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Hindered

At lower temperatures, the crystals increase in size, and form networks that trap the liquid and hinder its ability to flow. The pour point is attained which can, depending on the diesel fuel, vary between -15 and -30°C. This characteristic (NF T 60-105) is determined, like the cloud point, with a very rudimentary device (maintaining a test tube in the horizontal position without apparent movement of the diesel fuel inside). [Pg.215]

A crack in concrete with an air gap thickness of as little as 0.025 mm will hinder significant transmission of seismic compression waves [1]. [Pg.1002]

Molecules larger than those considered so far are fonned by linking together several smaller components. A new kind of dynamics typical of these systems is already seen in a molecule such as C2Hg, in which there is hindered rotation of the two methyl groups. Systems with hindered internal rotation have been studied in great... [Pg.78]

Corrosion protection of metals can take many fonns, one of which is passivation. As mentioned above, passivation is the fonnation of a thin protective film (most commonly oxide or hydrated oxide) on a metallic surface. Certain metals that are prone to passivation will fonn a thin oxide film that displaces the electrode potential of the metal by +0.5-2.0 V. The film severely hinders the difflision rate of metal ions from the electrode to tire solid-gas or solid-liquid interface, thus providing corrosion resistance. This decreased corrosion rate is best illustrated by anodic polarization curves, which are constructed by measuring the net current from an electrode into solution (the corrosion current) under an applied voltage. For passivable metals, the current will increase steadily with increasing voltage in the so-called active region until the passivating film fonns, at which point the current will rapidly decrease. This behaviour is characteristic of metals that are susceptible to passivation. [Pg.923]

Variational RRKM theory is particularly important for imimolecular dissociation reactions, in which vibrational modes of the reactant molecule become translations and rotations in the products [22]. For CH —> CHg+H dissociation there are tlnee vibrational modes of this type, i.e. the C—H stretch which is the reaction coordinate and the two degenerate H—CH bends, which first transfomi from high-frequency to low-frequency vibrations and then hindered rotors as the H—C bond ruptures. These latter two degrees of freedom are called transitional modes [24,25]. C2Hg 2CH3 dissociation has five transitional modes, i.e. two pairs of degenerate CH rocking/rotational motions and the CH torsion. [Pg.1016]

Wagner A F, Kiefer J H and Kumaran S S 1992 The importance of hindered rotation and other... [Pg.1040]

Gutowsky H S and Holm C H 1956 Rate processes and nuclear magnetic resonance spectra. II. Hindered internal rotation of amides J. Chem. Phys. 25 1228-34... [Pg.2112]

Kiefer J H, Mudipalli P S, Wagner A F and Harding L 1996 Importance of hindered rotations in the thermal dissociation of small unsaturated molecules classical formulation and application to hen and hcch J. Chem. Phys. 105 1-22... [Pg.2151]

The quantum numbers tliat are appropriate to describe tire vibrational levels of a quasilinear complex such as Ar-HCl are tluis tire monomer vibrational quantum number v, an intennolecular stretching quantum number n and two quantum numbers j and K to describe tire hindered rotational motion. For more rigid complexes, it becomes appropriate to replace j and K witli nonnal-mode vibrational quantum numbers, tliough tliere is an awkw ard intennediate regime in which neitlier description is satisfactory see [3] for a discussion of tire transition between tire two cases. In addition, tliere is always a quantum number J for tire total angular momentum (excluding nuclear spin). The total parity (symmetry under space-fixed inversion of all coordinates) is also a conserved quantity tliat is spectroscopically important. [Pg.2445]

Ha T, Glass J, Enderle T, Chemla D S and Weiss S 1998 Hindered rotational diffusion and rotational ]umps of single molecules Phys. Rev. Lett. 80 2093-7... [Pg.2510]

The successful preparation of polymers is achieved only if tire macromolecules are stable. Polymers are often prepared in solution where entropy destabilizes large molecular assemblies. Therefore, monomers have to be strongly bonded togetlier. These links are best realized by covalent bonds. Moreover, reaction kinetics favourable to polymeric materials must be fast, so tliat high-molecular-weight materials can be produced in a reasonable time. The polymerization reaction must also be fast compared to side reactions tliat often hinder or preclude tire fonnation of the desired product. [Pg.2515]

The generally low chemical, mechanical and thennal stability of LB films hinders their use in a wide range of applications. Two approaches have been studied to solve this problem. One is to spread a polymerizable monomer on the subphase and to polymerize it either before or following transfer to the substrate. The second is to employ prefonned polymers containing hydrophilic and hydrophobic groups. [Pg.2618]

At finite concentration, tire settling rate is influenced by hydrodynamic interactions between tire particles. For purely repulsive particle interactions, settling is hindered. Attractive interactions encourage particles to settle as a group, which increases tire settling rate. For hard spheres, tire first-order correction to tire Stokes settling rate is given by [33]... [Pg.2673]

A different kind of shape selectivity is restricted transition state shape selectivity. It is related not to transport restrictions but instead to size restrictions of the catalyst pores, which hinder the fonnation of transition states that are too large to fit thus reactions proceeding tiirough smaller transition states are favoured. The catalytic activities for the cracking of hexanes to give smaller hydrocarbons, measured as first-order rate constants at 811 K and atmospheric pressure, were found to be the following for the reactions catalysed by crystallites of HZSM-5 14 n-... [Pg.2712]

To enable an atomic interpretation of the AFM experiments, we have developed a molecular dynamics technique to simulate these experiments [49], Prom such force simulations rupture models at atomic resolution were derived and checked by comparisons of the computed rupture forces with the experimental ones. In order to facilitate such checks, the simulations have been set up to resemble the AFM experiment in as many details as possible (Fig. 4, bottom) the protein-ligand complex was simulated in atomic detail starting from the crystal structure, water solvent was included within the simulation system to account for solvation effects, the protein was held in place by keeping its center of mass fixed (so that internal motions were not hindered), the cantilever was simulated by use of a harmonic spring potential and, finally, the simulated cantilever was connected to the particular atom of the ligand, to which in the AFM experiment the linker molecule was connected. [Pg.86]

The treatment of conjugated systems in terms of electron systems that extend smoothly over all atoms allows the treatment of a variety of structural phenomena, as may be explained with a spedes that shows hindered rotation and with the nitro group. [Pg.65]

Pyridine and quinoline are usually sold each in two grades, "technical" and "pure." The "technical" grade may contain various impurities which can hinder the identification of the base. [Pg.377]

If either R or R has a branched ciiain structure and is therefore bulky, it will exert a hindering influence (steric hindrance) in the formation of the bimole-cular complex (in 2) and esterification is accordingly more difficult. [Pg.380]

The electronic transitions which produce spectra in the visible and ultraviolet are accompanied by vibrational and rotational transitions. In the condensed state, however, rotation is hindered by solvent molecules, and stray electrical fields affect the vibrational frequencies. For these reasons, electronic bands are very broad. An electronic band is characterised by the wave length and moleculai extinction coefficient at the position of maximum intensity (Xma,. and emai.). [Pg.1143]


See other pages where Hindered is mentioned: [Pg.22]    [Pg.338]    [Pg.228]    [Pg.654]    [Pg.997]    [Pg.310]    [Pg.79]    [Pg.940]    [Pg.1169]    [Pg.1687]    [Pg.1941]    [Pg.2417]    [Pg.2445]    [Pg.2498]    [Pg.2527]    [Pg.2529]    [Pg.2712]    [Pg.2784]    [Pg.2814]    [Pg.2840]    [Pg.310]    [Pg.52]    [Pg.65]    [Pg.130]    [Pg.878]    [Pg.1149]    [Pg.20]    [Pg.40]    [Pg.44]    [Pg.46]    [Pg.51]   
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See also in sourсe #XX -- [ Pg.138 ]

See also in sourсe #XX -- [ Pg.292 ]

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See also in sourсe #XX -- [ Pg.11 ]

See also in sourсe #XX -- [ Pg.22 ]

See also in sourсe #XX -- [ Pg.129 , Pg.154 ]




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1.4- Diols hindered

Acetyleneamines hindered

Acylation of Hindered Alcohols

Additives hindered amine light stabilisers

Alanes hindered

Alcohols sterically hindered

Alcohols, hindered, esterification

Aldehydes hindered

Alkenes sterically hindered

Alkyl halides sterically hindered

Alkyl phenols, Hindered

Alkylation of hindered ketones

Amine hindered

Amine oxides hindered

Amines hindered secondary

Amines prim., hindered

Amines sterically hindered

Amines, tert hindered

Amino group, sterically hindered

Amino hindered

Amino sterically hindered

Antidegradent hindered phenol

Antioxidants hindered phenolic

Antioxidants hindered radicals

Application to hindered settling

Arylation of hindered ketones

Arylboronic sterically hindered

Barrier height hindered rotation potential

Base-Catalysed Reactions of Highly Hindered Phenols Used as

Bases. highly hindered strong

Batch sedimentation hindered settling

Biaryls highly hindered

Butadiene highly hindered

Carboxylic acid amid hindered

Carboxylic acid esters hindered

Carboxylic acids hindered

Carboxylic methyl esters, hindered

Chemical sterically hindered

Chemiluminescence-hindered

Chemiluminescence-hindered phenolics

Coatings hindered amine light stabilizers

Complexes of Sterically Hindered

Complexes of Sterically Hindered Thiolate Ligands

Compounds hindered

Conformation and hindered rotation

Contribution of Hindered Rotations

Cooling Hindered

Cryptophenols and Hindered Phenols

Cyclohexanones moderately hindered

Diffusion hindered

Diketones, hindered

ESTERIFICATION OF HINDERED

Electron spin resonance hindered amine stabilizers

Electron-rich, Sterically Hindered Phosphine Ligands

Emission anisotropy hindered rotations

Enamines hindered aldehyde

Enolization hindered ketones

Esterification hindered components

Esters highly hindered

Esters hindered aryl

Ethylene hindered

Factor hindered

Factors hindering thiophene

Grafting of Hindered Amine Groups on EPDM and Polyoctenamer via Photo-Hydroperoxidation

Grignard reagents sterically hindered

HALS (hindered amine light

HALS (hindered amine light stabilization

HAS (hindered amine

HINDERED AMINE Subject

Halides, hindered

Haloalkanes hindered

Hemiquinolesters hindered

Highly hindered esters synthesis

Hinder amine light stabilizer

Hinder catalyst

Hindered 2,6-diarylphenols

Hindered Biphenols

Hindered Esters

Hindered Hauser bases

Hindered Homogeneity

Hindered Homogeneous

Hindered Internal Motions of Molecules

Hindered Internal Rotation

Hindered Polymer Chains

Hindered Pseudorotation

Hindered Rotation about Formal Single Bonds

Hindered Rotation and Diffusion

Hindered Settling in a Centrifuge

Hindered Spiro-Ketal Nitroxides

Hindered acids

Hindered alcohols

Hindered amine base

Hindered amine light

Hindered amine light stabilisers

Hindered amine light stabilisers (HALS

Hindered amine light stabilizer (HALS

Hindered amine light stabilizer absorption

Hindered amine light stabilizer additives

Hindered amine light stabilizer based

Hindered amine light stabilizer concentration

Hindered amine light stabilizer effectiveness

Hindered amine light stabilizer formation

Hindered amine light stabilizer hydroperoxides

Hindered amine light stabilizer peroxy radicals

Hindered amine light stabilizer reactions

Hindered amine light stabilizer regeneration

Hindered amine light stabilizers

Hindered amine light stabilizers application

Hindered amine light stabilizers compatability

Hindered amine light stabilizers exposure

Hindered amine light stabilizers nitroxide

Hindered amine light stabilizers paint

Hindered amine light stabilizers polymer weathering

Hindered amine light stabilizers polymeric materials

Hindered amine light stabilizers polymers

Hindered amine light stabilizers products

Hindered amine light stabilizers recent developments

Hindered amine light stabilizers selection

Hindered amine light stabilizers stability

Hindered amine light stabilizers structures

Hindered amine light stabilizers synthesis

Hindered amine light stabilizers tapes

Hindered amine light stabilizers thermal stabilizing activity

Hindered amine stabilisers

Hindered amine stabilizers

Hindered amine stabilizers aging

Hindered amine stabilizers aldehyde

Hindered amine stabilizers films

Hindered amine stabilizers free-radical reactions

Hindered amine stabilizers method

Hindered amine stabilizers nitroxide derivation

Hindered amine stabilizers polymers

Hindered amine stabilizers stabilization

Hindered amine stabilizers thermal aging

Hindered amine stabilizers weathered coatings

Hindered amine stabilizers, HAS

Hindered amine-type light stabilizers

Hindered amines groups

Hindered amines light stabilizing activity

Hindered amines nitroxyl radical precursors

Hindered amines synthesis

Hindered amines, determination

Hindered aromatic

Hindered aromatic aldehydes

Hindered aryl

Hindered aryl deprotonation

Hindered base

Hindered base, nucleophilicity

Hindered basic probes

Hindered basicity

Hindered batch settling

Hindered biaryl bond

Hindered bisphenol

Hindered bisphenol antioxidants

Hindered combination with phenolic

Hindered continuous settling

Hindered external motion

Hindered ferroelectrics

Hindered hydroperoxide complexes

Hindered internal rotation model

Hindered ketones 1,6 addition

Hindered light stabilizers

Hindered lithium amide

Hindered magnesium amides, metalation

Hindered motion

Hindered nitriles

Hindered oscillation model

Hindered phenohc antioxidants

Hindered phenol antioxidants

Hindered phenol antioxidants structures

Hindered phenol series

Hindered phenol, inhibition

Hindered phenolics

Hindered phenols

Hindered phenols sterically

Hindered polymers, sterically

Hindered proton transfer from molecular cavities

Hindered pyridine

Hindered radicals

Hindered radiolysis

Hindered residues

Hindered rotation

Hindered rotation model

Hindered rotation of acetyl group

Hindered rotation of ethane

Hindered rotation potential, tunneling

Hindered rotation, about single bonds

Hindered rotation, adsorbed

Hindered rotation, adsorbed molecules

Hindered rotational

Hindered rotations/translations

Hindered rotor

Hindered rotor Hamiltonian

Hindered salts with carboxylic acids

Hindered sedimentation stage

Hindered settling

Hindered settling factor

Hindered settling rate, effect

Hindered settling ratios

Hindered settling velocity

Hindered substrates

Hindered systems

Hindered thermal stabilizers

Hindered translation, adsorbed

Hindered translation, adsorbed molecules

Hindered translations

Hindered-amine stabilizers mechanism

Hindered-rotor harmonic oscillator

Hindered-rotor harmonic oscillator model

Hindered-settling studies

Hinderer

Hydrazones, hindered

Hydrogen bonds hindered rotation potential

Hydroxy hindered, acylation

Hydroxylamine sterically hindered

Innovation policy hindering

Internal Hindered Rotation of Ketimido Ligands

Internal coordinates of a polymer chain and its hindered rotation

Internal hindered pore diffusion

Internal rotor hindered

Ketones hindered

Ketones hindered, Wittig reaction

Ketones hindered, reaction with

Ligands hindered rotation

Magnesium amides hindered

Mass spectrometry hindered amines

Melt flow hinder with additive

Methyl groups hindered rotation potential

Methyl methacrylate diffusion hindered

Moderately hindered

N-alkoxy hindered amine

Nitroxide compounds hindered amine stabilizers

Nonstaining hindered phenols

Nucleophiles sterically hindered

Nucleophilicity sterically hindered nucleophiles

O hindered

O-H bonds in sterically hindered phenols

Organolithium reagents, reaction with hindered ketones

Other Applications of Hindered Phenols

Other Li-Barbier Reactions with Sterically Hindered Reagents

Other Sterically Hindered Phenyl Radicals

Oximes hindered

P hindered

Partition function rotational hindered

Peptides hindered, synthesis

Peptides sterically hindered

Phenols singly hindered

Phenols, hindered, discoloration

Phenols, sterically hindered, antioxidant

Phenoxides, hindered

Phenoxides, hindered phenols

Phosphites sterically hindered

Piperidine hindered

Polymeric hindered amine light

Polymeric hindered amine light performance

Polymeric hindered amine light stabilizers

Polyolefins hindered phenolics

Porphyrin, both-faces-hindered

Porphyrin, single-face-hindered

Potential barriers hindering internal

Potential barriers hindering internal rotation

Problem 11.2. Hindered Settling Velocity

Products from hindered amine stabilizers

Pyrazoles, sterically hindered

Pyridines 4-amino-, hindered

Pyridines hindered, 4-acylation

Pyridines, sterically-hindered, basicity

Quantum-Mechanical Exchange Coupling and Hindered Rotational Phenomena

Reducing agent, hindered

Reducing agent, hindered Reduction

Reducing agent, hindered chemoselectivity

Reduction sterically hindered

S hindered

Saponification of hindered aromatic esters

Scavengers Hindered Amine Light Stabilizers

Sedimentation hindered

Sedimentation hindered settling

Separation hindered

Settling ratio, free hindered

Silanols highly sterically hindered

Slurries hindered settling rates

Stabilisers hindered phenols

Stereospecific formation hindered

Stereospecific reactions hindered

Steric Hinderance and Radical Stability Toxicity of Nitriles

Steric hinderance

Steric hindered

Sterically Hindered Amines (HAS)

Sterically Hindered Arene Chalcogenols

Sterically Hindered Phenyl Radicals

Sterically hinder

Sterically hindered alcohols, oxidation with

Sterically hindered alkyl monophosphines

Sterically hindered amines derivatives

Sterically hindered arylboronic esters

Sterically hindered base

Sterically hindered bases enolate synthesis

Sterically hindered biaryls

Sterically hindered bonds

Sterically hindered carbonyl

Sterically hindered carbonyl compounds

Sterically hindered compounds

Sterically hindered enamines

Sterically hindered enamines alkylation

Sterically hindered group bonding

Sterically hindered group bonding chemistry

Sterically hindered ketones

Sterically hindered ketones, enolization

Sterically hindered magnesium amides

Sterically hindered metalloporphyrins

Sterically hindered organometallic reagents

Sterically hindered silanes

Sterically hindered silicon compounds

Sterically hindered solutes

Sterically hindered substrates

Sterically hindered tertiary amine

Sterically hindered tetrasubstituted alkenes

Sterically hindered—

Sterically-hindered pyridine

Structures and Syntheses of Sterically Hindered Thiols

Subject sterically hindered

Suzuki Miyaura sterically hindered substrates

Suzuki hindered arylboronic acids

Suzuki hindered biaryls

Synthesis of Highly Hindered Cyclic Amines

Termination hindered

Thiolate ligands, sterically hindered

Thiolate ligands, sterically hindered structures

Thiolate sterically hindered

Thiolates sterically hindered

Torsional rotation, hindered

Valence Angle Chains with Hindered Rotation

Variability and Uncertainty Hinder the Regulatory Process

Velocity hindered

Very sterically hindered

Very sterically hindered substrates

Water-borne hinders

With sterically hindered amines

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