Wednesday, October 10, 2012

Britain hopes for talks with French, Germans on EADS/BAE

BRUSSELS (Reuters) - British Defence Secretary Philip Hammond said on Tuesday he hoped to meet his French, German and U.S. counterparts to discuss the proposed merger of aerospace groups EADS and BAE Systems, a day before the deal's deadline.

The plan to create a European defence and aerospace giant out of the two companies rest on a knife edge because of disagreements between the governments involved and criticism from private investors.

A deadline set by London's stock market comes up on Wednesday.

"We always knew that there was a crunch point this Wednesday and the company has to decide today whether it's going to ask the stock exchange for an extension of time or not," Hammond told reporters as he arrived for a meeting of NATO defence ministers in Brussels.

"I'm hoping to meet my German, French and indeed my American counterparts during the course of this meeting to talk about this subject," he said.

German Defence Minister Thomas de Maiziere appeared to signal there was no movement in the talks when he was asked about the merger on arrival at the two-day NATO meeting.

"This topic is not on our agenda and in my opinion there is nothing new to add on the negotiations" at NATO, he said.

French Defence Minister Jean-Yves le Drian plans a bilateral meeting with U.S. Defence Secretary Leon Panetta in Brussels later on Tuesday, according to diplomatic sources, but it was unknown if the merger plan would be on the agenda.

NATO Secretary-General Anders Fogh Rasmussen declined comment on the planned merger but threw his support in general behind a restructuring of Europe's defence industries.

"I consider such a merger a commercial decision and it's for shareholders and involved governments to figure that out. It's their decision," he told reporters.

"But let me stress that in general I'm in favour of restructuring European defence industries with a view to making them more competitive and more effective," he said.

A disagreement over whether Paris could increase its shareholding in a combined BAE-EADS in future is the latest obstacle to the merger. Berlin's desire for a more favourable deal is another possible hitch.

Hammond has said he opposes France, which owns 15 percent of EADS, lifting its stake in the merged group beyond a diluted level of 9 percent.

(Reporting by Adrian Croft, Claire Davenport. Editing by Sebastian Moffett.)

Source: http://news.yahoo.com/eads-bae-systems-chiefs-discuss-next-merger-steps-090619073--finance.html

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Colorado 'ground zero' of White House race (CNN)

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Tuesday, October 9, 2012

Topological superconductors: Seeking a robust home for qubits

ScienceDaily (Oct. 9, 2012) ? If quantum computers are ever going to perform all those expected feats of code-breaking and number crunching, then their component qubits -- tiny ephemeral quantum cells held in a superposition of internal states -- will have to be protected from intervention by the outside world. In other words, decoherence, the loss of the qubits' quantum integrity, has to be postponed. Now theoretical physicists at the Joint Quantum Institute (JQI) and the University of Maryland have done an important step forward to understand qubits in a real-world setup.

In a new study they show, for the first time, that qubits can successfully exist in a so called topological superconductor material even in the presence of impurities in the material and strong interactions among participating electrons.

To see how qubits can enter into their special coherence-protection program, courtesy of "Majorana particles," an exotic form of excitation, some groundwork has to be laid.

Quantum Materials

Most designs for qubits involve materials where quantum effects are important. In one such material, superconductors (SC), electrons pair up and can then enter into a large ensemble, a supercurrent, which flows through the material without suffering energy loss. Another material is a sandwich of semiconductors which support the quantum Hall effect (QHE). Here, very low temperatures and a powerful external magnetic field force electrons in a thin boundary layer to execute tiny cyclone motions (not exactly, but ok -- also isn't a cyclone a storm?). At the edge of these layers, the electrons, unable to trace out a complete circular path, will creep along the edge, where they constitute a net electrical current.

One of the most interesting and useful facts about these electrons at the edge is that they move in one direction. They cannot scatter backwards no matter how many impurities (which in ordinary conductors can lead to energy dissipation) may be in the material. If, furthermore, the electrons can be oriented according to their spin -- their intrinsic angular momentum -- then we get what is called the quantum spin Hall effect (QSH). In this case all electrons with spin up will circulate around the material (at the edge) in one direction, while electrons with spin down will circulate around in the opposite direction.

Topological Materials

In some materials the underlying magnetism of the nuclei in the atoms making of the material is so strong than no external magnet is needed to create the Hall effects. Mercury-cadmium-telluride compounds are examples of materials called topological insulators. Insulators (not sure how this sentence was supposed to start, but grammatically is currently confusing) because even as electrons move around the edge of the material with very little loss of energy, the interior of these 3-dimensional structures is an insulator; no current flows. The "topological" is a bit harder to explain. Partly the flow of current on the outside bespeaks of geometry: the electrons flow only at the edge and are unable (owing to quantum interactions) from scattering backwards if they meet an impediment.

But topology in this case has more to do with the way in which the motion of the electrons in these materials are described in terms of "dispersion relations." Just as waves of white light will be dispersed into a spectrum of colors when the waves strike the oblique side of a prism, so electron waves (electrons considered as quantum waves) will be "dispersed," in the sense that electrons with the same energy might have different momenta, depending on how the electrons move through the material in question.

The idea of electron dispersal is often depicted in the form of an energy-level diagram. In insulators, electrons remain in a valence band; they don't have enough energy to visit the conduction band of energies; hence the electrons do not move; the material is an insulator against electricity. In a conductor (middle part) the conduction and valence bands overlap. In the QHE (right panel) electrons in the interior of the material also do not move along; the bulk of the material is an insulator. But for electrons at the edge there is a chance for movement into the conduction band.

Now for the topology: just as a coffee cup is equivalent to a donut topologically -- either can be transformed into the other by stretching but not by any tearing -- so here the valence band can be transformed into a conduction band (at least for edge states) no matter what impurities might be present in the underlying material. In other words, the "topological" nature of the material offers some protection for the flow of electrons against the otherwise-dissipating effects of impurities.

The marvelous properties of superconductors and topological materials can be combined. If a one-dimensional topological specimen -- a nanowire made from indium and arsenic -- is draped across a superconductor (niobium, say) then the superconductivity can extend into the wire (proximity effect). And in this conjunction of materials, still another hotly-pursued effect can come into play.

Majorana Particles

One last concept is needed here -- Majorana particles -- named for the Italian physicist Ettore Majorana, who predicted in 1937 the existence of a class of particle that would serve as its own antiparticle. Probably this object would not exist usefully in the form of a single real particle but would, rather, appear in a material as a quasiparticle, an ensemble excitation of many electrons.

Some scientists believe that qubits made from Majorana pulses excited in topological materials (and benefitting from the same sort of topological protection that benefits, say, electrons in QHE materials) would be much more immune from decoherence than other qubits based on conventional particles.

Specifically Sankar Das Sarma and his colleagues at the University of Maryland (JQI and the Condensed Matter Theory Center) predicted that Majorana particles would appear in topological quantum nanowires. In fact part of the Majorana excitation would appear at both ends of the wire. These predictions were borne out. It is precisely the separation of these two parts (each of which constitutes a sort of "half electron") that confers some of the anticipated coherence-protection: a qubit made of that Majorana excitation would not be disrupted by merely a local irregularity in the wire.

A recent experiment in Holland provides preliminary evidence for exactly this occurrence.

Robust Qubits Amid Disorder

One of the authors of the new study, Alejandro Lobos, said that the earlier Maryland prediction, useful as it was, was still somewhat idealistic in that it didn't fully grapple with the presence of impurities, a fact of life which all engineers of actual computers must confront. This is what the new paper, which appears in the journal Physical Review Letters, addresses.

The problem of impurities or defects (which flowing electrons encounter as a form of disorder) is especially important for components which are two or even one dimensional in nature. The same is true for the repulsive force among electrons. "In 3-dimensional materials," said Lobos, "electrons (and their screening clouds of surrounding holes) can avoid each other thanks to the availability of space. They can just go around each other. In 1-D materials, this is not possible, since electrons cannot pass each other. In 1D, if one electron wants to move, it has to move all the other electrons! This ensures that excitations in a 1D metal are necessarily collective, as opposed to the single-particle excitations existing in a 3D metal.

So, in summary, the new Maryland work shows that disorder and electron interactions, two things that normally work to disrupt superconductivity, can be overcome with careful engineering of the material. "A number of important theoretical studies before ours have focused on the destabilizing effects of either disorder or interaction on topological superconductors," said Lobos. "These studies showed the extent to which a topological superconductor could survive under these effects separately. But to make contact with real materials, disorder and interactions have to be considered on equal footing and simultaneously, a particular requirement imposed by the one-dimensional geometry of the system. It was then an important question to determine if it was possible to stabilize a topological superconductor under their simultaneous presence. The good news is that the answer is yes: despite their detrimental effect, there is still a sizable range of parameters where topological superconductors hosting Majorana excitations can exist. That's the main result of our study, which will be useful to understand and characterize topological superconductors in more realistic situations."

The Joint Quantum Institute is operated jointly by the National Institute of Standards and Technology in Gaithersburg, MD and the University of Maryland in College Park.

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The above story is reprinted from materials provided by Joint Quantum Institute.

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Journal Reference:

  1. Alejandro Lobos, Roman Lutchyn, S. Das Sarma. Interplay of Disorder and Interaction in Majorana Quantum Wires. Physical Review Letters, 2012; 109 (14) DOI: 10.1103/PhysRevLett.109.146403

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.

Source: http://feeds.sciencedaily.com/~r/sciencedaily/top_news/~3/O6QxIlwpFPs/121009121739.htm

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UK engineers developing harpoon that could help space junk meet a fiery end

UK engineers developing harpoon that could help space junk meet a fiery end

Sure, we can pull space junk out of orbit with lasers or use it to cobble together new satellites, but if engineers at space firm Astrium UK have their way, space trash could be disposed of with the help of harpoons. Currently in a conceptual stage, the system is designed to shoot defunct satellites or other debris with a harpoon mounted on a "chaser satellite" and use a tethered propulsion pack to send the rubbish in an atmospheric descent where it'll burn up. Since the projectile could shoot straight through targets and result in even more garbage, it's been fashioned with a crushable portion to reduce its speed upon impact. There's no concrete word on when the outfit's solution might be put in action, but they'll present their work on Wednesday at the 63rd International Astronautical Congress in Naples (Italy, not Florida, mind you). If you can't wait to see the harpoon at work, head past the break to catch tests of an Earth-based prototype.

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Math Responds to Romney (talking-points-memo)

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Monday, October 8, 2012

Senior Pass Sale This Week ? Wesleying

Hey Class of 2013, remember when you voted the handsome devil David Shor ?13, featured above, as your Class President? This week, he?s writing in to remind you to pick up your Senior Pass and consider making a contribution to SWAG, the Seniors of Wesleyan Annual Gift. Seniors should remember that the Senior Gift contributes to a financial aid scholarship that will be awarded to an incoming Wesleyan freshman next year. The Class of 2013 has a goal of 92% participation and $15,000 raised. Here?s the important info, worded far more coherently than his initial write-up:

Senior events are a tremendous opportunity to enjoy the company of your entire class, from your best friend to your freshman year hallmate who always bumped the best jams. They are a chance to truly enhance the memories of senior year that you will cherish for years to come after graduation. Don?t miss out on these great events. You will regret it. More information about the passes, their sale, and the Senior Gift after the jump.

Passes will be on sale all this week during lunch, from roughly 12 to 1 p.m., and during the evening from 8 to 9 p.m. in Olin. Shor ?13 makes special mention that passes will not be sold on Friday night ?because it?s Fall Break, and that would be ridiculous.? Full passes include 5 events (2 in the Fall, November 9th and December 3rd, and 3 in the Spring) and cost $150, while half passes include 3 events (Winter Formal, Senior Outing during Senior Week, and Semi-Formal during Senior Week) and cost $100. You can pay with cash, check, or student account. There will be a limited number of individual passes and guest passes, so we encourage students to take advantage of the different passes. Individual tickets will be priced between $40 and $50. The food is going to be ?THE DANKEST,? and the surprises will be a blast.

The Senior Gift provides graduating seniors with the opportunity to provide a future Wesleyan student with a financial aid scholarship to attend one of the finest institutions of higher education in the country. Gifts can be made with your Senior Pass purchase by check, cash, or student account. After that, gifts can be made online (give.wesleyan.edu). Students can also donate an hour or more of your work paycheck directly to the SWAG scholarship. Seniors who make a gift of $100 or more will be included in Wesleyan?s Leadership Giving Society, the GOLD Donor Associates. Membership includes invitations to donor receptions and networking events. Gifts can be made in monthly installments throughout the year. Contact Melody Oliphant ?13 (moliphant@wes) or Stephanie McQueen (smcqueen@wes) with any questions about gifts to SWAG.

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Source: http://wesleying.org/2012/10/08/senior-pass-sale-this-week/?utm_source=rss&utm_medium=rss&utm_campaign=senior-pass-sale-this-week

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