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Ascentis® Express RP-Amide, 5 μm HPLC Column

5 μm particle size, L × I.D. 10 cm × 3 mm

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About This Item

Codice UNSPSC:
41115700
NACRES:
SB.52

Materiali

stainless steel column

Livello qualitativo

agenzia

suitable for USP L60

Nome Commerciale

Ascentis®

Caratteristiche

endcapped

Produttore/marchio commerciale

Ascentis®

Confezionamento

1 ea of

Parametri

60 °C temp. range
600 bar max. pressure (9000 psi)

tecniche

HPLC: suitable
LC/MS: suitable

Lungh. × D.I.

10 cm × 3 mm

Area superficiale

90 m2/g

Impurezze

<5 ppm metals

Matrice

Fused-Core® particle platform
superficially porous particle

Gruppo funzionale matrice

amide, alkyl phase

Dimensione particelle

5 μm

Dimensione pori

90 Å pore size

Intervallo di pH

2-9

applicazioni

food and beverages

Tecnica di separazione

reversed phase

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Descrizione generale

Ascentis Express 5 μm RP-Amide is a high-speed, high-performance liquid chromatography column based on the highly efficient Fused-Core® particle design. The Fused-Core particle provides a thin porous shell of high-purity silica surrounding a solid silica core. This particle design exhibits very high column efficiency due to the shallow diffusion paths in the 0.6 μm thick porous shell and the highly uniform overall particle size of 5 μm. The one-step bonded, endcapped, amide-based, polar-embedded stationary phase of Ascentis Express 5 μm RP-Amide provides a stable, reversed-phase packing with decreased hydrophobic character. Ascentis Express RP-Amide can be used for basic, acidic, or neutral compounds with orthogonal selectivity from C18 or C8. The polar-embedded Ascentis Express 5 μm RP-Amide columns are compatible with 100% aqueous mobile phases without suffering from “phase collapse”.

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Note legali

Ascentis is a registered trademark of Merck KGaA, Darmstadt, Germany
Fused-Core is a registered trademark of Advanced Materials Technology, Inc.

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Today sub-2 microm packed columns are very popular to conduct fast chromatographic separations. The mass-transfer resistance depends on the particle size but some practical limits exist not to reach the theoretically expected plate height and mass-transfer resistance. Another approach applies

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