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Researchers make discovery hafnium oxide is antiferroelectric, and could power modern electronics

A team of researchers from the University of Nebraska-Lincoln has discovered that hafnium oxide is inherently antiferroelectric, a rare quality found in few materials. This breakthrough could lead to the development of high-performance capacitors, solid-state cooling systems, and more efficient computer memory.

SourceUniversity of Nebraska-Lincoln·JournalScience·TypeExperimental study·DateSep 25, 2026

Chemists overturn 40-year assumption about a key class of superconductor

Researchers used 3D imaging to explore cuprate superconductors, finding a patchwork of different crystal structures throughout their bulk, with boundaries hundreds of times wider than expected. This discovery may explain why some materials perform better than others and requires reinterpretation of existing bulk measurements.

SourceUniversity of Warwick·JournalPhysical Review Letters·TypeExperimental study·DateSep 17, 2026

Carefully controlled sulfidation boosts supercapacitor electrode performance

Carefully controlled sulfidation boosts supercapacitor electrode performance by guiding distinct structural phases and revealing a heterojunction composition that delivers enhanced energy storage. NCF-S95 achieves high specific capacity and cycle stability, showing promise for next-generation supercapacitor materials.

SourceShenyang Agricultural University Collaborative Journals·JournalEnergy & Environment Nexus·TypeNews article·DateAug 14, 2026

IEEE study highlights how micro-transfer printing can lead to advanced silicon photonics

A new study highlights micro-transfer printing as a promising approach for realizing heterogeneous integration in silicon photonics. The technique combines benefits of die-level assembly with wafer-scale processing, enabling seamless co-integration of diverse material systems onto large-area platforms.

SourceInstitute of Electrical and Electronics Engineers·JournalJournal of Lightwave Technology·TypeLiterature review·DateJul 20, 2026

Bacterial cellulose offers a sustainable path for high-performance energy storage, highlights Hasanuddin University study

Researchers analyzed 49 journal articles on bacterial cellulose-derived carbon electrodes for supercapacitors, finding that preservation of the nanofiber network and mechanical properties are crucial for performance. The study highlights BCC's potential to outperform commercial activated carbon under comparable conditions.

SourceHasanuddin University·JournalJournal of Energy Storage·TypeSystematic review·DateJul 16, 2026

Scientists unveil technique to build ultra-thin material stacks that promise quantum breakthrough

Researchers unveiled a technique to build ultra-clean 2D heterostructures using muscovite crystals, eliminating microscopic residues that disrupt electronic device performance. This method enables precise stacking of atomic layers, leading to new properties and potential breakthroughs in quantum computing and nanoelectronics.

SourceUniversity of Southampton·JournalNature Communications·TypeExperimental study·DateJul 14, 2026

"Semiconductors enter the era of skyscrapers": Stacking chips like high-rise buildings to boost performance

Researchers developed a technology to stack ultrathin semiconductor chips with improved integration density, overcoming challenges of chip thickness and warpage. The process enables the reliable stacking of over ten chips, potentially leading to significant improvements in AI semiconductor performance.

SourcePohang University of Science & Technology (POSTECH)·JournalResults in Engineering·DateJul 7, 2026

Development of high-performance, air- and thermally-stable tin perovskite transistors through volatile surface coordination

A research team at Pohang University of Science & Technology has developed a next-generation semiconductor with enhanced performance and stability. The breakthrough solution, called 'Volatile Surface Reconstruction,' converts unreacted tin ions into a volatile compound that volatilizes, while creating a self-protective layer to shield ...

“Flawless on the outside, flipped within”: Detecting hidden defects in 2D dielectrics with light

Researchers developed an interferometric second-harmonic generation imaging approach to identify antiparallel domains and detect hidden structural defects in hBN thin films. The study finds that SHG intensity is closely associated with differences in crystal orientation and destructive interference between domains.

Semiconductors enter the “multi-tasking” era: New device cuts required components by 75% and quadruples processing speed

Researchers developed a transistor technology that enables a single device to perform multiple circuit functions simultaneously, simplifying circuit design and increasing data processing speed. The new approach reduces required transistors by 75% and increases data processing speed fourfold.

SourcePohang University of Science & Technology (POSTECH)·JournalAdvanced Functional Materials·DateJun 5, 2026

Toward power-generating displays: a single device that harvests and emits light

Researchers have developed a single device that can harvest light and emit bright visible light, achieving high efficiency in both power conversion and electroluminescence. The device uses a novel organic semiconductor material with controlled energy flow, enabling it to operate at standard lithium-ion battery voltages.

SourceInstitute of Science Tokyo·JournalAdvanced Materials·TypeExperimental study·DateMay 21, 2026

"Breaking the limits of OLED: Postech achieves low-votage freely color tunable ultra-pure laser emission"

A research team at Postech has developed a next-generation laser emission platform capable of precise color control under battery-level low voltage. The technology achieves ultra-high color purity and continuous spectral tunability within a single device, overcoming limitations of conventional display light sources.

SourcePohang University of Science & Technology (POSTECH)·JournalLaser & Photonics Review·DateMay 12, 2026

Printed oxygen "highways" shatter the 2D transistor speed limit

A research team has successfully removed the primary obstacle to post-silicon computing by creating a record-breaking electronic connection for atomic-thin materials. The new GaOx layer enables 'hybrid tunnelling' mechanism, reducing contact resistance and allowing transistors to operate at much lower voltages without sacrificing speed.

SourceInternational Journal of Extreme Manufacturing·JournalInternational Journal of Extreme Manufacturing·DateMay 8, 2026

Inspired by the brain, researchers build smarter, more efficient computer hardware

University of Missouri researchers develop organic transistors that process information like biological neural networks, boosting brain-like computing and potentially leading to more energy-efficient artificial intelligence. The approach could lead to significant improvements in tasks such as pattern recognition and decision-making.

SourceUniversity of Missouri-Columbia·JournalACS Applied Electronic Materials·DateMay 7, 2026

In search of the room temperature superconductor: international team formulates research agenda

An international team of researchers calls for a coordinated effort to find room temperature superconductors, which could revolutionize technology and everyday life. The team proposes a strategy to systematically search for materials and manipulate their properties using advanced techniques.

SourceGraz University of Technology·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateMar 9, 2026

Ultrathin ferroelectric capacitors for next-generation memory devices

Researchers from Japan successfully downscaled a total ferroelectric memory capacitor stack to just 30 nm, maintaining high remanent polarization and paving the way for compact and efficient on-chip memory. This breakthrough demonstrates compatibility with semiconductor devices and paves the way for future technologies.

SourceInstitute of Science Tokyo·JournalAdvanced Electronic Materials·TypeExperimental study·DateJan 5, 2026

Magnetic control of lithium enables a safe, explosion-free ‘dream battery’

A new hybrid anode technology has been developed that delivers higher energy storage while reducing thermal runaway and explosion risks. The 'magneto-conversion' strategy applies an external magnetic field to ferromagnetic manganese ferrite conversion-type anodes, promoting uniform lithium ion transport and preventing dendrite formation.

SourcePohang University of Science & Technology (POSTECH)·JournalEnergy & Environmental Science·DateDec 21, 2025

Super strain-resistant superconductors

A new study from Kyoto University has identified a one-component superconducting state in strontium ruthenate, defying earlier predictions. The researchers developed a technique to apply shear strain to extremely thin crystals, finding that it had virtually no effect on the superconducting temperature.

SourceKyoto University·JournalNature Communications·TypeExperimental study·DateDec 17, 2025

Transforming acoustic waves with a chip

Researchers have developed a new acoustic wave-producing technology on an electronic chip, enabling customizable curved waves for trapping objects, routing wave information, and transporting fluids. This innovation has significant potential in medical applications, such as noninvasive surgery and biosensors.

SourceVirginia Tech·JournalNature Communications·DateDec 8, 2025

MIT physicists observe key evidence of unconventional superconductivity in magic-angle graphene

Researchers have discovered new evidence of unconventional superconductivity in magic-angle twisted tri-layer graphene, a material that exhibits exotic electronic behavior. The team found that the material's superconducting gap looks very different from typical superconductors, suggesting a unique mechanism for its emergence.

Concentration‑controlled doping turns a p‑type polymer into its n‑type counterpart

A South Korean research team has discovered a molecular-level mechanism to switch the charge polarity of organic polymer semiconductors by adjusting the concentration of a single dopant. This enables polymers to exhibit both p-type and n-type characteristics, eliminating the need for separate materials or complex device architectures.

NYU Tandon-led team develops new fabrication technique that opens door to new materials for quantum technologies

A new fabrication approach enables the exploration of a broader range of superconducting materials for quantum hardware. The study validates this approach using niobium and demonstrates comparable performance to state-of-the-art devices made with conventional chemistry-based methods.

SourceNYU Tandon School of Engineering·JournalApplied Physics Letters·TypeExperimental study·DateSep 3, 2025

From passive to intelligent: Bioengineered organs meet electronics

Recent advances in biofabrication and biomedical electronics have led to the development of biohybrid-engineered tissue (BHET) platforms, turning passive constructs into intelligent systems. These platforms show promise in diverse applications, including brain organoids and cardiac tissues, blurring the line between biology and machine.

SourcePohang University of Science & Technology (POSTECH)·JournalTrends in Biotechnology·DateJul 17, 2025

Unveiling the mystery of electron dynamics in the 'quantum tunneling barrier' for the first time

Researchers successfully confirmed long-standing 'electron tunneling' phenomenon, revealing surprising interactions between electrons and atomic nuclei during tunneling. The study's findings have significant implications for advanced technologies like semiconductors, quantum computers, and ultrafast lasers.

SourcePohang University of Science & Technology (POSTECH)·JournalPhysical Review Letters·DateJul 16, 2025

Exploring scalable pathways for cost-effective memristors using solution-processed 2D materials

The article discusses the use of solution-processed 2D materials to fabricate memristors, offering a scalable alternative to traditional methods. Recent breakthroughs have overcome manufacturing limitations, producing larger and less-damaged nanosheets with improved device performance.

SourceInternational Journal of Extreme Manufacturing·JournalInternational Journal of Extreme Manufacturing·DateJul 2, 2025

Bulking up for solar power

Researchers at Kyoto University have created a new artificial heterostructure device that mimics broken spatial and time-reversal symmetry, enabling new bulk photovoltaic effects. The device shows promise for next-generation solar cells with improved efficiency and multifunctionality.

SourceKyoto University·JournalNature Communications·TypeExperimental study·DateJun 22, 2025