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Building bridges in physics

Researchers from Osaka University have discovered a connection between strain equations for atomic dislocations and the Biot-Savart law in electromagnetism. This link enables researchers to use a well-known formula to analyze the effects of dislocations, leading to new findings on material science.

SourceOsaka University·JournalRoyal Society Open Science·TypeComputational simulation/modeling·DateMar 5, 2025

New transactions of nonferrous metals society of china study uncovers low-temperature deformation mechanism of pure titanium

Researchers investigate grain size and temperature effects on Ti deformation at extremely low temperatures, finding that cryogenic temperatures trigger deformation twinning, boosting strength and ductility. The study proposes a modified Hall-Petch relationship to explain strengthening mechanisms at cryogenic temperatures.

SourceCactus Communications·JournalTransactions of Nonferrous Metals Society of China·TypeExperimental study·DateJan 10, 2024

Groundbreaking study shows defects spreading through diamond faster than the speed of sound

A groundbreaking study reveals that linear defects in diamond can spread at speeds exceeding the speed of sound, which could impact our understanding of material strength, failure, and manufacturing. This discovery may lead to new insights into earthquake ruptures, structural failures, and precision manufacturing.

SourceDOE/SLAC National Accelerator Laboratory·JournalScience·TypeExperimental study·DateOct 5, 2023

Orbital angular momentum boosts multiplexed holography

Researchers have implemented Orbital Angular Momentum (OAM) as an independent information carrier for optical holography, leading to OAM multiplexed holography. The new design approach, MHC-OAM, uses spatial light modulators to achieve multiramp helical conical beams with different parameters serving as information encryption or decryp...

SourceSPIE--International Society for Optics and Photonics·JournalAdvanced Photonics Nexus·DateJul 5, 2023

University of Toronto Engineering researchers are using electric fields to control the movement of defects in crystals

Researchers from University of Toronto Engineering, Dalhousie University, Iowa State University, and Peking University have successfully controlled the motion of dislocation in a single-crystalline zinc sulfide using an external electric field. This discovery has significant implications for improving the properties and manufacturing p...

Exotic water ice contributes to understanding of magnetic anomalies on Neptune and Uranus

Researchers used density functional theory to investigate the mechanical properties of superionic ice XVIII, which is thought to make up a large part of Neptune and Uranus. The study found that dislocations in the crystal lattice produce shear, leading to macroscopic deformations and potentially influencing the planets' magnetic fields.

SourceFundação de Amparo à Pesquisa do Estado de São Paulo·JournalProceedings of the National Academy of Sciences·DateJan 20, 2023

A joint effort to improve shoulder surgery

A joint effort by Pitt bioengineer and orthopaedic surgeon aims to improve surgical outcomes for capsular injuries, potentially leading to a more effective treatment. The study uses quantitative techniques to measure injury magnitude and location, with the goal of reducing failure rates and improving patient recovery.

Advancing multiprincipal alloys

Researchers have developed a way to predict the properties of multiprincipal element alloys (MPEAs), which exhibit unique combinations of strength, ductility, and damage tolerance. The team used electron microscopy and atomistic simulations to unveil the mechanistic origins of desirable properties in MPEAs.

Tiny price gaps cost investors billions

Research from UVM and MITRE shows that near-light-speed differences in stock prices create opportunities for latency arbitrage, costing investors at least $2 billion annually. High-frequency traders exploit faster information systems to buy stocks at better prices and sell them quickly, resulting in significant profits.

SourceUniversity of Vermont·JournalPLOS ONE·DateJan 22, 2020

On the rebound

Palladium nanoparticles have been shown to repair atomic dislocations in their crystal structure after experiencing intense strain. Researchers discovered that these nanoparticles function like the human body healing from an injury, allowing them to mend and regain their original state.

SourceDOE/Argonne National Laboratory·JournalNature Communications·DateJan 19, 2018

A breakthrough in the study of how things break, bend and deform

Researchers at Drexel University have made a breakthrough in the study of how things break, bend and deform. They discovered that layered materials form internal buckles, or ripples, as they deform under stress, dubbed 'ripplocation'. This new paradigm explains non-linear elastic behavior within the constraints of dislocation theory.

SourceDrexel University·JournalScientific Reports·DateOct 4, 2016

From brittle to plastic in 1 breath

Researchers at Rice University have found ways to make 2D molybdenum disulfide exhibit superplasticity by manipulating its gas environment, allowing it to deform without breaking. This breakthrough opens the possibility of tailoring the plastic properties of these materials for specific applications.

SourceRice University·JournalNano Letters·DateMay 4, 2015

Towards controlled dislocations

A group of scientists from the US used atomic-resolution Z-contrast imaging and X-ray spectroscopy to analyze two types of dislocations in CdTe, a binary II-VI semiconductor. The study could lead to improved conversion efficiency in CdTe solar cells and advance understanding of crystal structure defects.

SourceInternational Union of Crystallography·JournalActa Crystallographica Section A·DateOct 20, 2014

Nano magnets arise at 2-D boundaries

Researchers at Rice University discovered that imperfections in two-dimensional materials can create nanoscale magnetic fields. The study suggests a new degree of freedom for electronics, allowing for enhanced efficiency and enriched functions.

SourceRice University·JournalACS Nano·DateNov 14, 2013