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Diamond owl swoops in with new method to keep electronics cool

Researchers at Rice University have developed a new method to grow patterned diamond surfaces that can decrease operating temperatures in electronics. This approach uses microwave plasma chemical vapor deposition to create ordered layers of diamond crystals on substrates, allowing for controlled seed placement and scalable growth.

SourceRice University·JournalApplied Physics Letters·TypeExperimental study·DateFeb 23, 2026

Cool satellites and flexible electronics

Researchers at Empa's Mechanics of Materials and Nanostructures laboratory are working to improve the insulation material used in satellites and space probes. They have developed a new intermediate layer that makes the material more elastic and resistant to cracks and flaking, enabling better superinsulation for future satellites.

SourceSwiss Federal Laboratories for Materials Science and Technology (Empa)·JournalAdvanced Functional Materials·TypeExperimental study·DateDec 16, 2025

Novel manufacturing technique for piezoelectric thin films

Empa researchers have developed a novel deposition process for piezoelectric thin films using HiPIMS, producing high-quality layers on insulating substrates at low temperatures. The technique overcomes the challenge of argon inclusions by timing the voltage application to accelerate desired ions.

SourceSwiss Federal Laboratories for Materials Science and Technology (EMPA)·JournalNature Communications·TypeExperimental study·DateJun 3, 2025

Better digital memories with the help of noble gases

Researchers at Linköping University have developed a new technology that adds xenon to digital memories, allowing for even material coating in small cavities. This breakthrough enables more information storage in the same physical size, with 4 terabytes possible in a memory card once holding only 64 megabytes.

SourceLinköping University·JournalNature Communications·DateJan 30, 2025

A new ultrathin conductor for nanoelectronics

Researchers at Stanford University have discovered a new class of conductors made from niobium phosphide that can conduct electricity better than copper in films as thin as a few atoms. This breakthrough could lead to more powerful and efficient electronics, reducing energy consumption and heat loss.

SourceStanford University·JournalScience·DateJan 8, 2025

New performance record for eco-friendly nanocrystal solar cells

ICFO researchers have reported on a post-deposition in situ passivation strategy that improves surface passivation, yielding nanocrystal ink films with enhanced optoelectronic properties. This approach has led to the development of ultrathin solar cells with higher power conversion efficiency than their multi-step deposition counterparts.

SourceICFO-The Institute of Photonic Sciences·JournalEnergy & Environmental Science·DateOct 24, 2024

Shedding light on perovskite hydrides using a new deposition technique

Researchers develop a new method to grow single-crystal perovskite hydrides, allowing for accurate measurement of intrinsic H- conductivity. The technique enables the production of high-quality crystals with minimal imperfections, paving the way for sustainable energy technologies and hydrogen storage applications.

SourceShibaura Institute of Technology·JournalACS Applied Energy Materials·TypeExperimental study·DateMay 16, 2024

Stretching metals at the atomic level allows researchers to create important materials for quantum, electronic, and spintronic applications

A University of Minnesota team creates high-quality metal oxide thin films from historically difficult-to-synthesize metals using a breakthrough method that stretches the metals at the atomic level. This innovation paves the way for scientists to develop better materials for various next-generation applications.

SourceUniversity of Minnesota·JournalNature Nanotechnology·TypeExperimental study·DateMay 22, 2023

Room-temperature, solid-state synthesis of high-quality Cs3Cu2I5 thin films

Researchers at Tokyo Institute of Technology have successfully synthesized high-quality Cs3Cu2I5 thin films using a novel solid-state synthesis method. The team discovered that depositing CuI and CsI layers in specific ratios results in distinct local structures containing point defects, leading to highly efficient emissions.

SourceTokyo Institute of Technology·JournalJournal of the American Chemical Society·TypeExperimental study·DateMay 19, 2023

Review and outlook of atomic layer deposition for nanoscale oxide semiconductor thin film transistor

The article reviews the outlook of atomic layer deposition (ALD) based oxide semiconductor thin film transistors (TFTs), highlighting four benefits: in-situ composition control, vertical structure engineering, chemical reaction and film properties, and insulator and interface engineering. Despite these advantages, challenging issues re...

SourceInternational Journal of Extreme Manufacturing·JournalInternational Journal of Extreme Manufacturing·DateFeb 20, 2023

Scientists fabricate high-performance large-area perovskite submodules for solar cells

Researchers from Dalian Institute of Chemical Physics fabricate high-performance perovskite submodules with stability and outstanding photovoltaic performance. They achieve this using a surface redox engineering strategy, eliminating the local de-wetting problem and enhancing electronic properties.

SourceDalian Institute of Chemical Physics, Chinese Academy Sciences·JournalJoule·TypeCommentary/editorial·DateJul 28, 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

‘Dative epitaxy’: A new way to stack crystal films

Researchers have developed a novel method called 'dative epitaxy' for growing thin layers of crystals made from different materials on top of each other. This technique allows for the formation of special chemical bonds to fix crystal orientation, overcoming limitations of conventional and van der Waals epitaxial techniques.

SourceUniversity at Buffalo·JournalAdvanced Materials·DateApr 20, 2022

UCLA materials scientists lead global team in finding solutions to biggest hurdle for solar cell technology

Researchers found that a common surface treatment creates an electron-rich surface that destabilizes the perovskite solar cells, leading to degradation. A new method using positively and negatively charged ions resolves this issue, allowing for more stable solar cells with up to 87% efficiency retention.

SourceUniversity of California - Los Angeles·JournalNature·TypeExperimental study·DateMar 15, 2022

Rapid preparation of CdSe thin-film solar cells

A new rapid thermal evaporation method was developed to deposit high-quality CdSe thin films, enabling the creation of efficient CdSe solar cells. The study achieved an efficiency of 1.88% in a Si-based tandem configuration, demonstrating potential for high-performance solar cells.

SourceHigher Education Press·JournalFrontiers of Optoelectronics·TypeExperimental study·DateJan 10, 2022

A CARE-ing route to advanced nanoelectronics

Osaka University researchers developed an ultra-thin film of magnetite with superior crystallinity and conductive properties, overcoming challenges in spintronics technology. The discovery enables the film to undergo a temperature-dependent resistivity change, crucial for implementation in quantum computing technologies.

SourceOsaka University·JournalACS Applied Nano Materials·TypeExperimental study·DateNov 17, 2021

Weak bonds a strength in making borophene

Borophene, a 2D version of boron, can be synthesized on hexagonal boron nitride using weak van der Waals forces. This method allows for easier removal and evaluation of the material for its plasmonic and photonic properties, as well as its electronic properties relevant to superconductivity.

SourceRice University·JournalACS Nano·TypeComputational simulation/modeling·DateNov 12, 2021

Next generation electronics: Expanding the possibilities with silver nanowires

Researchers from Terasaki Institute for Biomedical Innovation developed a method to fabricate ultrathin gold shells around silver nanowires, improving their stability and effectiveness. The gold-coated nanowires showed superior durability and performance in various tests, outperforming commercial nanowires.

SourceTerasaki Institute for Biomedical Innovation·JournalNano Research·TypeExperimental study·DateAug 16, 2021

Inkjet printing 'impossible materials'

Researchers created metamaterials using low-cost inkjet printing with potential implications for telecommunications, GPS, and medical devices. The materials can be electrically tuned to adjust their properties, enabling the design of unconventional mirrors, lenses, and filters.

SourceTufts University·JournalNature Electronics·DateJun 21, 2021

New form of silicon could enable next-gen electronic and energy devices

Researchers developed a novel crystalline form of silicon with a hexagonal structure that can potentially be used to create high-performance electronic and energy devices. This discovery opens the door to exciting future research prospects for tuning optical and electronic properties through strain engineering and elemental substitution.

SourceCarnegie Institution for Science·JournalPhysical Review Letters·DateJun 4, 2021

A non-invasive procedure allows obtaining archaeological information without excavating

Researchers led by Stefano Biagetti used portable X-ray fluorescence analysis to analyze anthropogenic sediments in Botswana, detecting patterns of livestock use, middens, and workshop areas. The non-invasive technique provides unprecedented insights into ancient settlement functions, confirming the potential for future archaeological ...

Researchers develop magnetic thin film for spin-thermoelectric energy conversion

A new class of magnetic materials has been introduced for spin caloritronics, paving the way for versatile recycling of ubiquitous waste heat. The developed molecule-based magnet exhibits low thermal conductivity and efficient magnon excitations, making it an attractive alternative for energy harvesting from waste heat.