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Structural transformations

Tolbert S H and Aiivisatos A P 1995 The wurtzite to rock salt structural transformation in CdSe nanocrystais under high pressure J. Chem. Rhys. 102 4642... [Pg.2924]

Tolbert S H et al 1996 Pressure-induced structural transformation in Si nanocrystais surface and shape effects Phys. Rev. Lett. 76 4384... [Pg.2924]

Herhold AB et al 1999 Structural transformations and metastability in semiconductor nanocrystais Phase Trans. 68 1... [Pg.2924]

Internal coordinate molecular modeling is an efficient instrument with specific advantages that make it an indispensable complement to other existing approaches. It is best suited for simulation and analysis of large-scale structural transformations in biomacro-mole-cules, and at present ICMD is generally considered the most powerful tool in conforma-... [Pg.129]

In this chapter shock modification of powders (their specific area, x-ray diffraction lines, and point defects) measurements via analytical electron microscopy, magnetization and Mossbauer spectroscopy shock activation of catalysis, solution, solid-state chemical reactions, sintering, and structural transformations enhanced solid-state reactivity. [Pg.160]

M. Schoen. On the uniqueness of stratification-induced structural transformations in confined films. Ber Bunsenges Phys Chem 700 1355-1362, 1996. [Pg.69]

A. G. Khachaturyan. Theory of Structural Transformations in Solids. New York Wiley, 1983. [Pg.129]

Synthesis, structure, transformations, and applications of sulfoxylic acid (HOSOH) derivatives containing heterocyclic fragments 98ZOR1433. [Pg.207]

Experimentally it is found that the Fe-Co and Fe-Ni alloys undergo a structural transformation from the bee structure to the hep or fee structures, respectively, with increasing number of valence electrons, while the Fe-Cu alloy is unstable at most concentrations. In addition to this some of the alloy phases show a partial ordering of the constituting atoms. One may wonder if this structural behaviour can be simply understood from a filling of essentially common bands or if the alloying implies a modification of the electronic structure and as a consequence also the structural stability. In this paper we try to answer this question and reproduce the observed structural behaviour by means of accurate alloy theory and total energy calcul ions. [Pg.57]

Many metals and metallic alloys show martensitic transformations at temperatures below the melting point. Martensitic transformations are structural phase changes of first order which belong to the broader class of diffusion js solid-state phase transformations. These are structural transformations of the crystal lattice, which do not involve long-range atomic movements. A recent review of the properties and the classification of diffusionless transformations has been given by Delayed... [Pg.95]

Both of the current models for the central mode scattering contain the implicit assumption of cubic symmetry above Tm. Possibly because of the dramatic nature of the soft-mode behaviour and a ready understanding of the structural transformation in terms of it, there was a strong incentive to establish a link between it and the central mode scattering. A consistent difficulty with this approach is the failure to establish an intrinsic line-width for the central mode peak and the unspecified nature of the mechanism responsibly for a low-frequency resonance in the energy of the soft mode. ... [Pg.337]

T.R. Finlayson, Structural transformations and their precursors, Aust. J. Phys. 36 553 (1983). [Pg.338]

A.A. Hyin, B.A. Kolachev and A.M. Mamonov, Phase and structure transformations in titanium alloys under thermohydrogenous treatment, in Titanium 92. Sci. and Technol., Proc. VII World Conf. Titanium, San Diego, vol. 1, (1992) 941. [Pg.436]

Natural product synthesis poses the challenge to consider and develop new pathways of structural transformation. Natural products as targets for synthetic research possess a special fertility in this regard, because the structural channels of biosynthesis are not necessarily the conduits of organic synthesis. A. Eschenmoser19... [Pg.9]

The thermodynamic analysis of conformational and structural transformations in the melt at high pressures34 showed that the free volume and free energy minimum required for hydrostatic compression is attained as a result of the transition of the molecules in the melt into a more extended conformation (gauche —> trans transitions) since the extended molecules ensure a more compact packing of the chains at compression. Chain uncoiling leads to a decrease in their flexibility parameter f with increasing pressure p ... [Pg.217]

Timberlake, C.F. and Bridle, P., Flavylium salts anthocyanidins and anthocyanins. Structural transformations in acid solutions, J. Sci. Food Agric., 18, 473, 1967. [Pg.276]

Duenas, M., et al., UV-visible spectroscopic investigation of the 8,8-methylmethine catechin-malvidin-3-glucoside pigments in aqueous solutions structural transformations and molecular complexations with chlorogenic acid, J. Agric. Food. Chem., 54, 189, 2006. [Pg.276]

For many situations, a simple total anthocyanin determination is inappropriate because of interference from polymeric anthocyanins, anthocyanin degradation products, or melanoidins from browning reactions. In those cases, the approach has been to measure the absorbance at two different pH values. The differential method measures the absorbance at two pH valnes and rehes on structural transformations of the anthocyanin chromophore as a function of pH. Anthocyanins switch from a saturated bright red-bluish color at pH 1 to colorless at pH 4.5. Conversely, polymeric anthocyanins and others retain their color at pH 4.5. Thus, measurement of anthocyanin samples at pH 1 and 4.5 can remove the interference of other materials that may show absorbance at the A is-max-... [Pg.484]

The results obtained for the various aluminum oxides and hydroxides indicate that infrared photoacoustic spectroscopy may be useful in characterizing structural transformations in these species. Very clear differences between a-alumina and y-alumina were noted in the region of the lattice vibrations. The monohydrate, boehmite, showed a very distinct Al-OH stretching feature at 1070... [Pg.460]

Recently characterization of bimetallic nanoparticles by EXAFS were extensively reported [122-124,176], Structural transformation of bimetallic Pd/Pt nanoparticles, which were prepared by a sequential loading of H2PtClg onto the Pd loaded catalyst, was investigated with EXAFS at high temperatures [176], The results of EXAFS at Pd K and Pt L-III edges showed that Pt was surface-enriched or anchored on the Pd metal core with an increase of the Pt content. The structure of the obtained bimetallic Pd/Pt nanoparticles seemed to be retained upon heating up to 1273 K under ambient condition [176], Pt/ Au bimetallic nanoparticles can be prepared by polyol method and stabilized by PVP [122], XANES and EXAFS studies were also performed on the samples and their results supported the idea of a Pt-core/Au-shell structure with the elements segregated from each other [122],... [Pg.64]


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Ammonia structural transformation

Catalytically Active Structure and its Structural Transformation during the Phenol Synthesis

Cluster structure transformation

Computer-aided structure transformation

Crystal Structure Transformations Part 3. Factors

Crystal structure transformation

Deformation structural transformation

Extended X-ray absorption fine structure Fourier transform

Fourier transform absorption fine structure

Fourier transform fractal structures

Fourier transform infrared microscopy structural characterization

Fourier transform infrared spectroscopy protein secondary structures

Fourier transform infrared structure resonance

Fourier transform infrared structure spectroscopy

Fourier transform infrared-temperature programmed structure

Geometry of Structural Transformations

Hierarchical structure transformation

High-resolution electron structural transformations

Hydrides structural transformations

Kinetics of structural change I - diffusive transformations

Liquid chromatography/Fourier transform structure elucidation

Martensitic transformations structure

Metastable — Stable Structural Transformation Energies for Nitride and Carbide Phases

Molecular structure transformation properties

Order-disorder transformations CsCl structure

Osmium structural transformations

Pressure-induced structural transformations

Real space structures, Fourier transform

Rhodium structural transformations

Rigid body transformations, model structures

SAMs structural transformation

Solid structural transformations

Spectroscopic Studies of Gap States and Laser-Induced Structural Transformations in Se-Based As-Free Amorphous Semiconductors

Structural Transformations During Network Formation

Structural phase transformations

Structural phase transformations, amorphous

Structural phase transformations, amorphous solids

Structural transformation order-disorder transition

Structural transformation polydiacetylene

Structure Fourier transform: electron density

Structure and Transformation of Amorphous Calcium Phosphate (ACP)

Structure data conversion and transformation

Structure determination Fourier transform: electron density

Structure transformation

Structure transformation

Structure transformation coalescence

Structure transformation film morphology

Structure transformation fine dispersed phase

Structure transformation grain size effect

Structure-activity relationships ring transformations

The Structure Factor as a Product of Transforms

Thermal Transformations of Soot-Like Structures

Transformation-induced twinning and modulated structures

Transformational model general separation structure

Transformations Structural Initialization

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