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(a) What are the characteristics of an ideal carrier gas?

(b) Why do H2 and He allow more rapid linear velocities in gas chromatography thanN2 does, without loss of column efficiency (Figure 24-11)?

Short Answer

Expert verified

(a.) the carrier gas should have high quality because impurities can damage the stationary phase

(b.)H=A+Bux+Cux(

Step by step solution

01

To the characteristics of an ideal carrier gas

(a)

One characteristic of an ideal carrier gas is that it must have high optimal velocity to achieve good separation between compounds being analyzed. The carrier gas must also have a high diffusion coefficient so that solutes can diffuse more rapidly and thus result to a better resolution. The velocities of the carrier gas should also be 1.5-2 times greater than the optimum velocity at the minimum of the van Deemter curve, to provide maximum efficiency per unit time. Furthermore, the carrier gas should have high quality because impurities can damage the stationary phase

02

Step 2:H2and He allow more rapid linear velocities in gas chromatography than N2does, without loss of column efficiency (Figure 24-11)

(b)

H2and He allow more rapid linear velocities in gas chromatography than N2without loss of column efficiency, because solutes diffuse more rapidly through H2 than through role="math" localid="1654769938173" N2In the van Deemter equation, a small value of the mass transfer term (CUx) results to a solute with faster diffusion between phases.

H=A+Bux+Cux

where:

-H=plateheight-ux+linearvelocity-A,B,andC=constantsforagivencolumnandstationaryphase

For a thin stationary phase(^0.5μ³¾), the mass transfer is dominated by slow diffusion through the mobile phase (Cm) than through the stationary phase(Cs).

That is,Cs<<Cm.

03

Step 3The expressions for CmareCm are shown below:

CM=1+6k+11K224(k+1)2×r2DmCs=2K3(K+12×d2Ds

where:

.k=retentionfactor.r=columnradius.d=thicknessofstationaryphase.Dm=diffusioncoefficientofsolutienmobilephase.Ds=diffusioncoefficientofsolutienstationaryphase

For a given column with fixed values of r and k, the only variable that can affect the rate of mass transfer in the mobile phase is the diffusion coefficient. Comparing the diffusion coefficients of the three gases, they follow the order:H2>H>N2.

Thus,role="math" localid="1654773241068" H2andH provide ease of diffusion for solutes.

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Most popular questions from this chapter

(a) When a solution containing234mg of pentanol (FM 88.15) and237mg of 2,3 -dimethyl-2-butanol (FM 102.17) in10.0ml was separated, relative peak areas were pentanol: 2,3 -dimethyl-2-butanol = 0.913 : 1.00. Considering pentanol to be the internal standard, find the response factor for 2,3 -dimethyl-2-butanol.

(b) Use Equation 24-8 to find the areas for pentanol and 2,3 -dimethyl-2-butanol in Figure 24-8.

(c) The concentration of pentanol internal standard in the unknown solution was93.7mM . What was the concentration of 2,3 -dimethyl2-butanol?

Use Table 24-2 to predict the elution order of the following compounds from columns containing (a) poly (dimethyl siloxane), (b) (diphenyl)0.35(dimethyl)0.65polysiloxane, and (c) poly (ethylene glycol): hexane, heptane, octane, benzene, butanol, 2-pentanone.

3. (a) What are the advantages and disadvantages of using a narrower open tubular column?

(b) What are the advantages and disadvantages of using a longer open tubular column?

(c) What are the advantages and disadvantages of using a thicker film of stationary phase?

The graph shows van Deemter curves for n-nonane at . in the 3.0-m-long microfabricated column in Box 24-2 with a -thick stationary phase.

van Deemter curves. [Data from G. Lambertus, A. Elstro, K. Sensenig, J. Potkay, M. Agah, S. Scheuening, K. Wise, F. Dorman, and R. Sacks, "Design, Fabrication, and Evaluation of Microfabricated Columns for Gas Chromatography," Anal. Chem. 2004, 76, 2629.]

(a) Why would air be chosen as the carrier gas? What is the danger of using

air as carrier gas?

(b) Measure the optimum velocity and plate height for air and for carrier

gases.

(c) How many plates are there in the 3 -m-long column for each carrier gas at

optimum flow rate?

(d) How long does unretained gas take to travel through the column at

optimum velocity for each carrier gas?

(e) If stationary phase is sufficiently thin with respect to column diameter, which of the two mass transfer terms (23-40 or 23-41) becomes negligible?

Why?

(f) Why is the loss of column efficiency at high flow rates less severe for

than for air carrier gas?

(a) How can you improve the resolution between two closely spaced peaks in gas chromatography?

(b) What approach from (a) would be most cost effective (not involve a purchase)?

See all solutions

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