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Quantum ‘alchemy’ made feasible with excitons

A team of researchers from OIST and Stanford University has demonstrated a powerful new alternative approach to Floquet engineering by showing that excitons can produce Floquet effects more efficiently than light. This breakthrough enables the creation of novel quantum devices and materials with significantly lower intensities.

SourceOkinawa Institute of Science and Technology (OIST) Graduate University·JournalNature Physics·TypeExperimental study·DateJan 19, 2026

Receive sunlight from front and back... DGIST successfully developed narrow band gap bifacial solar cells!

Researchers at DGIST successfully developed thin-film solar cells with a narrow band gap that can operate at low temperatures and achieve high efficiencies on transparent substrates. The technology enables the production of bifacial solar cells that can generate power from both front and back sides, increasing overall efficiency.

Light-powered breakthrough enables precision tuning of quantum dots

Researchers at NC State University have developed a new technique to tune the optical properties of quantum dots using light, reducing energy consumption and environmental impact. This method allows for precise control over the bandgap, enabling the creation of high-quality perovskite quantum dots for optoelectronic devices.

SourceNorth Carolina State University·JournalAdvanced Materials·TypeExperimental study·DateFeb 18, 2025

Hidden transport pathways in graphene confirmed, paving the way for next-generation device innovation

Researchers from Pohang University of Science & Technology confirm the existence of hidden transport pathways in graphene, which enables faster and more efficient data handling. The study sheds light on the 'Valley Hall Effect' and its role in nonlocal resistance, providing crucial insights for advancing valleytronics device design.

GIST researchers develop new defect passivation strategy for perovskite solar cells

A team of GIST researchers developed a new defect passivation strategy for polycrystalline perovskites, leading to improved power conversion efficiency and long-term operational stability. The strategy uses a chemically identical polytype of perovskite to suppress defects in the crystal structure.

SourceGIST (Gwangju Institute of Science and Technology)·JournalNature Communications·TypeExperimental study·DateSep 10, 2024

Novel machine learning-based cluster analysis method that leverages target material property

Researchers developed a novel clustering technique that considers both basic characteristics and target material properties, enabling the categorization of over 1,000 oxides into material groups. This approach uses machine learning to predict target properties and incorporates basic feature information into the analysis.

SourceTokyo Institute of Technology·JournalAdvanced Intelligent Systems·TypeExperimental study·DateAug 6, 2024

From defects to order: Spontaneously emerging crystal arrangements in perovskite halides

A new defect-ordered layered halide perovskite was discovered, shedding light on how order can emerge through defects in hybrid organic–inorganic compounds. The compound's optical bandgap increased with the concentration of ordered defects in the lattice, presenting a new strategy for tuning perovskite properties.

SourceTokyo Institute of Technology·JournalACS Materials Letters·TypeExperimental study·DateApr 17, 2024

Breakthrough in organic semiconductor synthesis paves the way for advanced electronic devices

Researchers at UNIST have achieved a significant breakthrough in organic semiconductor synthesis by synthesizing a novel molecule called BNBN anthracene. This derivative exhibits unique properties, including precise modulation of electronic properties without structural changes.

SourceUlsan National Institute of Science and Technology(UNIST)·JournalAngewandte Chemie International Edition·DateDec 29, 2023

Novel lateral data storage: Two-dimensional ferroelectric semiconductor memory with a bottom contact 100 nm channel using in-plane polarization

Researchers at Tokyo Institute of Technology have developed a novel ferroelectric semiconductor memory device with a 100 nm channel length, enabling high-density storage and seamless integration with existing semiconductor technologies. The device exhibits typical resistive switching, high on/off ratio, large memory window, and good re...

SourceTokyo Institute of Technology·JournalAdvanced Science·TypeExperimental study·DateAug 16, 2023

CityU unravels interfacial interactions of the lead-free perovskite for efficient hydrogen production

Researchers at City University of Hong Kong have developed a lead-free perovskite photocatalyst for highly efficient solar energy-to-hydrogen conversion. The study uncovers the interfacial dynamics between halide perovskite molecules and electrolytes, enabling better photoelectrochemical hydrogen generation.

SourceCity University of Hong Kong·JournalAdvanced Materials·TypeExperimental study·DateJan 13, 2023

Light-induced topological states

Researchers at the University of Tsukuba have created light-induced topological states in zinc arsenide, exhibiting unusual behavior where electrical currents flow along the surface. This work explores the possibility of creating topological semimetals and manifesting new physical properties by light control.

SourceUniversity of Tsukuba·JournalPhysical Review B·DateSep 12, 2022

Towards indoor lighting-powered thin-film, flexible solar cells with piezophototronics

Ritsumeikan University researchers create a novel thin-film flexible piezoelectric-photovoltaic device that can generate electricity from indoor lighting. The device's performance is improved through strain-induced polarization in the ZnMgO layer, increasing open-circuit voltage and overcoming charge recombination issues.

SourceRitsumeikan University·JournalNano Energy·TypeExperimental study·DateJun 8, 2022

Novel solar cell architecture performs well under real-world constraints

Researchers developed a hot-carrier multijunction solar cell that maintains high conversion efficiency with nonoptimal materials, expanding the scope of candidate designs. The novel architecture showed superior resilience to design imperfections, widening the range of suitable materials and operating conditions.

SourceSPIE--International Society for Optics and Photonics·JournalJournal of Photonics for Energy·DateJun 1, 2022

Synthesis of two-dimensional holey graphyne

Researchers have successfully synthesized a new type of carbon allotrope called holey graphyne, which has semiconductor properties and can be used in various applications. The material was created using a bottom-up approach and consists of alternately linked benzene rings and C≡C bonds.

SourceInstitute for Basic Science·JournalMatter·TypeExperimental study·DateMay 18, 2022

Making a ‘sandwich’ out of magnets and topological insulators, potential for lossless electronics

Researchers create a quantum anomalous Hall insulator by stacking a ferromagnetic material between two 2D topological insulators, enabling room-temperature lossless transport. The new architecture could lead to ultra-low energy future electronics or topological photovoltaics.

SourceARC Centre of Excellence in Future Low-Energy Electronics Technologies·JournalAdvanced Materials·TypeExperimental study·DateApr 2, 2022

Mobile excitons as neutral information carriers

Researchers have created and detected dispersing excitons in a metal using angle-resolved photoemission spectroscopy, a breakthrough that could enable efficient data transmission. The discovery of mobile excitons in TaSe3 reveals their mobility and potential to revolutionize electronics.

SourcePaul Scherrer Institute·JournalNature Materials·TypeExperimental study·DateFeb 21, 2022

Having your cake and eating it too: double-dosing induces magnetism while strengthening topological insulator

A University of Wollongong team has combined two doping elements to achieve new efficiencies in the topological insulator Bi2Se3. The resulting crystals show clear ferromagnetic ordering, a large band gap, high electronic mobility, and the opening of a surface state gap.

SourceARC Centre of Excellence in Future Low-Energy Electronics Technologies·JournalPhysical Review B·TypeExperimental study·DateNov 12, 2021