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Pulsed gradient spin echo nuclear magnetic applications

The dynamic characteristics of adsorbed molecules can be determined in terms of temperature dependences of relaxation times [14-16] and by measurements of self-diffusion coefficients applying the pulsed-gradient spin-echo method [ 17-20]. Both methods enable one to estimate the mobility of molecules in adsorbent pores and the rotational mobility of separate molecular groups. The methods are based on the fact that the nuclear spin relaxation time of a molecule depends on the feasibility for adsorbed molecules to move in adsorbent pores. The lower the molecule s mobility, the more effective is the interaction between nuclear magnetic dipoles of adsorbed molecules and the shorter is the nuclear spin relaxation time. The results of measuring relaxation times at various temperatures may form the basis for calculations of activation characteristics of molecular motions of adsorbed molecules in an adsorption layer. These characteristics are of utmost importance for application of adsorbents as catalyst carriers. They determine the diffusion of reagent molecules towards the active sites of a catalyst and the rate of removal of reaction products. Sometimes the data on the temperature dependence of a diffusion coefficient allow one to ascertain subtle mechanisms of filling of micropores in activated carbons [17]. [Pg.69]

JE Tanner. Use of a Pulsed Magnetic-field Gradient for Measurements of Self-diffusion by Spin-Echo Nuclear Magnetic Resonance with Applications to Restricted Diffusion in Several Tissues and Emulsions. PhD dissertation, University of Wisconsin, 1966. [Pg.301]

While the nuclear magnetic resonance (NMR) technique has widely been used to study diffusion processes of normal liquids, solids, or colloidal systems, there are only a few applications to molten salts. The spin echo self-diffusion method with pulsed field gradients was applied to molten salts by Herdlicka et al. "" There is no need to set up or maintain a concentration gradient. [Pg.162]


See other pages where Pulsed gradient spin echo nuclear magnetic applications is mentioned: [Pg.514]    [Pg.116]    [Pg.159]    [Pg.59]    [Pg.524]    [Pg.308]    [Pg.456]    [Pg.547]    [Pg.644]    [Pg.792]    [Pg.378]    [Pg.96]    [Pg.241]    [Pg.925]    [Pg.296]    [Pg.323]    [Pg.414]   
See also in sourсe #XX -- [ Pg.379 ]




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Gradient applications

Gradient pulse

Gradient pulsed

Gradient-echo

Magnetic gradient

Magnetic nuclear spin-echo

Nuclear spin

Nuclear spin, magnetic

Pulse Spin-echo

Pulse echo

Pulse gradient spin echo

Pulsed gradient spin echo nuclear magnetic

Pulsed gradient spin echo-nuclear

Pulsed gradient spin-echo

Pulsed magnet

Spin magnetism

Spin magnetization

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