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Categories: Physics: Quantum Physics, Space: Cosmology

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Computer Science: Quantum Computers Physics: Quantum Computing Physics: Quantum Physics
Published

Sensing and controlling microscopic spin density in materials      (via sciencedaily.com) 

Researchers found a way to tune the spin density in diamond by applying an external laser or microwave beam. The finding could open new possibilities for advanced quantum devices.

Computer Science: Quantum Computers Physics: Quantum Computing Physics: Quantum Physics
Published

Quantum discovery: Materials can host D-wave effects with F-wave behaviors      (via sciencedaily.com) 

In a potential boon for quantum computing, physicists have shown that topologically protected quantum states can be entangled with other, highly manipulable quantum states in some electronic materials.

Physics: Quantum Physics
Published

Super Radar: Breakthrough radar research overcomes a nearly century-old trade-off between wavelength and distance resolution      (via sciencedaily.com) 

New interference radar functions improve the distance resolution between objects using radar waves. The results may have important ramifications in military, construction, archaeology, mineralogy and many other domains of radar applications. It addresses a nine decades-old problem that requires scientists and engineers to sacrifice detail and resolution for observation distance -- underwater, underground, and in the air.

Offbeat: Space Space: Astronomy Space: Astrophysics Space: Cosmology Space: Exploration Space: Structures and Features Space: The Solar System
Published

Gravitational arcs in 'El Gordo' galaxy cluster      (via sciencedaily.com) 

A new image of the galaxy cluster known as 'El Gordo' is revealing distant and dusty objects never seen before, and providing a bounty of fresh science. The infrared image displays a variety of unusual, distorted background galaxies that were only hinted at in previous Hubble Space Telescope images.

Physics: Quantum Physics
Published

Calculations reveal high-resolution view of quarks inside protons      (via sciencedaily.com) 

A collaboration of nuclear theorists has used supercomputers to predict the spatial distributions of charges, momentum, and other properties of 'up' and 'down' quarks within protons. The calculations show that the up quark is more symmetrically distributed and spread over a smaller distance than the down quark.

Physics: Optics Physics: Quantum Computing Physics: Quantum Physics
Published

Absence of universal topological signatures in high harmonic generation      (via sciencedaily.com) 

Theoreticians report that they found no evidence of any universal topological signatures after performing the first ab initio investigation of high harmonic generation from topological insulators.

Energy: Nuclear Physics: Quantum Computing Physics: Quantum Physics
Published

Nuclear spin's impact on biological processes uncovered      (via sciencedaily.com) 

Researchers have discovered that nuclear spin influences biological processes, challenging long-held beliefs. They found that certain isotopes behave differently in chiral environments, affecting oxygen dynamics and transport. This breakthrough could advance biotechnology, quantum biology, and NMR technology, with potential applications in isotope separation and medical imaging.

Computer Science: Quantum Computers Energy: Technology Offbeat: Computers and Math Physics: Quantum Computing Physics: Quantum Physics
Published

Scientists create novel approach to control energy waves in 4D      (via sciencedaily.com) 

Everyday life involves the three dimensions or 3D -- along an X, Y and Z axis, or up and down, left and right, and forward and back. But, in recent years scientists have explored a 'fourth dimension' (4D), or synthetic dimension, as an extension of our current physical reality.

Space: Astronomy Space: Astrophysics Space: Cosmology Space: Exploration Space: The Solar System
Published

New clues on the source of the universe's magnetic fields      (via sciencedaily.com) 

Researchers offer insight into the source of cosmic magnetic fields. The research team used models to show that magnetic fields may spontaneously arise in turbulent plasma. Their simulations showed that, in addition to generating new magnetic fields, the turbulence of those plasmas can also amplify magnetic fields once they've been generated, which helps explain how magnetic fields that originate on small scales can sometimes eventually reach to stretch across vast distances.

Computer Science: Quantum Computers Physics: Quantum Computing Physics: Quantum Physics
Published

When electrons slowly vanish during cooling      (via sciencedaily.com) 

Many substances change their properties when they are cooled below a certain critical temperature. Such a phase transition occurs, for example, when water freezes. However, in certain metals there are phase transitions that do not exist in the macrocosm. They arise because of the special laws of quantum mechanics that apply in the realm of nature's smallest building blocks. It is thought that the concept of electrons as carriers of quantized electric charge no longer applies near these exotic phase transitions. Researchers have now found a way to prove this directly. Their findings allow new insights into the exotic world of quantum physics.

Physics: Optics Physics: Quantum Physics
Published

New method improves proton acceleration with high power laser      (via sciencedaily.com) 

Bringing protons up to speed with strong laser pulses -- this still young concept promises many advantages over conventional accelerators. For instance, it seems possible to build much more compact facilities. Prototypes to date, however, in which laser pulses are fired at ultra-thin metal foils, show weaknesses -- especially in the frequency with which they can accelerate protons. An international working group has tested a new technique: In this approach, frozen hydrogen acts as a 'target' for the laser pulses.

Physics: Quantum Computing Physics: Quantum Physics
Published

How atomic nuclei vibrate      (via sciencedaily.com) 

Using ultra-high-precision laser spectroscopy on a simple molecule, a group of physicists has measured the wave-like vibration of atomic nuclei with an unprecedented level of precision. The physicists report that they can thus confirm the wave-like movement of nuclear material more precisely that ever before and that they have found no evidence of any deviation from the established force between atomic nuclei.

Engineering: Graphene Physics: Quantum Computing Physics: Quantum Physics
Published

Scientists caught Hofstadter's butterfly in one of the most ancient materials on Earth      (via sciencedaily.com) 

Researchers have revisited one of the most ancient materials on Earth -- graphite, and discovered new physics that has eluded the field for decades.

Computer Science: Quantum Computers Physics: Quantum Computing Physics: Quantum Physics
Published

A new type of quantum bit in semiconductor nanostructures      (via sciencedaily.com) 

Researchers have created a quantum superposition state in a semiconductor nanostructure that might serve as a basis for quantum computing. The trick: two optical laser pulses that act as a single terahertz laser pulse.

Energy: Technology Physics: Quantum Computing Physics: Quantum Physics
Published

'Quantum avalanche' explains how nonconductors turn into conductors      (via sciencedaily.com)     Original source 

The study takes a new approach to answer a long-standing mystery about insulator-to-metal transitions.

Biology: Microbiology Engineering: Nanotechnology Physics: Quantum Computing Physics: Quantum Physics
Published

Detection of bacteria and viruses with fluorescent nanotubes      (via sciencedaily.com) 

The new carbon nanotube sensor design resembles a molecular toolbox that can be used to quickly assemble sensors for a variety of purposes -- for instance for detecting bacteria and viruses.

Offbeat: Space Space: Astronomy Space: Astrophysics Space: Cosmology Space: Exploration Space: Structures and Features Space: The Solar System
Published

Galaxy J1135 reveals its water map      (via sciencedaily.com) 

Researchers look at water in galaxies, its distribution and in particular its changes of state from ice to vapor, as important markers indicating areas of increased energy, in which black holes and stars are formed. A new study has now revealed the distribution of water within the J1135 galaxy, which is 12 billion light years away and formed when the Universe was a 'teenager', 1.8 billion years after the Big Bang . This water map, with unprecedented resolution, is the first ever to be obtained for such a remote galaxy. The map can help scientists to understand the physical processes taking place within J1135 and shed light on the dynamics, still partially unclear, surrounding the formation of stars, black holes and galaxies themselves.

Offbeat: Computers and Math Physics: Quantum Computing Physics: Quantum Physics
Published

Unveiling the quantum dance: Experiments reveal nexus of vibrational and electronic dynamics      (via sciencedaily.com) 

Scientists have demonstrated experimentally a long-theorized relationship between electron and nuclear motion in molecules, which could lead to the design of materials for solar cells, electronic displays and other applications that can make use of this powerful quantum phenomenon.

Offbeat: Space Space: Astronomy Space: Astrophysics Space: Cosmology Space: Structures and Features
Published

The puzzle of the galaxy with no dark matter      (via sciencedaily.com) 

New research has found the first evidence of a massive galaxy with no dark matter. The result is a challenge to the current standard model of cosmology.

Offbeat: Space Space: Astronomy Space: Astrophysics Space: Cosmology Space: Exploration Space: The Solar System
Published

Giant swirling waves at edge of Jupiter's magnetosphere      (via sciencedaily.com) 

A team has found that NASA's Juno spacecraft orbiting Jupiter frequently encounters giant swirling waves at the boundary between the solar wind and Jupiter's magnetosphere. The waves are an important process for transferring energy and mass from the solar wind, a stream of charged particles emitted by the Sun, to planetary space environments.