percent—and accurate overlay registration. A newly developed interfacial
material for these stacks enables ideal optical, electrical, and
thermal properties. ” stated Xing Sheng, a postdoctoral fellow with
Rogers’ research group and first author of the paper, “Printing-based
assembly of quadruple-junction four-terminal microscale solar cells
allows realization of extremely high-efficiency modules,” published this
week in the journal Nature Materials. - See more at:
http://engineering.illinois.edu/news/article/7958#sthash.2yr50MuB.dpuf
“This
is a high-throughput, parallel assembly process that allows for
simultaneous formation of arrays of stacked multi-junction cells in a
fully automated step-and-repeat mode with high yields—greater than 95
percent—and accurate overlay registration. A newly developed interfacial
material for these stacks enables ideal optical, electrical, and
thermal properties. ” stated Xing Sheng, a postdoctoral fellow with
Rogers’ research group and first author of the paper, “Printing-based
assembly of quadruple-junction four-terminal microscale solar cells
allows realization of extremely high-efficiency modules,” published this
week in the journal Nature Materials. - See more at:
http://engineering.illinois.edu/news/article/7958#sthash.2yr50MuB.dpuf
“This
is a high-throughput, parallel assembly process that allows for
simultaneous formation of arrays of stacked multi-junction cells in a
fully automated step-and-repeat mode with high yields—greater than 95
percent—and accurate overlay registration. A newly developed interfacial
material for these stacks enables ideal optical, electrical, and
thermal properties. ” stated Xing Sheng, a postdoctoral fellow with
Rogers’ research group and first author of the paper, “Printing-based
assembly of quadruple-junction four-terminal microscale solar cells
allows realization of extremely high-efficiency modules,” published this
week in the journal Nature Materials. - See more at:
http://engineering.illinois.edu/news/article/7958#sthash.2yr50MuB.dpuf
“This
is a high-throughput, parallel assembly process that allows for
simultaneous formation of arrays of stacked multi-junction cells in a
fully automated step-and-repeat mode with high yields—greater than 95
percent—and accurate overlay registration. A newly developed interfacial
material for these stacks enables ideal optical, electrical, and
thermal properties. ” stated Xing Sheng, a postdoctoral fellow with
Rogers’ research group and first author of the paper, “Printing-based
assembly of quadruple-junction four-terminal microscale solar cells
allows realization of extremely high-efficiency modules,” published this
week in the journal Nature Materials. - See more at:
http://engineering.illinois.edu/news/article/7958#sthash.2yr50MuB.dpuf
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