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Li-ion rechargeable batteries are promising systems for large-scale energy storage solutions. Understanding the electrochemical process in the cathodes of these batteries using suitable techniques is one of the crucial steps for developing them as next-generation energy storage devices. Due to the broad energy range, synchrotron X-ray techniques provide a better option for characterizing the cathodes compared to the conventional laboratory-scale characterization instruments. This work gives an overview of various synchrotron radiation techniques for analyzing cathodes of Li-rechargeable batteries by depicting instrumental details of X-ray diffraction, X-ray absorption spectroscopy, X-ray imaging, and X-ray near-edge fine structure-imaging. Analysis and simulation procedures to get appropriate information of structural order, local electronic/atomic structure, chemical phase mapping and pores in cathodes are discussed by taking examples of various cathode materials. Applications of these synchrotron techniques are also explored to investigate oxidation state, metal-oxygen hybridization, quantitative local atomic structure, Ni oxidation phase and pore distribution in Ni-rich layered oxide cathodes.
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http://dx.doi.org/10.1039/d2ra01250b | DOI Listing |
Nature
September 2025
Natural History Sciences, IIL, Hokkaido University, Sapporo, Japan.
Carbonaceous asteroids are the source of the most primitive meteorites and represent leftover planetesimals that formed from ice and dust in the outer Solar System and may have delivered volatiles to the terrestrial planets. Understanding the aqueous activity of asteroids is key to deciphering their thermal, chemical and orbital evolution, with implications for the origin of water on the terrestrial planets. Analyses of the objects, in particular pristine samples returned from asteroid Ryugu, have provided detailed information on fluid-rock interactions within a few million years after parent-body formation.
View Article and Find Full Text PDFNature
September 2025
School of Earth Sciences, University of Bristol, Bristol, UK.
The Lepidosauria is the most species-rich group of land-dwelling vertebrates. The group includes around 12,000 species of lizards and snakes (Squamata) and one species of Rhynchocephalia, the tuatara Sphenodon punctatus from New Zealand. Squamates owe their success to their generally small size, but also to their highly mobile skull that enables them to manipulate large prey.
View Article and Find Full Text PDFJ Phys Condens Matter
September 2025
Department of Physics and Astronomy and Center for Materials Research and Analysis, University of Nebraska-Lincoln, Jorgensen Hall, 855 North 16th Str., NE 68588-0299, Lincoln, Nebraska, 68588-0007, UNITED STATES.
The band structure of ultrathin Pd(111) thin films grown on the CrO(0001) surface was studied by angular-resolved photoemission spectroscopy (ARPES) combined with first-principles calculations. The CrO(0001) interface and the expanded Pd lattice constant appears to significantly affect the occupied band structure of an ultrathin palladium film. A characteristic band splitting is seen in the experimental occupied electronic structure, forming a hexagonal pattern approximately half-way from the Γ" point to the surface Brillouin zone boundary.
View Article and Find Full Text PDFPhys Rev Lett
August 2025
European Laboratory for Non Linear Spectroscopy (LENS), Istituto Nazionale di Ottica, Consiglio Nazionale delle Ricerche (CNR-INO), via Nello Carrara 1, 50019 Sesto Fiorentino, Italy and , via Nello Carrara 1, 50019 Sesto Fiorentino, Italy.
Single crystal x-ray diffraction measurements have been carried out on epsilon oxygen up to 30 GPa to examine the behavior of the constituent (O_{2})_{4} units. An isostructural phase transition is evidenced by lattice parameter and intracluster (O_{8}) distance discontinuities and clear changes in the equation of state at 18.1±0.
View Article and Find Full Text PDFPLoS One
September 2025
Department of Life and Environmental Sciences, Polytechnic University of Marche, Ancona, Italy.
Microfibers are pollutants of increasing concern, as they accumulate in aquatic environments and pose risks to living organisms. Once released, they undergo degradation processes that reduce their size and enhance their ability to interact with biological systems. Among these processes, photodegradation is a key driver, leading to fiber fragmentation and structural shrinkage.
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