mix

mix150.com MIX150 DOWNLOAD GAMES PLAYSTATION RIP FILMS
Showing posts with label Temperature. Show all posts
Showing posts with label Temperature. Show all posts

Tuesday, May 29, 2012

Researchers measure nanometer scale temperature

Atomic force microscope cantilever tips with integrated heaters are widely used to characterize polymer films in electronics and optical devices, pharmaceuticals, paints, and coatings. These heated tips are also used in research labs to explore new ideas in nanolithography and data storage, and to study fundamentals of nanometer-scale heat flow. Until now, however, no one has used a heated nano-tip for electronic measurements.


"We have developed a new kind of electro-thermal nanoprobe," according to William King, a College of Engineering Bliss Professor in the Department of Mechanical Science and Engineering at Illinois. "Our electro-thermal nanoprobe can independently control voltage and temperature at a nanometer-scale point contact. It can also measure the temperature-dependent voltage at a nanometer-scale point contact."


"Our goal is to perform electro-thermal measurements at the nanometer scale," according to Patrick Fletcher, first author of the paper, "Thermoelectric voltage at a nanometer-scale heated tip point contact," published in the journal Nanotechnology. "Our electro-thermal nanoprobe can be used to measure the nanometer-scale properties of materials such as semiconductors, thermoelectrics, and ferroelectrics."


The electro-thermal probes are different than thermal nanoprobes typically used in King's group and elsewhere. They have three electrical paths to the cantilever tip. Two of the paths carry heating current, while the third allows the nanometer-scale electrical measurement. The two electrical paths are separated by a diode junction fabricated into the tip. While the cantilever design is complex, the probes can be used in any atomic force microscope.


In addition to Fletcher, co-authors of the paper include Byeonghee Lee, and William King. The research was performed in the Nanoengineering laboratory as well as the Micro and Nanotechnology Laboratory and the Materials Research Laboratory at Illinois.


Recommend this story on Facebook, Twitter,
and Google +1:


Other bookmarking and sharing tools:


Story Source:



The above story is reprinted from materials provided by University of Illinois College of Engineering.


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


Journal Reference:

Patrick C Fletcher, Byeonghee Lee, William P King. Thermoelectric voltage at a nanometer-scale heated tip point contact. Nanotechnology, 2012; 23 (3): 035401 DOI: 10.1088/0957-4484/23/3/035401

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.


View the original article here

Tuesday, December 13, 2011

Physicists identify room temperature quantum bits in widely used semiconductor

ScienceDaily (Nov. 2, 2011) — A discovery by physicists at UC Santa Barbara may earn silicon carbide -- a semiconductor commonly used by the electronics industry -- a role at the center of a new generation of information technologies designed to exploit quantum physics for tasks such as ultrafast computing and nanoscale sensing.

The research team discovered that silicon carbide contains crystal imperfections that can be controlled at a quantum mechanical level. The finding is published this week in the journal Nature.

The research group of David Awschalom, senior author, made the finding. Awschalom is director of UCSB's Center for Spintronics & Quantum Computation, professor of physics, electrical and computer engineering, and the Peter J. Clarke Director of the California NanoSystems Institute.

In conventional semiconductor-based electronic devices, crystal defects are often deemed undesirable because of their tendency to immobilize electrons by "trapping" them at a particular crystal location. However, the UCSB team discovered that electrons that become trapped by certain imperfections in silicon carbide do so in a way that allows their quantum states to be initialized, precisely manipulated, and measured using a combination of light and microwave radiation. This means that each of these defects meets the requirements for use as a quantum bit, or "qubit," which is often described as the quantum mechanical analog of a transistor, since it is the basic unit of a quantum computer.

"We are looking for the beauty and utility in imperfection, rather than struggling to bring about perfect order," said Awschalom, "and to use these defects as the basis for a future quantum technology."

Most crystal imperfections do not possess these properties, which are intimately tied to the atomic structure of a defect and the electronic characteristics of its semiconductor host, explained Awschalom. In fact, before this research, the only system known to possess these same characteristics was a flaw in diamond known as the nitrogen-vacancy center.

The diamond nitrogen-vacancy center is renowned for its ability to function as a qubit at room temperature, while many other quantum states of matter require an extremely cold temperature, near absolute zero. However, this center exists in a material that is difficult to grow and challenging to manufacture into integrated circuits.

In contrast, high-quality crystals of silicon carbide, multiple inches in diameter, are commonly produced for commercial purposes. They can be readily fashioned into a multitude of intricate electronic, optoelectronic, and electromechanical devices. In addition, the defects studied by Awschalom and his group are addressed using infrared light that is close in energy to the light used widely throughout modern telecommunications networks. And while several distinct defect types were studied at a range of temperatures, two of them were capable of room temperature operation, just like the diamond nitrogen-vacancy center.

The combination of these features makes silicon carbide, with its defects, an attractive candidate for future work seeking to integrate quantum mechanical objects with sophisticated electronic and optical circuitry, according to the researchers. This research fits within a wider effort at UCSB to engineer quantum devices by fostering collaboration between the fields of materials science and quantum physics.

While defects in silicon carbide may offer many technologically attractive qualities, an immense number of defects in other semiconductors are still left to be explored.

"Our dream is to make quantum mechanics fully engineerable," said William Koehl, lead author and a graduate student in the Awschalom lab. "Much like a civil engineer is able to design a bridge based on factors such as load capacity and length span, we'd like to see a day when there are quantum engineers who can design a quantum electronic device based on specifications such as degree of quantum entanglement and quality of interaction with the surrounding environment."

Recommend this story on Facebook, Twitter,
and Google +1:

Other bookmarking and sharing tools:

Story Source:

The above story is reprinted from materials provided by University of California - Santa Barbara.

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

Journal Reference:

William F. Koehl, Bob B. Buckley, F. Joseph Heremans, Greg Calusine, David D. Awschalom. Room temperature coherent control of defect spin qubits in silicon carbide. Nature, 2011; 479 (7371): 84 DOI: 10.1038/nature10562

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.


View the original article here

Friday, July 29, 2011

Test Laptop Temperature

Answer: Using a free monitoring program, you can check your laptop's internal temperature to see if it's running too hot and in danger of overheating.

The biggest clue that your laptop is not running at an ideal temperature is if you're experiencing any symptoms of overheating. But most laptops naturally run hot, so a system utility that can access your laptop's internal temperature sensors can help you decide if you need to take steps to cool your laptop down further.

You can look up temperature specifications for your specific laptop's Intel or AMD processor, but most CPUs' maximum temperatures are around 100° Celsius (212° Fahrenheit). Before you get to that upper limit, though, your laptop will likely have all sorts of performance problems and may be shutting down randomly on its own. Optimal operating temperature is 50° Celsius (122° Fahrenheit) or below, according to the SpeedFan temperature monitoring program, though newer processors may go comfortably higher to around 70° Celsius (158° Fahrenheit).
Sources: Intel, AMD, Kioskea.net

Several free temperature monitoring programs are available that can show you the CPU temperature as well as other system details like processor load, voltages, and more. Some of them can also automatically or manually adjust the speed of your laptop's fan for best performance. Here are a couple that I've used before:

SpeedFan: In addition to monitoring fan speeds, voltage, and processor temperatures using your laptop's internal sensors, SpeedFan can also access S.M.A.R.T. info to determine your hard disk's temperatures. The small application offers fan control, charting, and easy-to-understand graphics (like a flame next to each processor core that is over the recommended 50 degree Celsius mark). Windows PCs.
Real Temp: Real Temp is designed specifically to monitor temperature for all Intel single, dual, and quad core processors. In addition to showing the temperature and load of the processor, it also shows the CPU's "TjMax" or safe maximum operating temperature and how far from this maximum temp your processor is running at. Another interesting feature of Real Temp is its tracking of your highest and lowest temperatures since you opened the program. Unlike SpeedFan, however, Real Temp doesn't allow control of fan speeds. Windows PCs.

For Macs, there is a free Temerature Monitor application that's also available as a dashboard widget. Linux users can read the CPU temperature from a shell prompt.


source from about.com