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How life could arise from molecules

Complex systems exhibit emergent properties due to water's unique polarity, enabling DNA to store information and proteins to adopt specific structures. This order forms the basis for complex molecules to develop unpredictable properties, driving the evolution of life.

SourceGoethe University Frankfurt·JournalAngewandte Chemie International Edition·TypeData/statistical analysis·DateMay 5, 2026

Experimental discovery of a new critical point in water

Researchers at Stockholm University have found a new critical point in supercooled water at around -63 °C and 1000 atmosphere. This discovery explains the unusual properties of water, such as its density and viscosity responding to pressure and temperature changes in ways that are opposite to other liquids.

SourceStockholm University·JournalScience·TypeExperimental study·DateMar 26, 2026

How do planets get wet? Experiments show water creation during planet formation process

Experimental tests demonstrate that interactions between magma oceans and primitive atmospheres during early years can produce significant amounts of water. This process has major implications for the physical and chemical properties of planets' interiors, with potential effects on core development and atmospheric composition.

SourceCarnegie Institution for Science·JournalNature·TypeExperimental study·DateOct 30, 2025

Solving an 80-year-old mystery: the crystal structure of a tetra-n-butylammonium bromide hydrate found with synchrotron radiation

Researchers have solved the crystal structure of tetra-n-butylammonium bromide hydrate (TBAB) hydrate, a semiclathrate hydrate used in air conditioning. The unique tetragonal superstructure explains its heat storage characteristics and provides new design principles for hydrate-based functional materials.

SourceYokohama National University·JournalCrystal Growth & Design·DateJul 18, 2025

Creating ice layer by layer: the secret mechanisms of ice formation revealed

Researchers from the Institute of Industrial Science, The University of Tokyo, used molecular-scale simulations to understand ice formation. They found that the arrangement of water molecules in the two layers closest to the surface is crucial for nucleation, promoting a low-dimensional hexagonal crystal lattice at the surface.

SourceInstitute of Industrial Science, The University of Tokyo·JournalJournal of Colloid and Interface Science·DateJun 4, 2025

A new take on the abilities of hydrogen binding energy for use in single atom catalysts

A new study emphasizes the importance of pushing metal site design limits to optimize hydrogen evolution reaction in single atom catalysts. Researchers found that hydrogen binding energy calculation can serve as a good predictor of activity, and neighboring nitrogen atoms can host catalytic activity to negate poisoning effects.

SourceAdvanced Institute for Materials Research (AIMR), Tohoku University·JournalAngewandte Chemie International Edition·DateApr 17, 2025

Uncovering the hidden cost of water splitting

A Northwestern University study reveals that water molecules flip before releasing oxygen atoms, significantly increasing energy consumption. Increasing pH levels of water reduces this energy cost, making water splitting a more practical and cost-effective process.

SourceNorthwestern University·JournalNature Communications·TypeExperimental study·DateApr 15, 2025

Accelerating the proton transfer among electrolyte-electrode interface via regulating the interfacial hydrogen bond networks induced by extra catalytic centers

Researchers developed a strategy to regulate hydrogen bond networks at electrolyte-electrode interfaces, accelerating proton transfer in CO2 reduction reactions. The approach involves introducing extra catalytic centers, such as cubic phase molybdenum carbide, to enhance water dissociation and facilitate proton generation.

SourceScience China Press·JournalNational Science Review·TypeExperimental study·DateMar 21, 2025

Structure of supercritical water decoded

Scientists at Ruhr University Bochum have shed light on the structure of supercritical water, finding that water molecules form few hydrogen bonds in this state. The research reveals that water behaves like a gas, with short-lived molecular interactions between hydrogen and oxygen atoms.

SourceRuhr-University Bochum·JournalScience Advances·DateMar 17, 2025

The two faces of liquid water

Scientists from the University of California San Diego have discovered that liquid water separates into two distinct phases under certain conditions, one high-density and one low-density. This finding reveals a unique property of water and has potential applications in fields such as water desalination and pollutant capture.

SourceUniversity of California - San Diego·JournalNature Physics·TypeComputational simulation/modeling·DateMar 10, 2025

Electrochemical field key to how dementia precursors ‘break bad’

A study by Washington University in St. Louis researchers has found a critical role for the physical interfaces of amyloid beta peptides in determining their chemical dynamics, leading to neurodegeneration. The research identified small molecules capable of breaking the toxic feedback loop, providing evidence that proper nutrition may ...

SourceWashington University in St. Louis·JournalJournal of the American Chemical Society·DateFeb 26, 2025

Membrane-targeted push-pull azobenzenes for the optical modulation of membrane potential

Researchers developed push-pull azobenzenes that interact with the lipid bilayer and induce light-dependent membrane potential changes. The molecules' ability to partition into membranes and undergo isomerization allows for precise modulation of surface charge, enabling non-invasive cell stimulation.

Exotic observations with neutrons at the ILL

The study reveals three distinct phases: liquid, solid, and plastic ice, with the latter exhibiting picosecond rotational motion. The implementation of state-of-the-art spectrometers and sample environments enabled the first experimental observation of plastic ice VII at high temperatures and pressures.

SourceInstitut Laue-Langevin·JournalNature·TypeExperimental study·DateFeb 12, 2025

Optical control of phase and group velocities in everyday liquids

Scientists have discovered a way to turn ordinary liquids into epsilon-near-zero (ENZ) materials by interacting them with intense femtosecond laser pulses. This creates a new class of materials with tunable light propagation properties, opening up possibilities for advances in optical sensing and communication.

SourceMax Born Institute for Nonlinear Optics and Short Pulse Spectroscopy (MBI)·JournalPhysical Review Letters·TypeExperimental study·DateFeb 6, 2025

Fighting microplastics for a cleaner future

Researchers at Texas A&M University have developed a method to break down condensation polymers in plastics using solvents and liquid organic hydrogen carriers, producing aromatic compounds that can be used as fuels. This breakthrough has potential implications for the sustainability of the chemical industry and reducing global warming.

SourceTexas A&M University·JournalAngewandte Chemie International Edition·DateNov 11, 2024

Pusan National University researchers develop fast-responding colorimetric sensor with expanded color gamut for real-time monitoring

Researchers at Pusan National University developed a fast-responding colorimetric sensor with an expanded color gamut, capable of detecting humidity and other environmental changes in real-time. The sensor outperforms previous designs with a wide color representation and rapid responsiveness.

SourcePusan National University·JournalOptica·TypeExperimental study·DateOct 17, 2024

A breakthrough in chiral capsule tools for advanced optical technologies

Researchers at Institute of Science Tokyo create terpene-based chiral capsules that facilitate the easy preparation of well-defined host–guest composites with tunable chiroptical properties. The resulting composites can be used in water without organic solvents, paving the way for advances in cutting-edge optical technologies.

SourceInstitute of Science Tokyo·JournalJournal of the American Chemical Society·TypeExperimental study·DateOct 2, 2024

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

Planets contain more water than thought

Researchers found that as planet mass increases, water tends to integrate with the iron core, leading to a reevaluation of astronomical observation data and planetary habitability. This discovery has significant implications for the study of Super-Earths and the search for life beyond Earth.

SourceETH Zurich·JournalNature Astronomy·DateAug 20, 2024

Study identifies highly soluble molecules with superior antioxidant benefits for cells

Researchers have identified two highly soluble molecules with superior antioxidant benefits for cells, which could help prevent and manage certain degenerative diseases by maintaining lower levels of harmful free radicals. The study suggests that these molecules can transfer and accumulate in membranes, reducing the risk of cell damage.

SourceUniversidad Miguel Hernandez de Elche·JournalFree Radical Biology and Medicine·TypeComputational simulation/modeling·DateJul 2, 2024

Super-chilled brain cell molecules reveal how epilepsy drug works

Scientists at Johns Hopkins Medicine have discovered the mechanism of action of the widely-used epilepsy drug perampanel, which targets the AMPA receptor to dampen brain cell excitability. The study provides new insights into the potential applications of perampanel in treating other neurological conditions such as Alzheimer’s disease,...

SourceJohns Hopkins Medicine·JournalNature Structural & Molecular Biology·DateJun 10, 2024

Alkyl-aromatic hybrid micelles formed from emergent umbrella-shaped molecules

Researchers at Tokyo Institute of Technology have developed alkyl-aromatic hybrid micelles that exhibit high stability in water and excellent host functions towards aromatic guests. The new amphiphiles feature a linear alkyl-chain flanked by two aromatic panels, forming an alkyl core surrounded by an aromatic shell.

SourceTokyo Institute of Technology·JournalAngewandte Chemie International Edition·TypeExperimental study·DateMay 20, 2024

How light can vaporize water without the need for heat

MIT researchers demonstrate that light can break water molecules away from the surface and float them into the air, causing evaporation in the absence of heat. This phenomenon has significant implications for understanding cloud formation and precipitation, as well as designing new industrial processes such as solar-powered desalination.

SourceMassachusetts Institute of Technology·JournalProceedings of the National Academy of Sciences·DateApr 24, 2024

Researchers realize hydrogen formation by contact electrification of water microdroplets and its regulation

A research group at Dalian Institute of Chemical Physics has realized hydrogen formation by contact electrification at oil-water microdroplet interfaces. The study found that charge separation between microdroplets can lead to hydrogenation reactions, and the researchers proposed a mechanism involving contact electrification and charge...

SourceDalian Institute of Chemical Physics, Chinese Academy Sciences·JournalJournal of the American Chemical Society·TypeCommentary/editorial·DateApr 18, 2024

Juno spacecraft measures oxygen production on Jupiter’s moon, Europa

The Juno spacecraft has directly measured charged oxygen and hydrogen molecules from Europa's atmosphere, providing key constraints on the potential oxygenation of its subsurface ocean. The findings suggest that oxygen is continuously produced in the surface ice shell, with an estimated 12 kg per second, which could support habitability.

SourceSouthwest Research Institute·JournalNature Astronomy·TypeObservational study·DateMar 5, 2024