Monday, July 28, 2008
Saturday, July 26, 2008
Hydrogen Vehicles Coming Soon
Hydrogen Vehicles Coming Soon? Two Million Could Be On Roads By 2020ScienceDaily (July 18, 2008) — A transition to hydrogen vehicles could greatly reduce U.S. oil dependence and carbon dioxide emissions, says a new congressionally mandated report from the National Research Council, but making hydrogen vehicles competitive in the automotive market will not be easy. While the development of fuel cell and hydrogen production technology over the past several years has been impressive, challenges remain.
Wednesday, July 16, 2008
'Man-made' Water Has Different Chemistry
ScienceDaily (June 20, 2008) — As population growth, food production and the regional effects of climate change place greater stress on the Earth’s natural water supply, “man-made” water – created by removing salt from seawater and brackish groundwater through reverse osmosis desalination – will become an increasingly important resource for millions of humans, especially those in arid regions such as the Middle East, the western United States, northern Africa and central Asia.
Monday, July 14, 2008
Amorphous Materials: How Some Solids Flow Like Liquids
ScienceDaily (July 7, 2008):
Scientists at CNRS-affiliated laboratories(1) in Bordeaux, Lyon and Paris have provided the first proof that amorphous materials, also known as soft glasses, deform and flow through a collective movement of their particles. These materials (which include chocolate mousse, shaving cream, mayonnaise, metallic glasses, granular materials and mud) are amorphous solids, in other words, they are resistant like solids but, like liquids, lack a crystalline structure. This discovery, published in the journal Nature, should make it possible to better understand deformation and fracturing in metallic glasses(2) and the spreading of thin layers of fragile materials (such as face creams) used in the cosmetics, food-processing and lubrication industries.
Sunday, July 13, 2008
Planetary science: The early Moon was rich in water
Planetary science: The early Moon was rich in waterMarc Chaussidon1
AbstractAnalyses of lunar volcanic glasses show that they are rich in volatile elements and water. If parts of the lunar mantle contain as much water as Earth's, does this imply that the water has a common origin? The Moon's chemical composition differs from Earth's. It is enriched by a factor of two to three in refractory elements (those that condense first from a high-temperature gas) such as aluminium, calcium and titanium; most easily vaporized (that is, volatile) elements, such as sodium and potassium, are rare; and it is considered to be almost devoid of water1.
Nature 454, 170-172 (10 July 2008)
Friday, June 20, 2008
Thursday, June 19, 2008
Wednesday, June 18, 2008
Tuesday, May 20, 2008
METALS IN NUTRITION
METALS IN NUTRITION
Metals in the dietA variety of metals are found in a range of foods in the diet, and in this context, are termed minerals, along with some non-metals, such as iodine and fluorine. The minerals are grouped in to either: Macro minerals – those that are needed by the body in relatively large amounts (e.g. sodium, potassium, chlorine, calcium, phosphorus, magnesium) Micro/trace minerals – those needed in small amounts (e.g. selenium, iron, zinc, copper, manganese, molybdenum, chromium, arsenic, germanium, lithium, rubidium, tin). Many of these minerals have been classed as essential elements, necessary for utilisation by the body to ensure good health, but the function of these minerals and their benefits to the body is still uncertain and has been widely speculated. This has given scope for arguing the justification of taking supplements. Much research has been carried out, concerning the role of minerals in the body, but in many cases, difficulties in investigating their individual effects has been expressed because intake is often in combination with other vitamins and minerals, e.g. fruit and vegetables contain several minerals. There is, however, strong evidence that supplementation of certain minerals would benefit those suffering from deficiency disorders. It is also important to note though that intake of minerals does not necessarily correlate with absorption and a balance must be obtained. There are many suggested essential elements – here, we have highlighted some of those which have been most speculative, primarily the micro minerals.
Macro mineralsMacro minerals are present in virtually all cells of the body, maintaining general homeostasis and required for normal functioning. Acute imbalances of these minerals can be potentially fatal, although nutrition is rarely the cause of these cases. Diet can affect levels of macronutrients in the body, but effects are generally chronic, e.g. a high intake of sodium can lead to hypertension.
Micro mineralsMicro minerals contribute to good health if they originate from an organic source because they have essentially been processed. Plants take up minerals from the ground, digest them, making them ionic so that when consumed by humans, assimilation into the body occurs much more easily, and toxicity by accumulation does not occur. However, micro minerals from inorganic sources, such as heavy metals, can not be used by the body as they tend to build up in the tissues.
Understanding of superconductivity may be closer
Understanding of superconductivity may be closerPhysicists have long debated the causes of superconductivity, a phenomenon in which normal resistance to a flow of electrical current vanishes in certain materials when extremely cold. This allows hyper-efficient current transmission—offering the promise of a new electrical golden age with high-powered computers, magnetically levitating trains and super-efficient power lines. But to put this effect to practical use, scientists have to understand it better, especially why it seems to occur only in such cold and whether that can be changed. A new study may help clarify these questions, according to researchers who have found that superconductivity works differently in two slightly different temperature ranges. Superconductivity was discovered by the Dutch physicist Heike Kamerlingh Onnes when in 1911 when he cooled mercury to barely above absolute zero, the lowest temperature theoretically possible. Scientists later concluded that superconductivity at such rock-bottom temperatures occurs when vibrations of the grid-like atomic arrangement of the material affects its electrons, subatomic particles that carry electric charge. These, which normally repel each other because they have the same charge, then join up as pairs that glide effortlessly through the material without scattering off its atoms. In 1986 came the discovery of a class of materials that allow superconductivity at somewhat less frigid temperatures: up to about 150 Kelvin (minus 253 F or minus 123 C), considerably higher than the 4 degrees Kelvin (minus 452F or minus 269 C) required in the original Onnes tests. This advance allowed the materials to be cooled with liquid nitrogen, which costs less than the liquid helium needed to cool lower-temperature superconductivity. Since that finding, scientists have debated whether in these higher-temperature superconductors—also called copper oxide superconductors—electrons bond in the same ways as in the lower-temperature superconductors. The mechanism turns out to be different, according to the new study. Rather than atomic vibrations driving the electrons to join as pairs, the researchers said, higher-temperature superconductivity depends on electrons’ ability to take advantage of their natural repulsion in a complex situation. This conclusion, investigators said, was based on experiments showing that the places in a sample where electrons form the most strongly bound pairs, are the same as where they show signs of stronger repulsion at higher, non-superconducting temperatures. Surprisingly, in other words, it seems “the electrons with the strongest repulsion in one situation are the most adept at superconductivity in another,” said Princeton University physicist Ali Yazdani, one of the researchers. That’s unlike the behavior of electrons in lower-temperature superconductive materials, according to the group, which studied a compound made of strontium, bismuth, calcium and copper oxide and reported the findings in the April 11 issue of the research journal Science. Although much remains to be explained, the researchers said their work may be a a useful step. “The data is a gold mine which we’re only beginning to exploit,” agreed Princeton physicist Philip Anderson, who won a physics Nobel in 1977 and wasn’t involved in the research. The investigators used a specially rigged form of a device known as scanning tunneling microscope, which let them examine a single atom as electrons there went from repelling each other to pairing up. The microscope analyzes atoms by measuring current that flows between the surface of a sample, and a specially designed probe on the microscope. The probe, with a fine tip just one atom wide, is placed a hair’s breadth above the sample, and can move in increments smaller than an atom over the surface to take measurements. April 10, 2008,Courtesy Princeton University and World Science staff
Thursday, May 1, 2008
Superinsulator - New State of Matter
Superinsulator - New State of Matter
Physicists have known about superconductors since 1911, but now it looks like the opposite - a superinsulator - might also exist, unnoticed until recently. An international team led by Argonne National Laboratory's Valerii Vinokur has published their findings in the April 3 issue of the journal Nature.
The superinsulator requires a very delicate balance to be achieved. Thin films of titanium nitride (normally a superconductor) apparently drop to zero electrical conductance when lowered below a certain critical temperature and placed in the presence of a magnetic field, the exact opposite of what occurs in standard superconductivity (which yields zero electrical resistance below a critical temperature).
Scientists have known that superconductors can turn into insulators, but only due to quantum phase transitions very near absolute zero. This new form of insulator extends over a range of temperatures up to nearly 70 millikelvin in a magnetic field of 0.9 tesla.
The theory behind these results poses some curious properties of quantum physics, as is usually the case. Essentially, they posit that electrical current and electrical voltage swap roles in the quantum system under these conditions. Plotting phase diagrams of current vs. magnetic field for superconductors and voltage vs. magnetic field for superinsulators result in a pair of phase diagrams which appear to be virtually identical, in fact!
In an analysis of the findings, Italian physicist Rosario Fazio says, "Vinokur and colleagues' observation and theory of superinsulation are crucial advances in our understanding of the collective properties of low-dimensional systems." Fazio goes on to speak about the extent to which further investigation into these topics needs to be performed.
One does have to wonder what technological insights we might gain from the intense study of how to create materials which can completely block the flow of electrical impulses
Power goes wireless
A new system for transmitting power could get rid of the tangle of cables that keep alive our cell phones, laptops and other devices, researchers report.
Physicists at the Massachusetts Institute of Technology in Cambridge, Mass. found that power could be transmitted without wires using special “resonant” antennas. The researchers used the system to power a 60-watt light bulb more than two meters (about two yards) from a wireless transmitter at 40 percent efficiency.
Two images of a 60-watt bulb lit from 2 meters away by a power-transmitting coil. Note the obstruction in the lower image.One known method uses electromagnetic radiation, like radio waves. More commonly used for wireless transmission of information, these can also transmit power. But not very effectively. Since radiation spreads in all directions, almost all the power would end up being wasted into space. An alternative strategy is to beam the radiation specifically toward the electronic device to be charged—but then problems can arise if some other object gets in the way, or if you move the device.
The MIT concept, called “WiTricity” for wireless electricity, involves using so-called coupled resonators. These are objects that, if struck or disturbed, tend to naturally oscillate at a definite rhythm. If two of them tend to have matching rhythms, they actually enhance each others’ oscillations.
One example is a child on a swing. If she swings her legs in synch with the natural rhythm of the swing itself, the swing will soon be briskly in motion.
The type of resonance behind such a push-pull system is called mechanical, but other types of resonances are possible. There are acoustic resonances, for example. Imagine a room with 100 identical wine glasses, each filled with different amounts of wine. This gives each glass a different “resonant frequency,” or natural rhythm of vibration. If a singer then sings a loud enough note in the room, a glass of the corresponding frequency might accumulate enough energy to explode, while the other glasses sit undisturbed.
The MIT team focused on yet another type of resonance, magnetic.
They set up two copper coils, each a self-resonant system. One coil, attached to a power source, is the “sending” unit. Instead of sending out electromagnetic waves, it fills its surroundings with an oscillating magnetic field. This leads to a power exchange with the other, “receiving” coil. Because the magnetic field, unlike radio waves, never gets too far from the sending unit, the energy isn’t lost into space. And extraneous objects entering the field have no impact because they normally don’t resonate along with the system.
With such a design, power transfer has a limited range, and the range would be shorter for smaller-size receivers. Still, for laptop-sized coils, power levels more than enough for a laptop can be transferred over room-sized distances nearly omni-directionally and efficiently, regardless of what’s between the objects, researchers said.
“As long as the laptop is in a room equipped with a source of such wireless power, it would charge automatically, without having to be plugged in,” said MIT’s Peter Fisher.
Although the power transfer efficiency remains below the ideal, team member Andre Kurs said in an email that he’s optimistic it can be improved. He also acknowledged that inefficiency raises environmental concerns, but argued that the new system on balance might actually help the environment. That’s because the batteries that it would replace also tend to lose efficiency over time, and contain toxic chemicals.
Sunday, April 27, 2008
This Week in Physics History: April 21 – 27
This Week in Physics History: April 21 – 27
April 27, 2008
• Apr. 23, 1858- German physicist & Nobel laureate Max Planck is born. Planck is credited as the father of quantum physics, because his solution to the ultraviolet catastrophe in blackbody radiation involved assuming that energy traveled in discrete packets, which he termed quanta. He derived a value, later called Planck's constant, which is crucial to performing quantum physics calculations. Out of this finding, Albert Einstein was able to explain the photoelectric effect and, subsequently, the field of quantum physics was born. He received the 1918 Nobel Prize in Physics for this work.
• Apr. 25, 1900 - Austrian physicist Wolfgang Ernst Pauli is born. Pauli is best known for discovering the "Pauli Exclusion Principle" and extensive work in the concept of spin in particle physics and chemistry. He received the 1945 Nobel Prize in Physics for this work, having been nominated for it by Albert Einstein.
• Apr. 22, 1904 - American physicist J. Robert Oppenheimer was born. Oppenheimer is sometimes called "the father of the atomic bomb" because he was the director of the Manhattan Project to develop the first nuclear bomb.
• Apr. 25, 1953 - Francis Crick & James D. Watson publish their paper describing the double helix structure of DNA, which was determined largely with the use of x-ray crystallography.
• Apr. 24, 1960 - German physicist & Nazi oppositionist Max von Laue died in Berlin. He was awarded the Nobel Prize in Physics in 1914 for his work in discovering the crystial diffraction of x-rays.
• Apr. 21, 1994 - Astronomer Alexander Wolszczan announces the first discoveries of extrasolar planets (i.e. planets circling stars other than our Sun).
• Apr. 26, 1994 - Physicists announce the first evidence of the top quark, a previously theoretical subatomic particle
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