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Watch water form out of thin air

For the first time, researchers have witnessed nanosized water bubbles forming in real time using a novel method that enables atomic precision. The breakthrough discovery has significant implications for practical applications, such as rapid water generation in deep space environments without extreme conditions.

SourceNorthwestern University·JournalProceedings of the National Academy of Sciences·DateSep 30, 2024

Transition-metal-free zeolite catalyst for direct conversion of methane to methanol

Researchers have discovered a novel transition-metal-free aluminosilicate ferrierite zeolite catalyst that enables direct conversion of methane to methanol. The new process achieves 305 π mol gˑ minǘ methanol production rate with high selectivity, presenting an environmentally friendly solution for converting greenhouse gases into valu...

SourceTokyo Institute of Technology·JournalJournal of the American Chemical Society·DateJun 3, 2024

Bridging the gap: From frequent molecular changes to observable phenomena

A Japanese research team has developed a framework that accurately describes how first-order reactions appear depending on the time interval used to measure the reaction. The work uses a 'shutter speed' analogy to simplify complex molecular changes, allowing for precise predictions of reaction outcomes.

SourceInstitute for Chemical Reaction Design and Discovery (ICReDD)·JournalProceedings of the National Academy of Sciences·TypeData/statistical analysis·DateMay 15, 2024

Exploring interface phenomena for more durable and effective nickel–tungsten alloys

Scientists studied the nickel-tungsten alloy interface to understand its properties and behavior. The research revealed the formation of intermetallic compounds and diffusion-induced recrystallization regions, which significantly impact the material's mechanical, thermal, and chemical properties.

SourceTokyo Institute of Technology·JournalJournal of Alloys and Compounds·TypeExperimental study·DateMay 14, 2024

Study sheds light on how Earth cycles fossil carbon

Researchers use rhenium as a proxy for carbon to quantify the rate of fossil carbon dioxide release into the atmosphere. The study found that high rates of carbon breakdown persist from mountaintop to floodplain, offering valuable insights into the planet's history and response to climate challenges.

SourceRice University·JournalProceedings of the National Academy of Sciences·DateNov 14, 2023

New study unveils direct synthesis of FCMs via solid-state mechanochemical reaction between graphite and PTFE

Researchers developed a novel solid-state mechanochemical reaction to synthesize FCMs from PTFE and graphite, producing materials with enhanced storage capacity and electrochemical stability. The new method bypasses toxic reagents and offers a safer alternative for practical applications.

SourceUlsan National Institute of Science and Technology(UNIST)·JournalAdvanced Functional Materials·DateSep 22, 2023

State medical cannabis laws not associated with reduced use of opioid or nonopioid pain treatments

A study of commercially insured adults with chronic noncancer pain found that state medical cannabis laws did not lead to a reduction in the use of opioid or nonopioid pain treatments. The researchers also suggested slow implementation and reluctance among healthcare leaders may have contributed to these findings.

SourceAmerican College of Physicians·JournalAnnals of Internal Medicine·TypeData/statistical analysis·DateJul 3, 2023

Birch reduction simplified to a one-minute mechanochemical process

Researchers at Hokkaido University have developed a simplified Birch reduction method that avoids liquid ammonia and can be carried out in ambient air, making it faster and more eco-friendly. The mechanochemical approach uses a ball mill to break through the surface layer on lithium metal, enabling the Birch reduction to proceed.

SourceHokkaido University·JournalAngewandte Chemie International Edition·TypeExperimental study·DateApr 7, 2023

Study quantifies global impact of electricity in dust storms on Mars

Researchers find that electrical discharge in Martian dust storms could be a major driving force of the planet's chlorine cycle. The study reveals high yields of chlorine gases from common chlorides when electrified by Martian conditions, indicating a promising pathway for converting surface chlorides to atmospheric phases.

SourceWashington University in St. Louis·JournalGeophysical Research Letters·TypeExperimental study·DateFeb 16, 2023

Scientists improve the equation in FDA guidance predicting drug interactions

Researchers have improved the FDA's equation for predicting drug interactions by addressing fundamental limitations and incorporating new models. The modified equation has shown a significantly increased accuracy of about 80%, which is expected to contribute to increasing the success rate of new drug development.

SourceInstitute for Basic Science·JournalClinical Pharmacology & Therapeutics·TypeComputational simulation/modeling·DateJan 12, 2023

Theoretical prediction of reverse intersystem crossing for organic semiconductors

Researchers developed a prediction method for reverse intersystem crossing (RISC) in organic semiconductors, leading to improved light emission efficiency for Organic Light-Emitting Diodes (OLEDs). The method demonstrated accurate predictions for various TADF materials, with some presenting RISC rate constants of over 10^7 per second.

SourceJapan Science and Technology Agency·JournalNature Communications·DateSep 8, 2020

High reaction rates even without precious metals

Scientists at Ruhr-University Bochum have developed nanocatalysts made from cobalt iron oxide that achieve high reaction rates in oxygen generation without the need for binders. The catalysts exhibit exceptional stability under extreme conditions, making them a promising alternative to expensive precious metal catalysts.

Accelerated chlorophyll reaction in microdroplets to reveal secret of photosynthesis

Researchers found that chlorophyll demetallation reacts a thousand times faster in microdroplets without enzymes, suggesting a new mechanism for photosynthesis control. This discovery could lead to better understanding of photosynthesis and contribute to more efficient photosynthesis research.

SourceDGIST (Daegu Gyeongbuk Institute of Science and Technology)·JournalQuarterly Reviews of Biophysics·DateFeb 13, 2017

Forged in the hearts of stars

A team from ASU and UNC aims to resolve uncertainties in the nuclear fusion process that creates elements forged by stars. They will investigate the range of elements produced by a star, including calcium and carbon, to determine their variation in output.

How electrodes charge and discharge

A team at MIT has figured out a way to measure the fundamental charge transfer rate in porous battery electrodes, revealing significant surprises. The study found that the Butler-Volmer equation is inaccurate, especially at higher voltage levels, and that electron transfer between two solids determines the rate.

SourceMassachusetts Institute of Technology·JournalNature Communications·DateApr 3, 2014

Better combustion through plasma

Researchers have discovered that introducing plasma to combustion reactions can sustain flames in conditions where they would normally be extinguished. This technology could significantly improve the efficiency of military jets, passenger planes, and unmanned drones by conserving fuel and extending flight times.

Atom By Atom Chemistry On A Catalytic Surface

Researchers at Fritz Haber Institute use scanning tunneling microscope to investigate CO oxidation reaction, revealing surface oxygen atoms and molecules form islands that separate into reactive species. The study determines reaction rates with island separation accounted for, consistent with previously measured values.

SourceMax-Planck-Gesellschaft·JournalScience·DateDec 12, 1997