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Recent News and Articles on the Keywords: temperature + room + superconductivity  Related to the article below (Last Update: 7/19/2008)

Room Temperature Superconductivity
Science Daily (press release) - Jul 9, 2008
The quest for room temperature superconductivity has gripped physics researchers since they saw the possibility more than two decades ago. ...
Scientists turn up the heat on superconductivity
Business Weekly, UK - Jul 18, 2008
Superconductivity only operates at very low temperatures (sub -200?C) and while the quest for room temperature superconductivity has gripped physics ...

MIT News
MIT physicists shed light on key superconductivity riddle
MIT News, MA - Jul 18, 2008
Such materials could have limitless applications if they could be made to superconduct at room temperature. Hudson's team is focusing on the state of matter ...
Beyond Cold: How the World Works at -459 Degrees
LiveScience.com, NY - Jul 17, 2008
Physicists don't know how to accomplish this, because we don?t understand much about how high-temperature superconductors work. We can't even use our most ...

DailyTech
Researchers Take a Peek Into Superconductivity
DailyTech, IL - Jul 15, 2008
It may take years or decades to discover or engineer a room temperature superconducting material. It's possible that it may never happen at all simply due ...
New Superconductors Present Both Mysteries, Possibilities
Johns Hopkins Gazette, MD - Jun 23, 2008
... superconductors disclose a new physics, contain new mysteries and may start us along an uncharted pathway to room temperature superconductivity," said ...
Scientists sneak peek under the veil of superconductivity
HULIQ (press release), NC - Jul 12, 2008
If scientists and engineers ever harness this phenomenon at or near room temperature in a practical way, untold billions could be saved on energy costs. ...
Ron Paul Interviews, CNBC and FOX Business [videos]
Nation Builder, CO - Jul 16, 2008
... 80 cents of every dollar on energy costs. Self-sustainability and room temperature superconductors will be the end of banks and their notes as we know it.
Challenges of the Twenty-first Century: Bangladesh economy
The Daily Star, Bangladesh - Jul 14, 2008
... devise materials (at room temperatures) whose electrical resistance could be brought to zero (High Temperature Superconductivity) xviii. to understand ...
Executive Summary Update
RenewableEnergyWorld.com, NH - Jul 5, 2008
Ultraconductors are the commercial equivalent of a room temperature superconductor. They result from more than twenty years of published, peer reviewed, ...
Source: Google News

Superconductivity at 39 K in magnesium diboride -
J Nagamatsu, N Nakagawa, T Muranaka, Y Zenitani, J … - Nature, 2001 - palgrave-journals.com
... to be the highest yet determined for a non-copper-oxide bulk superconductor. ... 1 shows
a typical X-ray diffraction pattern of MgB 2 taken at room temperature. ...

… at room temperature in quenched YBa 2 Cu 3 O 6.41 Local oxygen ordering and superconductivity -
JD Jorgensen, S Pei, P Lightfoor, H Shi, AP … - Physica C, 1990 - adsabs.harvard.edu
Title: Time-dependent structural phenomena at room temperature in quenched YBa
2 Cu 3 O 6.41 Local oxygen ordering and superconductivity. ...

Room-temperature structure of the 90-K bulk superconductor YBa_ {2} Cu_ {3} O_ {8-x} -
Y LePage, WR McKinnon, JM Tarascon, LH Greene, GW … - Physical Review B, 1987 - APS
Room-temperature structure of the 90-K bulk superconductor YBa 2 Cu 3 O
8- x. Y. LePage Division of Chemistry, National Research ...

Bulk superconductivity at an elevated temperature (T_ {c}? 12 K) in a nickel containing alloy … -
R Nagarajan, C Mazumdar, Z Hossain, SK Dhar, KV … - Physical Review Letters, 1994 - APS
... 6. Room temperature powder x-ray diffraction pat- terns of the material with ... of
YNi4BCO.2. This recon- firms the bulk nature of superconductivity in YNi4BC0.2 ...

Superconductivity above 130 K in the Hg-Ba-Ca-Cu-O system -
A Schilling, M Cantoni, JD GUO, HR OTT - Nature 363, 1993 - nature.com
... Schilling et al. in 1993, although the dream of achieving room-temperature
superconductivity has yet to be fulfilled. Nature 363, 56 ...
-

Plutonium-based superconductivity with a transition temperature above 18 K -
JL Sarrao, L Morales - Nature, 2002 - palgrave-journals.com
... would be of technological importance for applied superconductivity if the ... that the
resulting material is tetragonal with room-temperature lattice constants a ...

… ,. kappa.-(ET) 2Cu [N (CN) 2] Br, with the highest transition temperature yet observed (inductive …
AM Kini, U Geiser, HH Wang, KD Carlson, JM … - Inorganic Chemistry, 1990 - pubs.acs.org
... resistive onset = 12.5 K), which represents a new high for an organic superconductor. ...
line spectrum with a peak- to-peak line width at room temperature in the ...

Plasmons and high-temperature superconductivity in alloys of copper oxides -
J Ruvalds - Physical Review B, 1987 - APS
... 2 Superconducting features at even higher tempera- tures have been reported in The
New York Times, and the quest for a room-temperature superconductor has been ...

Possible highT c superconductivity in the Ba- La- Cu- O system -
JG Bednorz, KA M?ller - Zeitschrift f?r Physik B Condensed Matter, 1986 - Springer
... Upon cooling from room temperature, the latter ex- hibit a nearly linear ... a logarithmic
type of increase, before undergoing the transition to superconductivity. ...

… pressure on the orthorhombic-tetragonal transition in the high-temperature superconductor YBa_ {2} … -
ED Specht, CJ Sparks, AG Dhere, J Brynestad, OB … - Physical Review B, 1988 - APS
... 3-8 Since high- temperature superconductivity is commonly associated with structural ...
measure- ments have established an orthorhombic room-tem- perature ...

Source: Google Scholar

Room temperature superconductivity

One step closer to the Holy Grail of physics

Scientists at the University of Cambridge have for the first time identified a key component to unravelling the mystery of room temperature superconductivity, according to a paper published in today's edition of the scientific journal Nature.

The quest for room temperature superconductivity has gripped physics researchers since they saw the possibility more than two decades ago. Materials that could potentially transport electricity with zero loss (resistance) at room temperature hold vast potential; some of the possible applications include a magnetically levitated superfast train, efficient magnetic resonance imaging (MRI), lossless power generators, transformers, and transmission lines, powerful supercomputers, etc.

Unfortunately, scientists have been unable to decipher how copper oxide materials superconduct at extremely cold temperatures (such as that of liquid nitrogen), much less design materials that can superconduct at higher temperatures.

Materials that are known to superconduct at the highest temperatures are, unexpectedly, ceramic insulators that behave as magnets before 'doping' (the method of introducing impurities to a semiconductor to modify its electrical properties). Upon doping charge carriers (holes or electrons) into these parent magnetic insulators, they mysteriously begin to superconduct, i.e. the doped carriers form pairs that carry electricity without loss.

The essential conundrum facing researchers in this area has been: how does a magnet that cannot transport electricity transform into a superconductor that is a perfect conductor of electricity? The Cambridge team have made a significant advance in answering this question.

The researchers have discovered where the charge 'hole' carriers that play a significant role in the superconductivity originate within the electronic structure of copper-oxide superconductors. These findings are particularly important for the next step of deciphering the glue that binds the holes together and determining what enables them to superconduct.

Dr Suchitra E. Sebastian, lead author of the study, commented, "An experimental difficulty in the past has been accessing the underlying microscopics of the system once it begins to superconduct. Superconductivity throws a manner of 'veil' over the system, hiding its inner workings from experimental probes. A major advance has been our use of high magnetic fields, which punch holes through the superconducting shroud, known as vortices - regions where superconductivity is destroyed, through which the underlying electronic structure can be probed.

"We have successfully unearthed for the first time in a high temperature superconductor the location in the electronic structure where 'pockets' of doped hole carriers aggregate. Our experiments have thus made an important advance toward understanding how superconducting pairs form out of these hole pockets."

By determining exactly where the doped holes aggregate in the electronic structure of these superconductors, the researchers have been able to advance understanding in two vital areas:

(1) A direct probe revealing the location and size of pockets of holes is an essential step to determining how these particles stick together to superconduct.

(2) Their experiments have successfully accessed the region betwixt magnetism and superconductivity: when the superconducting veil is partially lifted, their experiments suggest the existence of underlying magnetism which shapes the hole pockets. Interplay between magnetism and superconductivity is therefore indicated - leading to the next question to be addressed.

Do these forms of order compete, with magnetism appearing in the vortex regions where superconductivity is killed, as they suggest? Or do they complement each other by some more intricate mechanism? One possibility they suggest for the coexistence of two very different physical phenomena is that the non-superconducting vortex cores may behave in concert, exhibiting collective magnetism while the rest of the material superconducts.

###

Notes to editors:

1. The paper 'A multi-component Fermi surface in the vortex state of an underdoped high-Tc superconductor' will be published in the 09 July edition of Nature.

2. The research was funded by the Engineering and Physical Sciences Research Council (EPSRC). EPSRC is the UK's main agency for funding research in engineering and the physical sciences. The EPSRC invests around ?800 million a year in research and postgraduate training, to help the nation handle the next generation of technological change. The areas covered range from information technology to structural engineering, and mathematics to materials science. This research forms the basis for future economic development in the UK and improvements for everyone's health, lifestyle and culture. EPSRC also actively promotes public awareness of science and engineering. EPSRC works alongside other Research Councils with responsibility for other areas of research. The Research Councils work collectively on issues of common concern via Research Councils UK. Website address for more information on EPSRC: www.epsrc.ac.uk/


 

 
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