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DRIFT transform

DRIFTS Diffuse reflectance infrared Fourier-transform Same as IR Same as IR... [Pg.317]

Lennard C J, Mazzella W D and Margot P A 1993 Some applioations of diffuse refleotanoe infrared Fourier transform speotrosoopy DRiFTS in forensio soienoe Analysis 21 M34-7... [Pg.1796]

Zeine C and Grobe J 1997 Diffuse refleotanoe infrared Fourier transform DRIFT speotrosoopy in the preservation of historioal monuments studies on salt migration Mikrochim. Acta 125 279-82... [Pg.1796]

Diffuse reflection iavolves reflecting the iafrared beam off of a soHd sample, as ia specular reflectioa, but it is the aoaspecular portioa of the reflected radiatioa that is coUected. Whea an ftir spectrometer is used, diffuse reflection is caUed DRIFTS (diffuse reflectance iafrared Fourier-transform... [Pg.198]

The last arrangement of voltage feedbaek is the isolated feedback. This is used when the input voltage is eonsidered lethal to the operator of the equipment (>42.5 VDC). The two aeeepted methods of eleetrieal isolation are optical (optoisolator) or magnetic (transformer). This seetion will talk about the more eommon method of isolation, when an optoisolator is used to isolate the lethal portions of the eireuit from the operator portion. The optoisolator s Ct (eurrent transfer ratio (or drifts with temperature, ean degrade slightly with age,... [Pg.78]

Add sufficient water (normally 1 % w/w) to transform anhydrides to avoid pH drift of pastes (check by Karl Fischer titration)... [Pg.658]

In solvent-elimination LC-FTIR, basically three types of substrates and corresponding IR modes can be discerned, namely, powder substrates for diffuse reflectance (DRIFT) detection, metallic mirrors for reflection-absorption (R-A) spectrometry, and IR-transparent windows for transmission measurements [500]. The most favourable solvent-elimination LC-FTIR results have been obtained with IR-transparent deposition substrates that allow straightforward transmission measurements. Analyte morphology and/or transformation should always be taken into consideration during the interpretation of spectra obtained by solvent-elimination LC-FTIR. Dependent on the type of substrate and/or size of the deposited spots, often special optics such as a (diffuse) reflectance unit, a beam condenser or an FITR microscope are used to scan the deposited substances (typical diameter of the FITR beam, 20 pm). [Pg.492]

Diffuse Reflectance IR Fourier Transform Spectroscopy (DRIFTS) can be employed with high surface area catalytic samples that are not sufficiently transparent to be studied in transmission. In this technique, the diffusely scattered IR radiation from a sample is collected, refocussed, and analysed. Samples can be measured in the form of loose powders. [Pg.41]

Although acetone was a major product, it was not observed by infrared spectroscopy. Flowing helium/acetone over the catalyst at room temperature gave a prominent carbonyl band at 1723 cm 1 (not show here). In this study, a DRIFTS (diffuse reflectance infrared Fourier transform spectroscopy) cell was placed in front of a fixed reactor DRIFTS only monitored the adsorbed and gaseous species in the front end of the catalyst bed. The absence of acetone s carbonyl IR band in Figure 3 and its presence in the reactor effluent suggest the following possibilities (i) acetone formation from partial oxidation is slower than epoxidation to form PO and/or (ii) acetone is produced from a secondary reaction of PO. [Pg.407]

The experimental system consists of three sections (i) a gas metering section with interconnected 4-port and 6-port valves, (ii) a reactor section including an in-situ diffused reflectance infrared Fourier transform spectroscopy reactor (DRIFTS) connected to tubular quartz reactor, (iii) an effluent gas analysis section including a mass spectrometer or a gas chromatograph (9). [Pg.410]

For PyMS to be used for (1) routine identification of microorganisms and (2) in combination with ANNs for quantitative microbiological applications, new spectra must be comparable with those previously collected and held in a data base.127 Recent work within our laboratory has demonstrated that this problem may be overcome by the use of ANNs to correct for instrumental drift. By calibrating with standards common to both data sets, ANN models created using previously collected data gave accurate estimates of determi-nand concentrations, or bacterial identities, from newly acquired spectra.127 In this approach calibration samples were included in each of the two runs, and ANNs were set up in which the inputs were the 150 new calibration masses while the outputs were the 150 old calibration masses. These associative nets could then by used to transform data acquired on that one day to data acquired at an earlier data. For the first time PyMS was used to acquire spectra that were comparable with those previously collected and held in a database. In a further study this neural network transformation procedure was extended to allow comparison between spectra, previously collected on one machine, with spectra later collected on a different machine 129 thus calibration transfer by ANNs was affected. Wilkes and colleagues130 have also used this strategy to compensate for differences in culture conditions to construct robust microbial mass spectral databases. [Pg.333]

Molten Rock (a) The magma is a constant flow carrying sediments downwards only for them to emerge in transformed states (b) Upwelling of minerals in the black smokers (also contributes to temperature) (c) Continental drift causes changes in environment... [Pg.417]

In this contribution, the steady-state isotopic transient kinetic analysis-diffuse reflectance Fourier transform spectroscopy (SSITKA-DRIFTS) method provides further support to the conclusion that not only are infrared active formates likely intermediates in the water-gas shift (WGS) reaction, in agreement with the mechanism proposed by Shido and Iwasawa for Rh/ceria, but designing catalysts based on formate C-H bond weakening can lead to significantly higher... [Pg.365]

DRIFT diffuse reflectance infrared Fourier transform... [Pg.320]

In the diffuse reflectance mode, samples can be measured as loose powders, with the advantages that not only is the tedious preparation of wafers unnecessary but also diffusion limitations associated with tightly pressed samples are avoided. Diffuse reflectance is also the indicated technique for strongly scattering or absorbing particles. The often-used acronyms DRIFT or DRIFTS stand for diffuse reflectance infrared Fourier transform spectroscopy. The diffusely scattered radiation is collected by an ellipsoidal mirror and focussed on the detector. The infrared absorption spectrum is described the Kubelka-Munk function ... [Pg.224]

If the scattering coefficient does not depend on the infrared frequency, the Kubelka-Munk function transforms the measured spectrum RJ V) into the absorption spectrum K v). In situ cells for DRIFT studies of catalysts have been described [10] and are commercially available. [Pg.224]

DGE a AC AMS APCI API AP-MALDI APPI ASAP BIRD c CAD CE CF CF-FAB Cl CID cw CZE Da DAPCI DART DC DE DESI DIOS DTIMS EC ECD El ELDI EM ESI ETD eV f FAB FAIMS FD FI FT FTICR two-dimensional gel electrophoresis atto, 10 18 alternating current accelerator mass spectrometry atmospheric pressure chemical ionization atmospheric pressure ionization atmospheric pressure matrix-assisted laser desorption/ionization atmospheric pressure photoionization atmospheric-pressure solids analysis probe blackbody infrared radiative dissociation centi, 10-2 collision-activated dissociation capillary electrophoresis continuous flow continuous flow fast atom bombardment chemical ionization collision-induced dissociation continuous wave capillary zone electrophoresis dalton desorption atmospheric pressure chemical ionization direct analysis in real time direct current delayed extraction desorption electrospray ionization desorption/ionization on silicon drift tube ion mobility spectrometry electrochromatography electron capture dissociation electron ionization electrospray-assisted laser desorption/ionization electron multiplier electrospray ionization electron transfer dissociation electron volt femto, 1CT15 fast atom bombardment field asymmetric waveform ion mobility spectrometry field desorption field ionization Fourier transform Fourier transform ion cyclotron resonance... [Pg.11]

Diffuser aerators, jet air, 26 165 Diffuse reflectance, 14 231 Diffuse reflectance infrared Fourier transform spectroscopy (DRIFT), 24 72, 110-111... [Pg.268]

DRIFT spectra, acquiring, 24 111. See also Diffuse reflectance infrared Fourier transform spectroscopy (DRIFT) Drilling, of hydrothermal wells, 12 525-527 Drilling fluid (drilling mud) companies, 9 2 Drilling fluid materials, 9 2, 9-25. See also Drilling fluids Drilling muds alkalinity control in, 9 19 barite, 9 9-10 calcite, 9 10... [Pg.289]

Direct NIR or MIR measurements of whole soil can be made using attenuated total reflectance (ATR) and diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS) samplers. This type of measurement detects only components on the surface and so has severe limitations when information about the bulk soil is needed [4],... [Pg.179]


See other pages where DRIFT transform is mentioned: [Pg.230]    [Pg.189]    [Pg.268]    [Pg.269]    [Pg.286]    [Pg.278]    [Pg.146]    [Pg.140]    [Pg.4]    [Pg.463]    [Pg.58]    [Pg.99]    [Pg.263]    [Pg.467]    [Pg.54]    [Pg.118]    [Pg.126]    [Pg.294]    [Pg.362]    [Pg.392]    [Pg.68]    [Pg.23]    [Pg.168]    [Pg.349]    [Pg.421]    [Pg.166]   


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DRIFT (diffuse-reflection Fourier-transform

DRIFT Fourier transform

DRIFT Fourier transform spectroscopy

DRIFT transform spectroscopy

DRIFTS (diffuse reflectance infrared Fourier transform

DRIFTS infrared Fourier transform

Diffuse Reflectance IR (Fourier Transform) Spectroscopy (DRIFT)

Diffuse reflectance Fourier transform DRIFT)

Diffuse reflectance Fourier transform DRIFT) infrared spectrometry

Diffuse reflectance IR Fourier transform DRIFT)

Diffuse reflectance infrared Fourier transform DRIFT) studies

Diffuse reflectance infrared Fourier-transform spectroscopy, DRIFTS

Diffused reflectance IR Fourier transform spectroscopy DRIFTS)

Drift

Drifting

Fourier transform infrared spectroscopy DRIFT

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