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Evaluating the advantages of higher heat conductivity in a recently developed type of core-shell diamond stationary phase particle in UHPLC

Lesko, Marek (author)
Karlstads universitet,Institutionen för ingenjörs- och kemivetenskaper (from 2013),Rzeszów University of Technology, POL
Samuelsson, Jörgen, 1971- (author)
Karlstads universitet,Institutionen för ingenjörs- och kemivetenskaper (from 2013)
Åsberg, Dennis, 1988- (author)
Karlstads universitet,Institutionen för ingenjörs- och kemivetenskaper (from 2013)
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Kaczmarski, Krzysztof (author)
Rzeszów University of Technology, POL
Fornstedt, Torgny, 1957- (author)
Karlstads universitet,Institutionen för ingenjörs- och kemivetenskaper (from 2013)
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 (creator_code:org_t)
Elsevier, 2020
2020
English.
In: Journal of Chromatography A. - : Elsevier. - 0021-9673 .- 1873-3778. ; 1625
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • In recent studies, the nature and magnitude of the temperature gradients developed in ultra-high pressure liquid chromatography (UHPLC), were found to be dependent on the heat conductivity properties of the column matrices, but also, on the principle used for controlling the temperature over the column. Here, we investigated the potential of using highly heat conductive diamond-based stationary phases (85 times higher than silica), for reducing the temperature gradients. The stationary phases investigated were a (i) Diamond Analytics FLARE column, based on particles comprised of a graphite core surrounded by a very thin diamond shell, and two silica hybrid columns: (ii) a core-shell silica Kromasil Eternity Shell column and (iii) a fully porous silica Kromasil Eternity XT column. Models were developed based on two-dimensional heat transfer theory and mass transfer theory, which were used to model the temperature profiles and the migration of an analyte band accounting for column efficiencies at different flow rates. For the silica-based columns, using water-controlled temperature mode, the temperature gradients along the column axes are suppressed whereas temperature gradients in the radial direction prevails resulting in decreased column efficiencies. Using these columns with air-controlled temperature mode, the radial temperature gradients are reduced whereas temperature gradients along the column prevails resulting in decreased retention times. With the Diamond FLARE column, there was no loss in column efficiency using the water-controlled temperature mode and the van Deemter curves are almost identical using both temperature control modes. Thus, for the Diamond FLARE column, in contrast to the silica-based columns, there are almost no losses of column efficiencies due to reduced radial temperature gradients independent on how the column temperature was controlled.

Subject headings

NATURVETENSKAP  -- Kemi (hsv//swe)
NATURAL SCIENCES  -- Chemical Sciences (hsv//eng)
NATURVETENSKAP  -- Kemi -- Analytisk kemi (hsv//swe)
NATURAL SCIENCES  -- Chemical Sciences -- Analytical Chemistry (hsv//eng)

Keyword

Column efficiency
Core-shell particles
Diamond FLARE column
Temperature control
Temperature gradient
Viscous heating
Diamonds
Efficiency
Heat conduction
High pressure liquid chromatography
Mass transfer
Shells (structures)
Silica
Thermal conductivity
Thermal gradients
Column temperature
Conductive diamonds
Controlled temperature
Mass transfer theories
Radial temperature gradients
Temperature profiles
Two-dimensional heat transfer
Ultra high pressure liquid chromatography (UHPLC)
Column chromatography
Kemi
Chemistry

Publication and Content Type

ref (subject category)
art (subject category)

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