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Institute of Science Tokyo


Scalable and efficient quantum error correction for fault-tolerant quantum computing

Scientists develop novel LDPC quantum error correction codes that can handle hundreds of thousands of logical qubits and approach the theoretical hashing bound. The new codes achieve extremely high decoding performance, demonstrating a frame error rate as low as 10^-4, even for large-scale numerical simulations.

SourceInstitute of Science Tokyo·Journalnpj Quantum Information·TypeComputational simulation/modeling·DateSep 29, 2025

New non-volatile memory platform built with covalent organic frameworks

Researchers created a new material platform for non-volatile memories using covalent organic frameworks (COFs) and successfully installed electric-field-responsive dipolar rotors. The COFs' unique sln topology allows the rotors to flip without steric hindrance, enabling high thermal durability up to near 400°C.

SourceInstitute of Science Tokyo·JournalJournal of the American Chemical Society·TypeExperimental study·DateSep 5, 2025

How proteins bind to RNA: the dual mechanism of zinc fingers and disordered regions

Researchers discovered that disordered regions enhance specific RNA interactions in FUS protein-RNA complexes, revealing a breakthrough strategy for nucleic acid binding. The study suggests that intrinsically disordered regions actively contribute to the RNA-binding mechanism.

SourceInstitute of Science Tokyo·JournalJournal of Chemical Information and Modeling·TypeComputational simulation/modeling·DateAug 28, 2025

Insights into the role of PAD2-mediated histone citrullination in pancreatic cancer progression

A new study finds that PAD2-mediated histone citrullination promotes tumor cell proliferation in pancreatic ductal adenocarcinoma. Knocking down the PAD2 gene reduces cell growth and increases survival rates. The researchers identify PAD inhibitors as potential therapeutic targets for treating PDAC.

SourceInstitute of Science Tokyo·JournalMolecular Cancer Research·TypeExperimental study·DateAug 27, 2025

Exploring coordinated tissue growth in embryos based on control theory

Researchers from Japan and USA discover midline tissues use formation control to grow harmoniously, with the notochord leading elongation and adjacent tissues migrating together through fibroblast growth factor gradients and cell adhesion. Computer simulations confirm this mechanism is essential for synchronized tissue development.

SourceInstitute of Science Tokyo·JournalScience Advances·TypeExperimental study·DateAug 26, 2025

Boosting fuel cell efficiency with water vapor

Researchers at Institute of Science Tokyo found that exposure to water vapor enhances oxide-ion mobility by increasing interstitial oxygen ions, nearly doubling the oxide-ion conductivity at 500 °C. This breakthrough could advance the development of efficient and durable fuel cells for clean energy applications.

SourceInstitute of Science Tokyo·JournalJournal of Materials Chemistry A·TypeExperimental study·DateAug 11, 2025

Artificial intelligence accelerates the development of advanced heat-dissipating polymers

Researchers developed a machine learning model to predict liquid crystalline polyimides with high thermal conductivity, achieving 96% accuracy. The model identified six promising candidates, which demonstrated up to 1.26 W/mK thermal conductivities, accelerating the development of efficient thermal materials.

SourceInstitute of Science Tokyo·Journalnpj Computational Materials·TypeComputational simulation/modeling·DateAug 7, 2025

Revealing the secrets to good catalytic performance in metal sulfides

Researchers at Institute of Science Tokyo discovered that metal sulfides with seven to eight d electrons show superior catalytic activity. This volcano-shaped relationship provides guidelines for designing more effective catalysts, accelerating the development of efficient water-splitting catalysts for green hydrogen production.

SourceInstitute of Science Tokyo·JournalCatalysis Science & Technology·TypeExperimental study·DateJul 25, 2025

Glowing under pressure: Hinge-like mechanophores for smarter polymeric materials

Scientists create a new class of mechanochromic mechanophores that can detect and respond to mechanical stress in polymeric materials through fluorescence. The developed molecule exhibits excellent stress-sensing with high durability, offering a powerful tool for real-time monitoring of mechanical damage.

SourceInstitute of Science Tokyo·JournalAngewandte Chemie International Edition·TypeExperimental study·DateJul 23, 2025

Performance enhancement of terahertz communication devices achieved through mechanical tuning technology

The study successfully demonstrated impedance tuning of a 250 GHz waveguide transition, validating the effectiveness of mechanical tuning as a method to compensate for fabrication-induced performance variation. Terahertz frequencies above 100 GHz offer extremely wide bandwidths suitable for next-generation wireless communications.

SourceInstitute of Science Tokyo·JournalIEEE Access·TypeExperimental study·DateJul 14, 2025

Turning step-growth into chain-growth with click polymerization

Researchers developed a controlled 'living' click polymerization system to achieve well-defined polymers with narrow dispersity, enabling bidirectional synthesis of ABA-type block copolymers. The method leverages copper-catalyzed azide–alkyne cycloaddition and initiators to selectively drive monomer addition in a controlled manner.

SourceInstitute of Science Tokyo·JournalJournal of the American Chemical Society·TypeExperimental study·DateJul 9, 2025

Understanding the role of pigmentation in hereditary hearing loss

A study published in Neurobiology of Disease found that melanin degradation is impaired in genetically engineered mice lacking the SLC26A4 gene, leading to chronic inflammation and macrophage activation. The researchers propose a novel pathological cascade where melanin accumulation exacerbates hearing loss in pigmented individuals.

SourceInstitute of Science Tokyo·JournalNeurobiology of Disease·TypeExperimental study·DateJul 3, 2025