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Polymers change structure to avert failure and keep elastomers tough

Scientists at The University of Osaka have created a multipath synergistic strategy to toughen elastomers by sequentially activating three energy dissipation pathways. This approach enhances the material's toughness while maintaining its elasticity, making it suitable for various applications such as tires, gloves, and adhesives.

SourceThe University of Osaka·JournalNature Communications·TypeExperimental study·DateJul 1, 2026

Atomically-tailored single atom platforms hold promise for next-generation catalysis

Researchers have developed a new approach to overcome limitations in single-atom catalysts by creating one-dimensional organic polymers capable of selectively binding metal atoms. The platform marks a major advance in single atom catalysis, enabling stronger gas binding compared to other structures.

SourceOkinawa Institute of Science and Technology (OIST) Graduate University·JournalNature Communications·TypeExperimental study·DateDec 3, 2025

In major materials breakthrough, UVA team solves a nearly 200-year-old challenge in polymers

Researchers at UVA have developed a new polymer design that decouples stiffness and stretchability, allowing materials to be both strong and flexible. The 'foldable bottlebrush polymer networks' can store extra length within their structure, enabling them to elongate up to 40 times more than standard polymers without weakening.

UVA engineers design lookalike drug carrier to evade lung’s lines of defense

Researchers at the University of Virginia School of Engineering and Applied Science have designed a drug-carrying molecule that can slip past the lung's natural defenses. The nanocarrier, called PEG-BB, is shaped like a bottlebrush and mimics the properties of mucus, allowing it to move quickly through the airway.

New carbon nitride membrane revolutionizes lithium extraction from salt lakes

Researchers developed a crystalline carbon nitride membrane that outperforms traditional polymer membranes in separating lithium ions from magnesium ions in salt-lake brine. The innovative design mimics biological ion channels, achieving an impressive selectivity ratio of 1,708 for highly dilute lithium ions.

SourceChinese Academy of Sciences Headquarters·JournalScience Advances·TypeExperimental study·DateJun 14, 2024

What fire ants can teach us about making better, self-healing materials

A Binghamton University professor investigates the adaptive response of fire ant rafts to mechanical load, discovering that they exhibit catch bond behavior under force, which enhances cohesion for survival. This phenomenon is being explored to develop artificial materials with autonomous self-strengthening properties.

SourceBinghamton University·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateMay 15, 2024

Enabling rapid screening of poly(2-oxazoline)-based nanomedicine through divergent synthesis; towards alternative mRNA-vaccines

Researchers developed a simple and efficient method for diversifying reactive end-groups on poly(2-oxazoline)s, enabling rapid exploration of poly(2-oxazoline)-based nanomedicine platforms. The approach was shown to produce POx-based lipid nanoparticles comparable in transfection capability to their PEGylated counterparts.

SourceInnovation Center of NanoMedicine·JournalAngewandte Chemie International Edition·TypeExperimental study·DateMay 6, 2024

Scientists solve chemical mystery at the interface of biology and technology

Researchers at the University of Washington have solved a long-standing chemical mystery in organic electrochemical transistors (OECTs), which allow current to flow in devices like implantable biosensors. The study reveals that OECTs turn on via a two-step process, causing a lag, and off through a simpler one-step process.

SourceUniversity of Washington·JournalNature Materials·TypeExperimental study·DateApr 30, 2024

New route to recyclable polymers from plants

Researchers have created a method to make fully recyclable polymers from plant cellulose, which can replace some plastics and reduce plastic pollution. The new polymers have various structures that offer different applications, including high-performance materials for optical, electronic, and biomedical uses.

SourceHokkaido University·JournalACS Macro Letters·TypeExperimental study·DateMar 20, 2024

Printed polymer allows researchers to explore chirality and spin interactions at room temperature

Researchers have developed a printable organic polymer that enables them to measure charge-to-spin conversion in spintronic materials at room temperature, revealing new insights into the mechanics of spintronics. The findings suggest longer spin lifetimes and tunability, paving the way for more efficient and energy-friendly devices.

SourceNorth Carolina State University·JournalNature Materials·TypeExperimental study·DateMar 15, 2024

Breakthrough in nanostructure technology for real-time color display

Researchers at UNIST have developed a groundbreaking technology that enables the real-time display of colors and shapes through changes in nanostructures. Utilizing block copolymers, they achieved the self-assembly of photonic crystal structures on a large scale, mimicking natural phenomena observed in butterfly wings and bird feathers.

BESSY II: Molecular orbitals determine stability

Researchers at BESSY II used RIXS and DFT simulations to analyze the electronic structures of fumarate, maleate, and succinate dianions. The study found that maleate is potentially less stable than fumarate and succinate due to its delocalized HOMO orbital, which can lead to weaker binding with molecules or ions.

SourceHelmholtz-Zentrum Berlin für Materialien und Energie·JournalPhysical Chemistry Chemical Physics·TypeExperimental study·DateFeb 7, 2024

Incheon National University-Harvard University joint research team improves fuel cell durability with fatigue-resistant membranes

Researchers created a polymer electrolyte membrane with an interpenetrating network that enhances fatigue resistance and prolongs the lifespan of fuel cells. The composite membrane exhibits a lifespan of 410 hours, compared to 242 hours for the original Nafion membrane.

SourceIncheon National University·JournalAdvanced Materials·TypeExperimental study·DateFeb 6, 2024

Researchers identify unexpected twist while developing new polymer-based semiconductors

Researchers at University of Illinois developed new semiconductor materials that can harness the power of chirality, a non-superimposable mirror image. The study found that subtle molecular changes can modulate chiral helical assemblies, leading to new optical, electronic, and mechanical properties.

SourceUniversity of Illinois at Urbana-Champaign, News Bureau·JournalACS Central Science·TypeExperimental study·DateNov 14, 2023

Reversible adhesive

A team of scientists at Newcastle University has created a novel, water-based adhesive system that can bond surfaces in the neutral pH range but can be detached again in strongly acidic or alkaline environments. The new adhesive exhibits high adhesion strength to difficult-to-bond polypropylene surfaces.

SourceWiley·JournalAngewandte Chemie International Edition·TypeExperimental study·DateNov 13, 2023

Making electric vehicles last

A new polymer binder is introduced to address durability issues in dual-ion batteries. The binder features azide and acrylate groups, which enhance the structural integrity of graphite during charge and discharge cycles. Dual-ion batteries equipped with this binder demonstrate exceptional performance, even after 3,500 recharge cycles.

New polymer membranes, AI predictions could dramatically reduce energy, water use in oil refining

Researchers at Georgia Tech have developed new polymer membranes that can improve distillation processes, reducing the global energy and water use. The DUCKY polymers use a novel combination of characteristics to selectively bind desirable molecules, making them a promising solution for industries.

SourceGeorgia Institute of Technology·JournalNature Materials·TypeExperimental study·DateOct 16, 2023