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Enantioresolution turns bright but racemic gold-silver clusters into circularly polarized emitters

Researchers successfully created circularly polarized emitters from racemic gold-silver clusters by separating them into mirror-image forms using chiral oxygen-donor ligands. The phosphate-protected enantiomer pair exhibited high photoluminescence quantum yields and luminescence dissymmetry factors.

SourceNational Institutes of Natural Sciences·JournalAdvanced Optical Materials·TypeExperimental study·DateSep 28, 2026

Why does life prefer one “hand” over the other? New study points to electron spin

Researchers found that electron spin interacts differently with mirror-image molecules, causing small but meaningful differences in behavior during dynamic processes. This asymmetry could lead to the dominance of a single 'hand' in biology, offering a possible route toward understanding how one molecular form came to dominate.

SourceThe Hebrew University of Jerusalem·JournalScience Advances·TypeExperimental study·DateApr 22, 2026

Mirror fragments intercept Alzheimer’s-causing protein

Researchers from Kobe University have designed a small mirror protein that disables amyloid-beta, a causal factor of Alzheimer's disease. The approach uses the principle of 'chirality' to bind to the protein, inhibiting its aggregation and potential for brain cell damage.

SourceKobe University·JournalChemistry - A European Journal·TypeExperimental study·DateMar 31, 2026

Organic solvents enable handedness control in inorganic crystals

Researchers have developed a simple crystallization method that achieves chiral resolution under mild conditions, enabling the production of homochiral inorganic crystals. The study uses organic solvents and an achiral crystalline phase to control the growth environment, resulting in single-handed forms of cesium copper chloride.

SourceKumamoto University·JournalCrystal Growth & Design·TypeExperimental study·DateJan 15, 2026

Scientists synthesize isotopic atropisomers based on carbon isotope discrimination

Researchers successfully synthesized isotopic atropisomers based on carbon isotope discrimination, exhibiting high rotational stability and stereochemical purity. The findings hold promise for fundamental understanding of isotopic atropisomers with implications in organic and medicinal chemistry.

SourceShibaura Institute of Technology·JournalThe Journal of Organic Chemistry·TypeExperimental study·DateJul 6, 2023

A novel green photoreactor for the synthesis of desirable chiral enantiomers

A team of Japanese researchers has successfully developed a recycling photoreactor that enables the synthesis of optically pure compounds with high yields, achieving an optical purity of 98-99%. The system uses a two-step rapid photoracemization process and can produce enantiomerically pure chiral sulfoxides in yields higher than 80%.

SourceTokyo University of Science·JournalThe Journal of Organic Chemistry·TypeExperimental study·DateJun 6, 2023

Making it easier to differentiate mirror-image molecules

Researchers from PSI, EPFL, and the University of Geneva developed a new method to distinguish between mirror-image molecules using helical dichroism. This approach provides stronger signals compared to circular dichroism (CD), which is widely used but has weak signals suitable only for gas-phase samples.

SourcePaul Scherrer Institute·JournalNature Photonics·TypeExperimental study·DateJul 5, 2022

Controlling mirror images

Researchers have developed a method to control the rotational states of chiral molecules, allowing for specific separation of enantiomers. By irradiating chiral molecules with UV radiation and microwaves, the team has gained more control over which 'hand' is in which state.

SourceFritz Haber Institute of the Max Planck Society·JournalPhysical Review Letters·TypeExperimental study·DateApr 29, 2022

The fastest one wins

A team at the Indian Institute of Science developed a catalytic version of the Fischer indole synthesis that primarily produces one enantiomer. The reaction involves a dynamic kinetic resolution mechanism with a chiral catalyst, resulting in moderate yields and good to excellent enantiomeric selectivity.

SourceWiley·JournalAngewandte Chemie International Edition·DateApr 8, 2021

Let there be...a new light

Researchers have synthesized a new type of chiral light that can tell right- and left-handed molecules apart. This innovative light interacts differently with each type of molecule, allowing for precise control over chemical reactions and potential applications in drug development.

SourceForschungsverbund Berlin·JournalNature Photonics·DateOct 28, 2019

The vanished mirror image

A team from the Technical University of Munich has achieved photochemical deracemization of chiral compounds, converting a mixture into a single enantiomer with high concentrations up to 97 percent. This method saves time and energy by utilizing all molecules in the process.

Hybrid catalyst with high enantiomer selectivity

Researchers at Hokkaido University have developed a hybrid catalyst that combines simple rhodium and organic catalysts to selectively produce molecules with high enantiomer selectivity. This technology is expected to assist in rapid and low-cost drug synthesis, particularly for nucleotide medicine.

SourceHokkaido University·JournalNature Catalysis·DateAug 9, 2018

DeuteRx's novel approach to chiral switching for racemic drugs

DeuteRx has discovered a method for in vivo stabilization and differentiation of thalidomide analogs, improving anti-inflammatory and antitumorigenic properties. The company's 'deuterium-enabled chiral switching' platform enables the testing and development of single enantiomers with improved therapeutic properties.

SourceMacDougall Biomedical Communications, Inc.·JournalProceedings of the National Academy of Sciences·DateMar 9, 2015

A faster track to the tools that track disease

Researchers at Princeton University have developed a faster method to create 18F radiotracers, which are used to detect and track certain diseases in patients. The new method avoids harsh conditions that scramble the placement of chemical bonds, resulting in improved efficiency and accuracy.

SourcePrinceton University·JournalJournal of the American Chemical Society·DateMay 21, 2014

Flexible rack systems sort molecules

A new method has been developed to separate enantiomers, which are pairs of molecules with a mirror-inverted structure. The method uses porous molecular organic frameworks (MOFs) to sort molecules, allowing for rapid and efficient separation of enantiomers in pharmaceutical production.

SourceHelmholtz Association·JournalAngewandte Chemie International Edition·DateNov 10, 2011

Enzyme design with remote effects

Chemists at Max Planck Institute develop enzyme that converts diverse molecules enantioselectively, producing desired biological activity. By modifying amino acids distant from the reaction site, they create an optimized catalyst with improved efficiency and selectivity.

SourceMax-Planck-Gesellschaft·JournalProceedings of the National Academy of Sciences·DateFeb 15, 2010

New chemistry approach promises less expensive drugs

A team of Princeton University chemists has discovered a new method to synthesize molecules without toxic catalysts, reducing the risk of hazardous barriers in drug development. This breakthrough opens up new possibilities for working with ketones and aldehydes, potentially leading to more efficient synthesis of beneficial enantiomers.

SourcePrinceton University·JournalScience·DateMar 29, 2007