Sunday, July 31, 2011

Quantum World Allows You To Answer Questions Correctly When You Don't Even Have All The Information You Should Need

No-one likes a know-it-all but we expect to be able to catch them out: someone who acts like they know everything but doesn't can always be tripped up with a well-chosen question. Can't they? Not so. New research in quantum physics has shown that a quantum know-it-all could lack information about a subject as a whole, yet answer almost perfectly any question about the subject's parts. The work is published in Physical Review Letters.

"This is something conceptually very weird," says Stephanie Wehner of the Centre for Quantum Technologies at the National University of Singapore, who derived the theoretical result with PhD student Thomas Vidick at the University of California, Berkeley, United States. It's a new phenomenon to add to the list of philosophical conundrums in quantum physics – as strange as the quantum superposition or the quantum uncertainty principle. But the work also has practical motivation: understanding how information behaves in the quantum context is important in emerging technologies such as quantum cryptography and quantum computation.

To frame the problem, consider the example of someone answering questions about a book they have only half-read. If someone has incomplete knowledge about a book as a whole, one expects to be able to identify the source of their ignorance somewhere in the book's pages.

Wehner and Vidick simplify the situation to a book with two pages. They invite the usual quantum players, Alice and Bob, to collaborate. Alice reads the book and is allowed to give Bob one page's worth of information from it.

If Bob only has classical information, it is always possible to work out what he doesn't know. "We show that classically things are, well, sane" says Wehner. In other words, Bob's ignorance can be exposed. Imagine that Bob is a student trying to cheat in an exam, and the notes from Alice cover half the course. An examiner, having secretly inspected Bob's crib notes, could set questions that Bob couldn't answer.

The craziness comes if Bob gets one page's worth of quantum information from Alice. In this case, the researchers show, there is no-way to pinpoint what information Bob is missing. Challenge Bob, and he can guess either page of the book almost perfectly. An examiner could not expose Bob's ignorance even having seen his notes as long as the questions cover no more than half the course – the total amount of information Bob can recount cannot exceed the size of his notes.

It is an unexpected discovery. Researchers had been trying to prove that quantum ignorance would follow classical intuition and be traceable to ignorance of details, and finding that it isn't raises new questions. "We have observed this effect but we don't really understand where it comes from," says Wehner. An intuitive understanding may be forever out of reach, just as other effects in quantum theory defy mechanistic description. However, Wehner and Vidick have begun to design experimental tests and are already formulating a range of ways to explore this strange new frontier. In this work, they devised a means of encoding the quantum information from two pages into one that gave Bob, the quantum know-it-all, the ability to recount all but one bit of the information on either page (the last bit Bob would have to guess). They plan to test whether other encodings would be equally good.

Contacts and sources:
Stephanie Wehner
Principal Investigator and Assistant Professor
Centre for Quantum Technologies
National University of Singapore

Jenny Hogan
Centre for Quantum Technologies at the National University of Singapore

Citation: T. Vidick and S. Wehner, "Does Ignorance of the Whole Imply Ignorance of the Parts? Large Violations of Noncontextuality in Quantum Theory", Physical Review Letters 107, 030402 (2011); http://prl.aps.org/abstract/PRL/v107/i3/e030402. A free preprint is available at http://arxiv.org/abs/1011.6448.

Saturday, July 30, 2011

Surface Protection Enhances Nano-Application

Nano-surface treatments are important for protecting metals against corrosion  and wear. The focus is on nano-porous anodic oxides and their potential application in nanotechnological systems

Porous anodic oxides are attracting attention for use in photonic crystals, sensors and solar cells. They also optimise the function of metal surfaces. 
Credit: Shutterstock/

Applications include aluminium in aerospace, electronics and packaging, and any area where energy reduction and the environmental compliance of processes are critical considerations.

The EU-funded ‘Nano-porous anodic oxides for functionalisation of metal surfaces’ (Nanoxid) project studies the mechanisms involved in the formation of nano-porous anodic oxides. Researchers are taking part in a collaborative activity bringing together the host organisation, the University of Manchester, and the Institut des Nano Sciences de Paris.

Experimental work aims to uncover how oxide dissolution and oxide flow contribute to the generation and ordering of pores. Long-range pore order is currently achieved empirically.

The key features of this project include experiments using oxygen-18 (18O) as a tracer species to study the transport of oxygen while growing oxide films. Another is the use of multi-spectrum analysis to help with quantifying nuclear data. 

To date, findings reveal a major redistribution of the 18O as the porous film evolves, which correlates with the evolution of the porous structure. Overall, the project’s findings will contribute greatly to understanding porous oxide growth by anodising. In turn, this will benefit the future development of improved porous oxides for a range of applications currently being researched. Also, work done by Nanoxid will support the use of the oxide in other areas where more economic and environmentally friendly processes are required, including enhanced film performance

Contacts and sources: 
Research EU Results Magazine

Nanobots To Attack Tumors At Cellular Level Say EU Researchers


Microscopic robots may one day attack cancer cells inside the body.  Tiny nanomachines, known as nanobots, will attack at the cellular level.  Nano refers to 1-billionth of a meter.

The root causes of disease can often be found at the cellular level or a biomolecular level. Early diagnostics combined with early intervention on that nano-scale is a very promising field of modern medicine. One such application that holds much promise is the use of nanoparticles to kill tumour cells through elevated temperatures, i.e. hyperthermia. This method is considered safer than others, such as chemotherapy, and is non-invasive, and ideal for small, non-defined tumors.

The EU-funded NANO3T (1) project wants to create metal and magnetic nano-particles for targeted tumour
therapy. It aims to develop well-designed instruments in combination with engineered inorganic nano-particles that generate heat and specifically target the tumour. The overall objective of this multidisciplinary project is
to develop and explore various metal/magnetic nano-particles as agents for targeted tumour therapy. To achieve this, successful integration and convergence of different technologies at the nano-scale is indispensable
Credit: Michael Taylor, Shuttstock/Research EU Results Magazine

The project team is analysing various aspects of the therapeutic application of nano-particles. These aspects range from the nano-particles themselves to the instrumentation for their application, as well as toxicity and efficacy studies. To achieve its aims, NANO3T is exploring and developing various metal and magnetic biofunctionalised nano-particles as agents for targeted tumour therapy.

Biofunctionalisation is the process of adapting substances such as metals for safe use in the biomedical field.
The team has already achieved the desired integration and convergence of different technologies at the nano-scale. It has successfully developed biofunctionalised nano-particles for hyperthermia. All proposed ligands (signalling molecules that bind to their targets) have been synthesized and tested.

In addition, physical and chemical characterisation of the engineered nano-structures has been achieved. Toxicological and biological evaluations of the different nano-particles are underway, so is a study on the interaction of biological entities and nano-structures.

NANO3T is also addressing the design of advanced instrumentation and devices that can be used for controlled hyperthermia treatment. However, a number of aspects of the original objectives may be difficult to reach with the knowledge available within the team.


This includes, for example, the targeting of nano-particles in prostate tumours and pancreatic tumours among other challenges. While the project is confirming the basic concepts of hyperthermia through nano-particles, it may take a few more years to iron out all the variables. Nonetheless, the initial results are very promising and NANO3T is setting the stage for further exploitation and success in this promising area. If and when this novel treatment takes off, many types of cancer are likely to be much more treatable.

Contacts and sources:
Research EU Results Magazine