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Vienna University of Technology


Curved spacetime in a quantum simulator

Researchers have developed a quantum simulator to study curved spacetime, demonstrating phenomena such as gravitational lensing effects in atomic clouds. This new tool provides a deeper understanding of the connection between relativity and quantum theory.

SourceVienna University of Technology·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateMay 17, 2023

Better superconductors with palladium

Researchers have found a material, palladium, that is optimally suited for creating superconductors with high transition temperatures. This discovery has the potential to revolutionize electricity generation and transportation by enabling materials to conduct electricity without loss at normal room temperature and atmospheric pressure.

SourceVienna University of Technology·JournalPhysical Review Letters·TypeExperimental study·DateApr 24, 2023

The quantum spin liquid that isn't one

A team of researchers at Vienna University of Technology and Toho University in Japan investigated the electrical resistance of κ-(BEDT-TTF)2Cu2(CN)3 as a function of temperature and pressure. They found that the material exhibits properties similar to those of helium-3, contradicting the theory of a quantum spin liquid.

SourceVienna University of Technology·JournalNature Communications·TypeExperimental study·DateApr 18, 2023

The glyphosate filter

Researchers have developed a new class of materials that can efficiently remove glyphosate from groundwater. The new metal-organic frameworks (MOFs) have a large surface area and can be customized depending on the application.

SourceVienna University of Technology·JournalAdvanced Functional Materials·DateApr 12, 2023

From greenhouse gas to value-added product

Vienna University of Technology researchers have developed MOCHAs, organometallic chalcogenolate compounds that facilitate the conversion of CO2 into synthesis gas. This process can be carried out at room temperature and requires less energy than previous methods, making it a promising solution for climate protection.

SourceVienna University of Technology·JournalCommunications Chemistry·DateApr 11, 2023

Absolute zero in the quantum computer

Researchers at TU Wien develop a quantum version of the third law of thermodynamics, finding that absolute zero is theoretically attainable but requires infinite energy, time, or complexity. This breakthrough reconciles quantum physics with thermodynamics, paving the way for the development of practical quantum computers.

SourceVienna University of Technology·JournalPRX Quantum·DateApr 4, 2023

Highly charged ions melt nano gold nuggets

Scientists at TU Wien have developed a technique to control the shape and size of nano gold structures using highly charged ions. The experiment shows that the impact force is not the decisive factor, but rather the electrical charge of the ions, which deposits energy at the point of impact and disrupts the crystal structure of the gold.

SourceVienna University of Technology·JournalSmall·TypeExperimental study·DateMar 28, 2023

A motion freezer for many particles

A team from TU Wien has developed a method to cool several particles simultaneously by adapting the spatial structure of a laser beam to particle motion. The technique uses far-field wavefront shaping to optimize cooling and can be achieved without knowing the exact location or movement of the particles.

SourceVienna University of Technology·JournalPhysical Review Letters·DateFeb 28, 2023

Chaos on the nanometer scale

Researchers at TU Wien have detected clear indications of chaos in chemical reactions on nanometer-scale rhodium crystals, a phenomenon previously unseen in atomic scale systems. The coupling behavior can be controlled by changing the hydrogen concentration, leading to a transition from ordered to chaotic behavior.

SourceVienna University of Technology·JournalNature Communications·TypeExperimental study·DateFeb 27, 2023

The last mysteries of mica

Researchers at Vienna University of Technology have explained the distribution of potassium ions on mica surfaces using an atomic force microscope in ultra-high vacuum. The study reveals tiny patterns of ion arrangement, which could improve electronic circuit performance and make mica a suitable insulator for 2D materials.

SourceVienna University of Technology·JournalNature Communications·TypeExperimental study·DateJan 25, 2023

Chaos gives the quantum world a temperature

Computer simulations demonstrate that chaos plays a crucial role in the emergence of thermodynamic behavior from quantum theory. A quantum system with indistinguishable particles and a thermometer-like particle shows a temperature distribution consistent with Boltzmann's rules only when the system exhibits chaos.

SourceVienna University of Technology·JournalEntropy·TypeData/statistical analysis·DateDec 14, 2022

A quantum of an angle

Researchers at TU Wien have directly measured the fine structure constant using a thin film that rotates light polarisation, revealing an astonishing quantum jump related to this fundamental constant. This measurement provides new insights into the strength of electromagnetic interactions.

SourceVienna University of Technology·JournalApplied Physics Letters·TypeExperimental study·DateNov 21, 2022

The theory of micro-hairs

Researchers have developed a continuum theory of micro-hairs, allowing for the study of collective movements and fluid flows. The theory reveals that even random movement is unstable and leads to synchronisation, while perfect unison is also unstable, resulting in specific patterns of movement.

SourceVienna University of Technology·JournalProceedings of the National Academy of Sciences·TypeComputational simulation/modeling·DateNov 9, 2022

Topological materials become switchable

Researchers have successfully switched on and off topological states in a material, exploiting the interaction of electrons to manipulate their behavior. The discovery opens up new possibilities for technical applications, including quantum computers and sensor technology.

SourceVienna University of Technology·JournalNature Communications·TypeExperimental study·DateOct 11, 2022

Faster friction - less wear

At extremely high speeds, friction decreases wear due to uneven heat distribution on the surface. The outermost layer of metal is damaged while deeper regions remain intact. This effect has implications for high-speed applications such as E-mobility and aircraft.

SourceVienna University of Technology·JournalApplied Materials Today·TypeComputational simulation/modeling·DateSep 6, 2022

Recycling greenhouse gases

The TU Wien team has created a catalyst that can convert CO2 and methane into synthesis gas without the formation of carbon nanotubes. This approach, called dry reforming, has the potential to convert climate-damaging greenhouse gases into valuable products.

SourceVienna University of Technology·JournalApplied Catalysis·TypeExperimental study·DateSep 1, 2022

A perfect trap for light

A team of researchers from TU Wien and The Hebrew University of Jerusalem has developed a 'light trap' that absorbs light perfectly in thin layers. This method uses mirrors and lenses to steer the light beam into a circle and then superimpose it on itself, preventing the light from escaping.

SourceVienna University of Technology·JournalScience·TypeExperimental study·DateAug 25, 2022

The "electric pill"

Researchers at Vienna University of Technology have successfully stimulated the auricular vagus nerve to reduce inflammation in severe COVID-19 cases, using a novel closed-loop control system. The therapy, dubbed an 'electric pill', has shown promising results in reducing inflammation and promoting healing.

SourceVienna University of Technology·JournalFrontiers in Physiology·TypeExperimental study·DateAug 3, 2022

A molecule of light and matter

Researchers at Vienna University of Technology have measured the binding state of light and matter for the first time, creating an attractive force between ultracold atoms. This effect can be used to control and manipulate extreme temperatures and may also play a role in the formation of molecules in space.

SourceVienna University of Technology·JournalPhysical Review X·TypeExperimental study·DateAug 1, 2022

A quantum wave in two crystals

A team of scientists has successfully built a neutron interferometer using two separate crystals, a major breakthrough in quantum physics. This achievement opens up new possibilities for quantum measurements and research on quantum effects in a gravitational field.

SourceVienna University of Technology·JournalJournal of Applied Crystallography·TypeExperimental study·DateJul 18, 2022

Waves in the maze of no return

Researchers at TU Wien and the University of Rennes have created a method to calculate tailor-made anti-reflective structures that can be used to reduce wave reflections in various mediums. This technology has potential applications in improving wireless reception, imaging techniques, and even future mobile communications.

SourceVienna University of Technology·JournalNature·TypeComputational simulation/modeling·DateJul 14, 2022

A four-stroke engine for atoms

Scientists have found a new phenomenon where an atomic switch has to be switched back and forth four times to return to its original state. The spin of gadolinium atoms performs one full rotation during this process. This discovery opens up possibilities for material physics and could potentially be used to store information.

SourceVienna University of Technology·JournalNature·TypeExperimental study·DateJul 6, 2022

Thermoelectrics: From heat to electricity

Scientists have discovered a way to optimize thermoelectric properties in one material by exploiting the Anderson transition, where electrons move freely, enabling efficient energy conversion. This breakthrough could lead to improved performance in thermoelectric devices and applications, such as power generation and waste heat recovery.

SourceVienna University of Technology·JournalNature Communications·TypeExperimental study·DateJun 23, 2022

Controlling cells with a laser beam

Researchers at TU Wien develop a method to guide individual cells with laser precision, enabling reproducible production of artificial tissue and testing new drugs without animal testing. The technique involves adding special molecules to hydrogel surrounding cells, which become softer and more permeable when activated by a laser beam.

SourceVienna University of Technology·JournalScientific Reports·TypeExperimental study·DateMay 30, 2022

The platinum riddle

Researchers have solved a long-standing puzzle in surface physics, explaining how individual atoms of a catalyst capture molecules to transform them. The breakthrough reveals that both the catalyst and its anchor material assume energetically unfavorable states for a short time to facilitate the reaction.

SourceVienna University of Technology·JournalScience Advances·TypeExperimental study·DateApr 4, 2022

Quantum physics sets a speed limit to electronics

Researchers investigated the shortest possible time scale of optoelectronic phenomena and found that it cannot be increased beyond one petahertz. The experiments used ultra-short laser pulses to create free charge carriers in materials, which were then moved by a second pulse to generate an electric current.

SourceVienna University of Technology·JournalNature Communications·TypeComputational simulation/modeling·DateMar 25, 2022

Donuts and laser beams

Topologists have successfully applied their tools to lasers, enabling the creation of a laser beam whose energies follow a topologically non-trivial loop. This property leads to unique amplification patterns in the light emitted by the laser.

SourceVienna University of Technology·JournalScience·TypeComputational simulation/modeling·DateFeb 28, 2022

2D material in three dimensions

Scientists at Vienna University of Technology have successfully integrated large surface areas of graphene into limited volumes by producing it on complex branched nanostructures. This breakthrough enables increased storage capacity for hydrogen and higher sensitivity in chemical sensors.

SourceVienna University of Technology·JournalCarbon·TypeExperimental study·DateJan 31, 2022

Studying the big bang with artificial intelligence

Scientists at Vienna University of Technology have developed a new type of neural network that can accurately simulate the quark-gluon plasma, a state of matter present in the early universe. The networks use gauge invariant convolutional neural networks to recognize patterns and predict properties of the plasma.

SourceVienna University of Technology·JournalPhysical Review Letters·TypeComputational simulation/modeling·DateJan 25, 2022

Terahertz radiation source: Compact and simple

A novel, simple, and extremely compact terahertz radiation source has been developed at TU Wien, enabling high intensities and small size. The technology uses resonant-tunnelling diodes and can be used in various applications such as material testing, airport security control, radio astronomy, and chemical sensors.

SourceVienna University of Technology·JournalApplied Physics Letters·TypeExperimental study·DateJan 11, 2022

Science fiction revisited: Ramjet propulsion

Calculations at TU Wien show that Ramjet propulsion, which involves capturing protons and using them for a nuclear fusion reactor, cannot work as proposed. The analysis revealed huge dimensions required to achieve even minimal thrust, making it impossible for current technology to achieve.

SourceVienna University of Technology·JournalActa Astronautica·TypeData/statistical analysis·DateDec 20, 2021

Daylight causes road damage

Researchers at Vienna University of Technology have discovered that visible light, particularly in the blue and green range, accelerates the oxidation of bitumen, leading to cracking and damage to asphalt. This unexpected finding highlights the importance of considering solar radiation in estimates for road durability.

SourceVienna University of Technology·JournalConstruction and Building Materials·TypeExperimental study·DateDec 15, 2021