Mostrando postagens com marcador Superconductivity. Mostrar todas as postagens
Mostrando postagens com marcador Superconductivity. Mostrar todas as postagens

segunda-feira, 22 de junho de 2015

Discovery paves way for new superconducting electronics

 

 

Mon, 06/22/2015 - 12:15pm

Kim McDonald, University of California, San Diego

 

The physicists used a helium ion beam to create an atomic scale Josephson junction (shown in the inset) in a crystal of Yttrium Barium Copper Oxide. Image: Shane Cybert, UC San Diego

The physicists used a helium ion beam to create an atomic scale Josephson junction (shown in the inset) in a crystal of Yttrium Barium Copper Oxide.  San Diego (UC San Diego) have developed a new way to control the transport of electrical currents through high-temperature superconductors—materials discovered nearly 30 years ago that lose all resistance to electricity at commercially attainable low temperatures.

Their achievement, detailed in two separate scientific publications, paves the way for the development of sophisticated electronic devices capable of allowing scientists or clinicians to non-invasively measure the tiny magnetic fields in the heart or brain, and improve satellite communications.

“We believe this new approach will have a significant and far-reaching impact in medicine, physics, materials science and satellite communications,” said Robert Dynes, a professor of physics and former Chancellor of UC San Diego. “It will enable the development of a new generation of superconducting electronics covering a wide spectrum, ranging from highly sensitive magnetometers for biomagnetic measurements of the human body to large-scale arrays for wideband satellite communications. In basic science, it is hoped it will contribute to the unravelling of the mysteries of unconventional superconductors and could play a major role in new technologies, such as quantum information science.”

The research team headed by Dynes and Cybart, summarized its achievements in Applied Physics Letters. Another paper outlining the initial discovery was published online in Nature Nanotechnology.

The developments breathe new life into the promise of electronics constructed from ceramic materials that become superconducting—that is, lose all resistance to electricity—at temperatures that can be easily achieved in the laboratory with liquid nitrogen, which boils at 77 K or 77 degrees above absolute zero.

Physicists first discovered high-temperature superconductivity in a copper-oxide materials in 1986, setting off an intense effort to develop new kinds of electronics and other devices with this new material.

“Scientists and engineers worked with fervor to develop these new exciting materials, but soon discovered that they were much more complicated and difficult to work with than imagined,” said Dynes. “These new materials demanded novel device architectures that proved very difficult to realize.”

The UC San Diego physicists found a way to control electrical transport through these materials by building a device within the superconducting material called a “Josephson junction,” analogous in function to the transistor in semiconductor electronics. It’s composed of two superconducting electrodes separated by about one nanometer or a billionth of a meter.

“Circuits built from Josephson junctions called Superconducting QUantum Interference Devices (SQUIDS), are used for detectors of extremely small magnetic fields, more than 10 billion times smaller than that of Earth,” said Dynes. “One major drawback to these earlier devices is the low temperatures required for their operation, typically just 4 degrees above absolute zero. This requires intricate and costly cooling systems.”

“Nearly three decades have passed since the discovery of the first high-temperature superconductor and progress in constructing electronic devices using these materials has been very slow because process control at the sub-10-nm scale is required to make high quality Josephson junctions out of these materials,” he explained.

The UC San Diego physicists teamed up with Carl Zeiss Microscopy in Peabody, Massachusetts, which has a facility capable of generating highly focused beams of helium ions, to experiment with an approach they believed might avoid previous problems.

“Using the Zeiss Orion’s finely focused helium beam, we irradiated and hence disordered a nanoscale region of the superconductor to create what is called a ‘quantum mechanical tunnel barrier’ and were able to write Josephson circuits directly into a thin film of the oxide superconductor,” said Shane Cybart, a physicist in Dynes’ laboratory who played a key role in the discoveries.. “Using this direct-write method we eliminated the lithographic processing and offered the promise of a straightforward pathway to quantum mechanical circuits operating at more practical temperatures.”

“The key to this method is that these oxide superconductors are very sensitive to the point defects in the crystal lattice caused by the ion beam. Increasing irradiation levels has the effect of increasing resistivity and reducing the superconducting transition temperature,” said Cybart. “At very high irradiation levels the superconductor becomes insulating and no longer conducts or superconducts. This allows us to use the small helium beam to write these tunnel junctions directly into the material.”

The Nature Nanotechnology paper describes the development of the basic Josephson junction, while the Applied Physics Letters paper describes the development of the magnetic field sensor built from two junctions.

The UC San Diego physicists, who filed a patent application to license their discovery, are now collaborating with medical researchers to apply their work to the development of devices that can non-invasively measure the tiny magnetic fields generated within the brain, in order to study brain disorders such as autism and epilepsy in children.

“In the communications field, we are developing wide bandwidth high data throughput satellite communications,” said Cybart. “In basic science, we are using this technology to study ceramic superconducting materials to help determine the physics governing their operation which could lead to improved materials working at even higher temperatures.”

Source: Univ. of California, San Diego

terça-feira, 28 de abril de 2015

When mediated by superconductivity, light pushes matter million times more

 

 

Resultado de imagem para Superconductor - images

Tue, 04/28/2015

University of Jyväskylä

When a mirror reflects light, it experiences a slight push. This radiation pressure can be increased considerably with the help of a small superconducting island. This was revealed by the joint research done in the Aalto University and the Universities of Jyväskylä and Oulu. The finding paves a way for the studies of mechanical oscillations at the level of a single photon, the quantum of light. The results of the research were published in Nature Communications in April 2015.

In our everyday lives, the effects of the radiation pressure of light can be neglected. Your furniture is not moved over even though the light, or more generally the electromagnetic radiation, emitted by your lamps bounces off from its surfaces thus creating a radiation pressure force. An ordinary 100 Watt light-bulb causes a radiation pressure that is only a trillionth (one part to 1000000000000) of the normal atmospheric pressure. Nevertheless, in space the relevance of the phenomenon becomes apparent: because of the radiation pressure the tails of comets typically point away from the Sun. Radiation pressure has also been proposed as the propulsion for the solar sails.

In the recent years, the radiation pressure has been harnessed also in the field of laser physics. It can be used to couple the electromagnetic laser field to, for example, the movement of the small mechanical oscillators that can be found inside ordinary watches. Due to the weakness of the interaction, one typically needs substantially strong laser fields.

  • Radiation pressure physics in these systems have become measurable only when the oscillator is hit by millions of photons, explains theorist Jani Tuorila from the University of Oulu.
  • In the work reported here, the researchers combine their knowledge on experimental and theoretical physics, and show how the strength of the radiation pressure coupling can be considerably increased. They placed a superconducting island in between the electromagnetic field and the oscillator to mediate the interaction.
  • In the measurements, we exploited the Josephson coupling of the superconducting junctions, especially its nonlinear character, explains Juha Pirkkalainen from Aalto University, the post-doctoral researcher who conducted the measurements.
  • The researchers were able to alter the radiation pressure coupling significantly.
  • With the superconducting island, the radiation pressure increased a millionfold the value we had previously achieved, reports the supervisor of the experimental group, Professor Mika Sillanpää from Aalto University.
  • Because of the increased radiation pressure coupling, the oscillator observes the electromagnetic field with the precision of a single photon. Correspondingly, the oscillators reveal themselves to the field with the resolution of a single quantum of oscillations, a phonon.
  • Such strong coupling allows, in principle, the measurement of quantum information from an oscillator nearly visible to the naked eye, explains Professor Tero Heikkilä from the University of Jyväskylä who was in charge of the theoretical studies.
  • The research enables the observation of quantum phenomena in larger structures than before. Thus, it allows studying the validity of the quantum mechanical laws in large structures.
  • Some claim that the theory holds only with very small particles. Nevertheless, the existence of an upper limit for the validity region has not been found—yet.

The research was conducted within the Academy of Finland Center of Excellence on Low Temperature Quantum Phenomena and Devices and it got also support by the European Research Council.

Source: University of Jyväskylä