Search results for " tunability"

showing 6 items of 6 documents

Layer-dependent mechanical properties and enhanced plasticity in the van der Waals chromium trihalide magnets

2020

The mechanical properties of magnetic materials are instrumental for the development of the magnetoelastic theory and the optimization of strain-modulated magnetic devices. In particular, two-dimensional (2D) magnets hold promise to enlarge these concepts into the realm of low-dimensional physics and ultrathin devices. However, no experimental study on the intrinsic mechanical properties of the archetypal 2D magnet family of the chromium trihalides has thus far been performed. Here, we report the room temperature layer-dependent mechanical properties of atomically thin CrI3 and CrCl3, finding that bilayers of CrI3 and CrCl3 have Young's moduli of 62.1 GPa and 43.4 GPa, with the highest sust…

Letter2D magnetic materialsnanoindentationchemistry.chemical_elementFOS: Physical sciencesBioengineeringYoung's modulus02 engineering and technologyApplied Physics (physics.app-ph)mechanical propertiesPlasticityChromiumsymbols.namesakeGeneral Materials ScienceYoung’s modulusstrain tunabilityCondensed Matter - Materials ScienceCondensed matter physicsMechanical EngineeringTrihalideMaterials Science (cond-mat.mtrl-sci)MagnetostrictionPhysics - Applied PhysicsGeneral ChemistryNanoindentation021001 nanoscience & nanotechnologyCondensed Matter Physicscond-mat.mtrl-sci3. Good healthchemistryplasticityMagnetsymbolsvan der Waals forcephysics.app-ph0210 nano-technology
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Temperature-Dependence of Solvent-Induced Stokes Shift and Fluorescence Tunability in Carbon Nanodots

2019

We carried out a cryogenic investigation on the optical properties of carbon dots, aiming to better understand their emission mechanism and the role of the solvent. The solvatochromic Stokes shift is quantified by a low temperature approach which allows freezing of the photo-excited state of carbon dots, preventing any solvation relaxation. Moreover, the reduction in temperature helps to identify the dynamical inhomogeneous contribution to the broadening of the emission band; therefore, disentangling the role of solvent from other types of broadening, such as the homogeneous and the static inhomogeneous contributions.

Materials sciencefluorescence tunabilitychemistry.chemical_element02 engineering and technology010402 general chemistry01 natural scienceslcsh:QD241-441symbols.namesakelcsh:Organic chemistrycarbon nanodotCarbon nanodotsStokes shiftcarbon nanodotsSettore FIS/01 - Fisica SperimentaleRelaxation (NMR)SolvatochromismSolvationGeneral Medicine021001 nanoscience & nanotechnologycryogenic optical studyFluorescence0104 chemical sciencesSolventchemistryChemical physicssymbols0210 nano-technologyCarbonC
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Direct formation of highly tunable and biocompatible protein microparticles

Protein microspheres Tunability
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Highly tunable protein microspheres for drug delivery

2019

Traditionally protein aggregation has been related to several neurodegenerative diseases, however in the past few years there has been a grown interest to use them as biomaterials. Among the very broad range of different amyloid structures a special focus has been developed on protein particulates, spherical protein aggregates formed at a pH near the isoelectric point of the protein they are made of, whose radius ranges from hundreds of nm to few um. They are a generic feature for all globular proteins and besides, they have never been related to any disease. Among the years different methods for the functionalization of amyloid fibrils or microspheres have been unravelled, but normally the…

Protein microspheres tunability
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Molecular characterization of tunable microscale protein-based biomaterials

2019

Protein microspheres tunabilityProtein microspheres tunability drug delivery
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Photoluminescence Enhancement by Band Alignment Engineering in MoS 2 /FePS 3 van der Waals Heterostructures

2022

Single-layer semiconducting transition metal dichalcogenides (2H-TMDs) display robust excitonic photoluminescence emission, which can be improved by controlled changes to the environment and the chemical potential of the material. However, a drastic emission quench has been generally observed when TMDs are stacked in van der Waals heterostructures, which often favor the nonradiative recombination of photocarriers. Herein, we achieve an enhancement of the photoluminescence of single-layer MoS2 on top of van der Waals FePS3. The optimal energy band alignment of this heterostructure preserves light emission of MoS2 against nonradiative interlayer recombination processes and favors the charge t…

Transition metal dichalcogenide monolayersAlignment engineeringVan der Waals heterostructuresEnhanced photoluminescenceOptoelectronic tunabilityGeneral Materials ScienceMaterialsACS Applied Materials & Interfaces
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