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Showing posts with label Better. Show all posts
Showing posts with label Better. Show all posts

Friday, July 27, 2012

High-speed CMOS sensors provide better images

ScienceDaily (Jan. 13, 2012) — Conventional CMOS image sensors are not suitable for low-light applications such as fluorescence, since large pixels arranged in a matrix do not support high readout speeds. A new optoelectronic component speeds up this process. It has already been patented.

CMOS image sensors have long since been the solution of choice for digital photography. They are much cheaper to produce than existing sensors, and they are also superior in terms of power consumption and handling. Consequently, leading manufacturers of cell-phone and digital cameras fit CMOS chips in their products almost without exception. This not only reduces the demands made of the battery, it also makes increasingly smaller cameras possible.

Yet these optical semiconductor chips are now reaching their limits: while miniaturization in consumer electronics is leading to increasingly smaller pixels around 1 micrometer across, certain applications require larger pixels in excess of 10 micrometers. Particularly in areas where only minimal light is available, such as in X-ray photography or in astronomy, having a larger pixel area compensates for the lack of light. Pinned photodiodes (PPD) are used to convert the light signals into electrical pulses. These optoelectric components are crucial for image processing and are built into the CMOS chips. "Yet when the pixels exceed a certain size, the PPDs have a speed problem," explains Werner Brockherde, head of department at the Fraunhofer Institute for Microelectronic Circuits and Systems IMS. Low-light applications tend to call for high image rates. "But the readout speed using PPD is too low," says Brockherde.

The Fraunhofer researchers have now come up with a solution to this problem -- it is unique and has already been patented. The scientists have developed a new optoelectronic component, the lateral drift field photodetector (LDPD). "In this component, the charge carriers generated by the incident light move at high speed to the readout node," explains the researcher. With the PPD the electrons simply diffuse to the exit; a comparatively slow process but which is sufficient for many applications. "But by integrating an internal electric field into the photoactive region of the component, we have managed to accelerate this process by a factor of up to a hundred."

To produce the new component, the Fraunhofer researchers improved upon the currently available CMOS chip manufacturing process based on the 0.35 µm standard: "The additional LDPD component must not be allowed to impair the properties of the other components," says Brockherde. Using simulation calculations the experts managed to meet these requirements -- and a prototype of the new high-speed CMOS image sensors is already available. "We expect to get approval for series production next year," says Brockherde.

The high-speed CMOS sensors are ideal candidates for applications that require large pixels and a high readout speed: astronomy, spectroscopy or state-of-the-art X-ray photography are among the potential applications. But the sensors are also ideally suited for use as 3-D sensors based on the time-of-flight process, whereby light sources emit short pulses that are reflected by the objects. The time-of-flight of the reflected light is then recorded by a sensor and used to create a fully-fledged 3-D image. This technology is a compelling proposition for applications such as crash protection, as the sensors can precisely record their environment in three dimensions. The Fraunhofer researchers have already developed this kind of area sensor based on the unique pixel configuration for TriDiCam GmbH.

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The above story is reprinted from materials provided by Fraunhofer-Gesellschaft.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.

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Friday, January 27, 2012

The iPhone 4S Versus The BlackBerry 9900 - Which Is Better?

The market has been engrossed with the release of BlackBerry phones, but with the recent launch of the Apple iPhone 4s, which of the two smartphones will the market prefer? Stating the features of each smart phone will determine which will appeal most to the crowd.

The BlackBerry 9900 already has an advantage over iPhone 4s because of its QWERTY keypad. Though equipped with this keypad, the BlackBerry 9900 also included a touch screen feature in their 2.8-inch screen that displays multimedia graphics in a 640x480 frame. This feature may be a turn-off to the crowd because of the small screen and low graphic pixel now that iPhone 4s has the Retina Display which offers its users a full HD view of the graphics in 960x480 pixels.

The iPhone's processor is in theory more superior than that of the BlackBerry but even with a dual-core A5 chip, 1GHz processor, and 512MB RAM, the BlackBerry still runs faster. Though the latter doesn't have a dual-core A5 chip, it runs faster because of its 1.2GHz processor and 768MB RAM. It has not yet been tested which of the two performs better because of its leveling race to being the best. In terms of memory storage, the iPhone 4s offers three varieties: 16GB, 32GB, and 64GB. The BlackBerry, on the other hand, can handle 8GB worth of media files in its internal memory but can still be enhanced when slotted with a 32GB microSD card.

When it comes to the number of networks supported, the iPhone has the advantage because it handles both CDMA and GSM support. The BlackBerry 9900 is only an improved version of BlackBerry Bold which only supports GSM networks but the BlackBerry 9930 is the one which handles CDMA networks out of the three BlackBerry smartphones. However, both the iPhone 4s and BlackBerry 9900 possess an HSPA receiver that lets its users utilize a 14.4MBPS downlink. Both also have the Bluetooth function but when it comes to Wi-Fi connectivity, it is only attainable through the iPhone. The iPhone's version of Bluetooth is a specialized type v4.0 receiver while the BlackBerry 9900 has the common v2.1.

The latest version of the iPhone boasts an iOS 5 (operating system) update and it can handle more applications like Twitter integration, iMessages, iReminder, Notification Center, and photo-editing applications. In fact, both the BlackBerry 9900 and iPhone 4s can have the iOS 5 update. However, the advantage of iPhone 4s over BlackBerry 9900 when it comes to hardware is its Siri, the voice recognition personal assistant.

What the BlackBerry 9900 can boast is its BlackBerry Operating System 7 which enables the phone to have a touchscreen feature, the BlackBerry browser, the BlackBerry Messenger 6, Liquid Graphics, and applications support for the BlackBerry App World storefront. If you want more secure Internet browsing, using the BlackBerry is more advisable because of its BlackBerry Internet Service (BIS).

The iPhone 4s's price has been revealed recently as $199 for 16GB, $299 for 32GB, and $399 for 64GB. With the BlackBerry 9900 price at $349.99, there is a price difference between the two mobile phone products of at least 16%.

Since the two models have been released the most popular have been the iPhone 4S White and the BlackBerry Bold 9900.


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Friday, October 21, 2011

Better 'photon loops' may be key to computer and physics advances

ScienceDaily (Aug. 22, 2011) — Surprisingly, transmitting information-rich photons thousands of miles through fiber-optic cable is far easier than reliably sending them just a few nanometers through a computer circuit. However, it may soon be possible to steer these particles of light accurately through microchips because of research performed at the Joint Quantum Institute of the National Institute of Standards and Technology (NIST) and the University of Maryland, together with Harvard University.

The scientists behind the effort say the work not only may lead to more efficient information processors on our desktops, but also could offer a way to explore a particularly strange effect of the quantum world known as the quantum Hall effect in which electrons can interfere with themselves as they travel in a magnetic field. The corresponding physics is rich enough that its investigation has already resulted in three Nobel Prizes, but many intriguing theoretical predictions about it have yet to be observed.

The advent of optical fibers a few decades ago made it possible for dozens of independent phone conversations to travel long distances along a single glass cable by, essentially, assigning each conversation to a different color-each narrow strand of glass carrying dramatic amounts of information with little interference.

Ironically, while it is easy to send photons far across a town or across the ocean, scientists have a harder time directing them to precise locations across short distances-say, a few hundred nanometers-and this makes it difficult to employ photons as information carriers inside computer chips.

"We run into problems when trying to use photons in microcircuits because of slight defects in the materials chips are made from," says Jacob Taylor, a theoretical physicist at NIST and JQI. "Defects crop up a lot, and they deflect photons in ways that mess up the signal."

These defects are particularly problematic when they occur in photon delay devices, which slow the photons down to store them briefly until the chip needs the information they contain. Delay devices are usually constructed from a single row of tiny resonators, so a defect among them can ruin the information in the photon stream. But the research team perceived that using multiple rows of resonators would build alternate pathways into the delay devices, allowing the photons to find their way around defects easily.

As delay devices are a vital part of computer circuits, the alternate-pathway technique may help overcome obstacles blocking the development of photon-based chips, which are still a dream of computer manufacturers. While that application would be exciting, lead author Mohammad Hafezi says the prospect of investigating the quantum Hall effect with the same technology also has great scientific appeal.

"The photons in these devices exhibit the same type of interference as electrons subjected to the quantum Hall effect," says Hafezi, a research associate at JQI. "We hope these devices will allow us to sidestep some of the problems with observing the physics directly, instead allowing us to explore them by analogy."

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The above story is reprinted (with editorial adaptations by ScienceDaily staff) from materials provided by National Institute of Standards and Technology (NIST).

Journal Reference:

Mohammad Hafezi, Eugene A. Demler, Mikhail D. Lukin, Jacob M. Taylor. Robust optical delay lines with topological protection. Nature Physics, 2011; DOI: 10.1038/NPHYS2063

Note: If no author is given, the source is cited instead.

Disclaimer: Views expressed in this article do not necessarily reflect those of ScienceDaily or its staff.


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