|
2008 |
|
|
|
"A Stepwise Strategy for Developing a Robust HPLC Separation for
a Novel Diabetes Compound" "Computerized Design of Robust Gradient HPLC Methods" |
|
2006 |
|
|
|
"Application of a
column selection system and DryLab software for high-performance liquid
chromatography method development" "Retention modeling in ternary solvent gradient elution reversed
phase chromatography using 30 mm columns" |
|
|
|
|
2005 |
|
|
|
"Searching for Robust HPLC Methods: Csaba Horváth and the
Solvophobic Theory" "Examples of
Computer-assisted Robustness Studies", |
|
|
|
|
2004 |
|
|
|
"Microemulsion
electrokinetic chromatography of drugs varying in charge and hydrophobicity
Part II: Strategies for optimization of separation," |
|
2003 |
|
|
|
"Computer-Assisted
Method Development and Optimizationin High-Performance Liquid
Chromatography," |
|
|
|
|
2002 |
|
|
|
"Optimizing
Multilinear Gradients in HPLC " "Advanced high
performance liquid chromatography method development: Discovering unexpected
choices in chromatography", H.J.Rieger, I.Molnar, J.Chromatogr., 2002,
948, 43. (2002) "Computerized
design of separation strategies in reversed-phase liquid chromatography:
Development of DryLab software", I.Molnar, J.Chromatogr. A, 956 (2002) (pdf) "Temperature
Selectivity in Reversed-Phase High Performance Liquid Chromatography,"
John W. Dolan, "Two-dimensional
optimization using different pairs of variables for the reversed-phase
high-performance liquid chromato-graphic separation of a mixture of acidic
compounds." T.H.Jupille, J.W.Dolan, L.R.Snyder, I.Molnar, J.Chromatogr.,
948 (2002) 35. "Computer-assisted
optimization in the development of a high performance liquid chromatographic
method for the analysis of kava pyrones in Piper methysticum
preparations.", A.H.Schmidt, I.Molnar, J.Chromatogr., 948 (2002) 51. (pdf) "Advanced high
performance liquid chromatography method development: Discovering unexpected
choices in chromato-graphy", H.J.Rieger, I.Molnar, J.Chromatogr., 948
(2002) 43. "Lipophilicity
and pKa Estimates from Gradient HighPerformance Liquid Chromatography",
Roman Kaliszan, Piotr Haber, Tomasz Baczek, Danuta Siluk, and Klara Valko, J.
Chromatogr. A., 965, 117 (2002). "Computer
Optimization of the RP-HPLC Separation of Some Taxoids from Yew
Extracts,", M.L. Hajnos, M. Waksmundzka-Hajnos, K. Glowniak, Acta
Chromatographica, 12, 211 (2002). "Variability of Column Selectivity for Reversed-Phase High-Performance Liquid Chromatography. Compensation by Adjustment of Separation Conditions", J.W. Dolan, L.R. Snyder, T.H. Jupille, and N.S. Wilson, J Chromatogr. A., 960 (2002) 51-67. |
|
|
|
|
2001 |
|
|
|
" Unexpected Results in Chromatography", I.Molnar,
LC-GC-International, 14,4 (2001) 231. Unusual experiments can provide surprisingly good analytical
solutions. When developing chromatographic methods, analysts use in most
cases a combination of experience and instinct to choose initial starting
conditions. This is often followed by a period of trial-and-error
optimization, until the desired method is achieved. The article illustrates,
how the process of chromatographic method " Computer-Assisted Scale-Up from Analytical HPLC to Preparative
MPLC for the Separation of Phenolic Compounds ", " Automatization for Development of HPLC Methods ", " Computer-Assisted High-Performance Liquid Chromatography Method
Development with Applications to the Isolation and Analysis of Phytoplankton
Pigments ", Laurie Van Heukelem and Crystal S. Thomas, J. Chromatogr. A.,
910, 31 (2001). "Computer-Assisted Optimization of Reversed-Phase HPLC Isocratic
Separations of Neutral Compounds", T.Baczek, R.Kaliszan, H.A.Claessens,
M.A.van Straten, LC-GC-Europe, 14,6, (2001) 304. |
|
|
|
|
2000 |
|
|
|
"Computer Simulation for the Convenient Optimization of Isocratic
Reversed-Phase Liquid Chromatography Separations by Varying Temperature and
Mobile Phase Strength (%B)", R.G.Wolcott, J.W. Dolan, and L.R. Snyder,
J. Chromatogr. A. 869, (2000) 3. " Selectivity Differences for C18 Reversed-Phase Columns as a
Function of Temperature and Gradient Steepness. I. Optimizing Selectivity and
Resolution" , " Selectivity Differences for C18 Reversed-Phase Columns as a
Function of Temperature and Gradient Steepness. II. Minimizing Column
Reproducibility Problems ", , J.W. Dolan, L.R. Snyder and T. Blanc, J.
Chromatogr. A., 897, 51 (2000). " Reversed-Phase Separation of Isomers by Varying Temperature and
Gradient Time ", , L.R. Snyder and J.W. Dolan, J. Chromatogr. A, 892,
107 (2000). " Gradient Elution Chromatography ", J.W. Dolan and L.R.
Snyder, in Encyclopedia of Analytical Chemistry: Instrumentation and
Applications, R.A. Meyers, (Ed.), John Wiley & Sons, Ltd., Chichester,
Vol. 13, pp. 11342-11360 (2000). "Transferability of Liquid Chromatography Methods Carried Out at
Temperatures Other than Ambient ," R. G. Wolcott, J.W. Dolan, L.R.
Snyder, S.R. Bakalyar, M.A. Arnold, and J.A. Nichols,J. Chromatogr. A. 869,
(2000) 211. |
|
|
|
|
1999 |
|
|
|
"Computer Simulation for the Convenient
Optimization of Isocratic Reversed-Phase Liquid Chromatography Separations by
Varying Temperature and Mobile Phase Strength (%B)," R.G. Wolcott, J.W.
Dolan, and L.R. Snyder, J. Chromatogr. A. Chromatogr. A. 869, 3 (1999). "Reversed-Phase Separation of Complex Samples by Optimizing
Temperature and Gradient Time. I. Peak Capacity Considerations," J.W.
Dolan, L.R. Snyder, N.M. Djordjevic, D.W. Hill, L. Van Heukelem, and T.J.
Waeghe, (summary) The ability of gradient elution to separate complex samples
containing 9–48 components was studied using changes in temperature and
gradient time to control selectivity and maximize resolution. It is concluded
that samples with >15–20 components will be difficult to separate with Rs
> 1. Other means of optimizing resolution (mixed organic solvents) appear
no better in this respect. "Reversed-Phase Separation of Complex Samples by Optimizing
Temperature and Gradient Time. II. The Use of 2-Run Assay Procedures,"
J.W. Dolan, L.R. Snyder, N.M. Djordjevic, D.W. Hill, L. Van Heukelem, and
T.J. Waeghe, (summary) Samples containing more than 15–20 components are difficult
to separate in a single HPLC run. However, if two runs are carried out with
different conditions, it is possible to separate some compounds in one run
and other compounds in the second run. Together, this may result in
separation of every component in one run or the other. "Reversed-Phase Separation of Complex Samples by Optimizing
Temperature and Gradient Time. III. Improving the Accuracy of Computer
Simulation," J.W. Dolan, L.R. Snyder, L.C. Sander, P. Habner, T. Baczek,
and R. Kaliszan, (summary) A detailed examination is made of the accuracy of DryLab
predictions when either gradient time, %B or temperature is varied. It is
concluded that these predictions should be generally adequate, except in the
case of using gradient data for isocratic predictions. The latter are less
reliable, with an average error equivalent to 0.5–1.0 Rs units. "Gradient Elution Chromatography," in Encyclopedia of
Analytical Chemistry: Instrumentation and Applications, J.W. Dolan and L.R.
Snyder (John Wiley & Sons, New York). "Essential Guides to Method Development in HPLC," in
Encyclopedia of Separation Science, J.W. Dolan and L.R. Snyder (Academic
Press, London). "A New Approach for the Reversed-Phase Separation of Peptide and
Protein Mixtures," J.W. Dolan and L.R. Snyder, LC•GC, 17(4S),
S17–S24 (1999). |
|
|
|
|
1998 |
|
|
|
"Reversed-Phase Gradient Elution: How to Get Better Results with
Less Work," I. Molnar, L.R. Snyder, and J.W. Dolan, LC•GC Intern., 11,
374 (1998). "Systematic Approaches to HPLC Method Development for
Reversed-Phase Separation," L.R. Snyder and J.W. Dolan, Chem. Anal.(Warsaw),
43, 495 (1998). "Simultaneous Variation of Temperature and Gradient Steepness for
Reversed-Phase HPLC Method Development. I. Application to 14 Different
Samples Using Computer Simulation," J.W. Dolan, L.R. Snyder, N,M.
Djordjevic, D.W. Hill, D.L. Saunders, L. Van Heukelem and T.J. Waeghe, J.
Chromatogr. A, 803, 1 (1998). "Simultaneous Variation of Temperature and Gradient Steepness for
Reversed-Phase HPLC Method Development. II. The Use of Further Changes in
Conditions," J.W. Dolan, L.R. Snyder, D.L. Saunders and L. Van Heukelem,
J. Chromatogr. A, 80 , 33 (1998). "The Linear-Solvent-Strength Model of Gradient Elution,"
L.R. Snyder and J.W. Dolan, Adv. Chromatogr., 38,
157–160 (1998). " A Computer-Assisted Strategy for HPLC Method Development. II.
Simultaneous Changes in Temperature and Gradient Steepness Combined with
Change in One or More Other Variables ", J.W. Dolan, L.R. Snyder, D.L.
Saunders, and L. Van Heukelem, J. Chromatogr. A, 803 (1998). "Maintaining Fixed Band Spacing when Changing Column Dimensions
in Gradient Elution," J.W. Dolan and L.R. Snyder, J. Chromatogr.,
799, 21 (1998). "Robuste
HPLC-Methoden", I. Molnar, LaborPraxis, Juli-September 1998 |
|
|
|
|
1997 |
|
|
|
"Validation of Robust Chromatography Methods Using
Computer-Assisted Method Development for Quality Control. II," Imre
Molnar, LC•GC Internat., 10(1), 32 (1997). "Computer-Assisted Separation by HPLC with Diode Array Detection
and Quantitative Determination of Furanocoumarins from Archangelica
Officinalis," W. Markowski and K.L. Czapinska, Chem. Anal. (Warsaw) 42,
353 (1997). "Determination of 1,8-Dihydroxyanthranoids in Senna "
Wolfgang Metzger and Klaus Reif, J. Chromatogr., A., 740, 133 (1996). "Computer Optimization of the High-Performance Liquid
Chromatographic Enantioseparation of a Mixture of 4-dinitrophenyl Amino Acids
on a Quinine Carbamate-Type Chiral Stationary Phase Using DryLab," M.
Lammerhofer, P. Di Eugenio, I. Molnar, and W. Lindner, J. Chromatog. B, 689,
123 (1997). "Changing Reversed-Phase High Performance Liquid Chromatography
Selectivity. Which Variables Should be Tried First?" L.R. Snyder, J.
Chromatog. B, 689, 105 (1997). "Selectivity Control in HPLC Method Development," L.R.
Snyder, J.W. Dolan, I. Molnar, and N. M. Djordjevic, LC•GC, 15(2),
136 (1997). |
|
|
|
|
1996 |
|
|
|
"Combined Use of Temperature and Solvent Strength in
Reversed-Phase Gradient Elution. I. Predicting Separation as a Function of
Temperature and Gradient Conditions," P.L. Zhu, L.R. Snyder, J.W. Dolan,
N.M. Djordjevic, D.W. Hill, L.C. Sander and T.J. Waeghe, J. Chromatogr. A, 756,
21(1996). "Combined Use of Temperature and Solvent Strength in
Reversed-Phase Gradient Elution. II. Comparing Selectivity for Different
Samples and Systems," P.L. Zhu, J.W. Dolan, and L.R. Snyder, J. Chromatog.
A, 756, 41 (1996). "Combined Use of Temperature and Solvent Strength in
Reversed-Phase Gradient Elution. III. Selectivity for Ionizable Samples as a
Function of Sample Type and pH," P.L. Zhu, J.W. Dolan, L.R. Snyder, D.W.
HIll, L. Van Heukelem, and T.J. Waeghe," J. Chromatog. A,
756, 51 (1996). "Combined Use of Temperature and Solvent Strength in Reversed-Phase
Gradient Elution. IV. Selectivity for Neutral (non-ionized) Samples as a
Function of Sample Type and Other Separation Conditions," P.L. Zhu, J.W.
Dolan, L.R. Snyder, N.M. Djordjevic, D.W. HIll, J.-T. Lin, L.C. Sander, and
L. Van Heukelem, J. Chromatog. A, 756, 63
(1996). "Computer Optimization for RP-HPLC Separation of Some
Nucleosides," T.H. Dzido and A. Sory, Chem. Anal. (Warsaw), 41,
113 (1996). "Validation of Robust Chromatography Methods Using
Computer-Assisted Method Development for Quality Control. I." Imre
Molnar, LC•GC Internat., 9(12), 800 (1996). "High-Performance Liquid Chromatographic Separation of the
Impurities in a Pharmaceutical Raw Material with the Aid of Computer
Simulation," H.W. Bilke, I. Molnar, and Ch. Gernet, J. Chromatog. A, 729,
189 (1996). "The Optimization of Peptide Mapping via Computer
Simulation," L.R. Snyder in New Methods in Peptide Mapping for the
Characterization of Proteins, W. Hancock, ed., CRC Press (Boca Raton,
Florida, 1996), p. 31. "Initial Experiments in HPLC Method Development. I. Use of a
Starting Gradient Run," L.R. Snyder and J.W. Dolan, J. Chromatog. A., 721,
1 (1996). "Initial Experiments in HPLC Method Development. II. Recommended
Approach and Conditions for Isocratic Separation," J.L. Lewis, L.R.
Snyder, and J.W. Dolan, J. Chromatog. A., 721, 15
(1996). "New Approaches to HPLC Method Development," L.R. Snyder,
Today's Chemist at Work, 5(1) 29 (1996). |
|
|
|
|
1994 |
|
|
|
"Computer-Assisted Rapid Development of Gradient High-Performance
Liquid Chromatographic Methods for the Analysis of Antibiotics," R.
Bonfichi, J. Chromatog. A, 678, 213 (1994). "Separation of Arachidonic Acid Metabolites by On-Line Extraction
and Reversed-Phase High-Performance Liquid Chromatography Optimized by
Computer Simulation," H. Fritsch, I. Molnar, and M. Wurl, J. Chromatog. A,
684, 65 (1994). "Temperature as a Variable in Reversed-Phase HPLC Separation of
Peptide and Protein Samples. I. Optimizing the Separation of a Growth Hormone
Tryptic Digest," W. Hancock, R.C. Chloupek, J.J. Kirkland, and L.R.
Snyder, J. Chromatogr. A, 686, 31 (1994). "Temperature as a Variable in Reversed-Phase HPLC Separation of
Peptide and Protein Samples. II. Selectivity Effects Observed in the
Separation of Several Peptide and Protein Mixtures," R.C. Chloupek, W.
Hancock, B.A. Marchylo, J.J. Kirkland, B. Boyes, and L.R. Snyder, J.
Chromatogr. A,
686, 45
(1994). |
|
|
|
|
1993 |
|
|
|
"Computergestutzte
Optimierung in der Chromatographie," I. Molnar, LaborPraxis, X(12), 40 (1993). "Use of Computer Simulations in the Development of Gradient and
Isocratic High-Performance Liquid Chromatography Methods for Analysis of Drug
Compounds and Pharmaceutical Intermediates," L. Wrisely, J. Chromatogr.,
628, 191 (1993). "Computer-assisted Optimization of the Gas Chromatographic
Separation of Equine Estrogens," Arya Jayatilaka and Colin F. Poole, J.
Chromatogr., 617, 19 (1993). |
|
|
|
|
1992 |
|
|
|
"Optimization of
the Separation of the Rp and Sp Diastereomers of Phosphate-methylated DNA and
RNA Dinucleotides," A.J.J.M. Coenen, L.H.G. Henckens, Y Mengerink, Sj
van der Wal, P.J.L.M. Quaedifleig, L.H. Koole, and E.M. Meijer, J.
Chromatogr., 596,
59 (1992). "Multiparameter Computer Simulation for HPLC Method
Development," J.W. Dolan, J.A. Lewis, W.D. Raddatz, and L.R. Snyder, Am.
Lab., 24(3), 40D (1992). "Computer Simulation as a Tool for the Rapid Optimization of the
High-Performance Liquid Chromatographic Separation of a Tryptic Digest of
Human Growth Hormone," R.C. Chloupek, W.S. Hancock, and L.R. Snyder, J.
Chromatogr., 594, 65 (1992). "Computer-Assisted Enhancement of Gas Chromatographic Principles
for the Teaching Laboratory. Prediction of Retention Data and Chromatographic
Separation," R.L. Grob, E.F. Barry, S. Leepipatpiboon, J.M. Ombaba, and
L.A. Colon, J. Chromatog. Sci., 30, 177 (1992). "Application of the Gradient Elution Technique. Demonstration
with a Special Test Mixture and the DryLab G/plus Method Development
Software," R. Dappen and I. Molnar, J. Chromatog., 592,
133 (1992). "Determination of By-Products in Atenolol," H. Hoffmann and
I. Molnar, Pharm. Ztg. Wiss., 1(5), 137 (1992). |
|
|
|
|
1991 |
|
|
|
"Software for Chromatographic Method Development," A.
Drouen, J. W. Dolan, L.R. Snyder, A. Poile, and P. Schoenmakers, LC•GC, 9,
714 (1991). "Practical Applications of Computer Simulation for Gas
Chromatography Method Development," G.N. Abbay, E.F. Barry, S.
Leepipatpiboon, T. Ramstad, M.C. Roman, R.W. Siergiej, L.R. Snyder, and W.L.
Winniford, LC•GC, 9(2), 1001 (1991). "Computer Simulation of Gradient Elution Separation. Accuracy of
Predictions for Nonlinear Gradients," J.D. Stuart, D.D. Lisi, and L.R.
Snyder, J. Chromatogr., 555, 1 (1991). "Separation and Detection of Oxidation Products in Neurolite Raw
Material," P.A. Ryan, B.A. Ewels, and J.L. Glajch, J. Chromatogr., 550,
549 (1991). "Computer Simulation of Isocratic Retentions of Alkylketones
Using Gradient Data," J.D. Stuart and D.D. Lisi, J. Chromatogr., 550,
77 (1991). "Computer-Aided Optimization of High-Performance Liquid
Chromatographic Analysis of Flavonoids from Some Species of the Genus
Althaea," T.H. Dzido, E. Soczewinski, and J. Gudej, J. Chromatogr., 550,
71 (1991). "Fast Development of a Robust High-Performance Liquid
Chromatographic Method for Ginkgo biloba Based on Computer Simulation,"
I. Molnar, K.H. Gober, and B. Christ, J. Chromatogr., 550,
39 (1991). "Computer Simulation as an Aid in Method Development for Gas
Chromatography. III. Examples of Its Application," L.R. Snyder, D.E.
Bautz, and J.W. Dolan, J. Chromatogr., 541, 34
(1991). "Computer Simulation as an Aid in Method Development for Gas
Chromatography. II. Changes in Band Spacing as a Function of
Temperature," J.W. Dolan, L.R. Snyder, and D.E. Bautz, J. Chromatogr., 541,
21 (1991). "Computer Simulation as an Aid in Method Development for Gas
Chromatography. I. The Accurate Prediction of Separation as a Function of
Experimental Conditions," D.E. Bautz, J.W. Dolan, and L.R. Snyder, J.
Chromatogr., 541, 1 (1991). "High-Performance Liquid Chromatography Retention Index and
Detection of Nitrated Polycyclic Aromatic Hydrocarbons," T-Y. Liu and A
Robbat, Jr., J. Chromatogr., 539, 1 (1991). "Computer-Assisted HPLC Method Development in a Pharmaceutical
Laboratory," N.G. Mellish, LC•GC, 9, 845
(1991). |
|
|
|
|
1990 |
|
|
|
"Computer-Assisted Optimization of Temperature-Programmed Gas
Chromatographic Separations," D.E. Bautz and J.W. Dolan, Am. Lab., 22(17),
40T (1990). "Separation of Large Biomolecules by Gradient Elution," L.R.
Snyder in HPLC of Biological Macromolecules, F.E. Regnier and K.M. Gooding,
eds., Marcel Dekker (New York, 1990), p. 231. "The 30S Ribosomal Proteins as a Model for the Optimized
Separation of Large Biomolecules by Reversed-Phase HPLC," B.F.D. Ghrist,
B.S. Cooperman, and L.R. Snyder in HPLC of Biological Macromolecules, F.E.
Regnier and K.M. Gooding, eds., Marcel Dekker (New York, 1990), p. 403. "Computer Simulation (Based on a Linear-Elution-Strength
Approximation) as an Aid for Optimizing Separations by Programmed-Temperature
GC," D.E. Bautz, J.W. Dolan, W.D. Raddatz, and L.R. Snyder, Anal. Chem.,
62, 1560 (1990). "High-Performance Liquid Chromatographic Computer Simulation
Based on a Restricted Multiparameter Approach. II. Applications," L.R.
Snyder, J. W. Dolan, and D.C. Lommen, J. Chromatogr., 535,
75 (1990). "High-Performance Liquid Chromatographic Computer Simulation
Based on a Restricted Multiparameter Approach. I. Theory and
Verification," J. W. Dolan, D.C. Lommen, and L.R. Snyder, J.
Chromatogr., 535, 55 (1990). "Computer Simulation for Optimization of HPLC of Some Phenolic
Pollutants," W. Markowski, T.H. Dzido, and E. Soczewinski, J.
Chromatogr., 523, 81 (1990). "Liquid Chromatography Expert Systems: A Modular Approach,"
J.W. Dolan and L.R. Snyder, Am. Lab., 22(8),
50 (1990). "A Method Development System for Liquid Chromatography,"
J.R. Gant, F.L. Vandemark, and A.F. Poile, Am. Lab., 22
(8), 15 (1990). "Reproducibility Problems in Gradient Elution Caused by Differing
Equipment," L.R. Snyder and J.W. Dolan, LC•GC, 8,
524 (1990). "Use of High-Performance Liquid Chromatography in the
Pharmaceutical Industry," F. Erni, J. Chromatogr.,
509, 141 (1990). "Integration of Computer-Aided Method Development Techniques in
LC," J.W. Dolan and L.R. Snyder. J. Chromatog. Sci.,
28, 379 (1990). |
|
|
|
|
1989 |
|
|
|
"High-Performance Liquid Chromatography of Thermus Aquaticus 50S
and 30S Ribosomal Proteins," I. Molnar, R.I. Boysen, and V.A. Erdmann,
Chromatographia, 28(1/2), 39 (1989). "Predicting Reversed-Phase Gradient Elution Separations by
Computer Simulation: A Comparison of Two Programs," J. Schmidt, J.
Chromatogr., 485, 421 (1989). "Separation of Mixtures of OPA-Derivatized Amino Acids by Reversed-Phase
Gradient Elution, The Accuracy of Computer Simulation for Predicting
Retention and Bandwidth," J.D. Stuart, D.D Lisi, and L.R. Snyder, J.
Chromatogr., 485, 657 (1989). "Computer-Assisted Development of a High-Performance
Chromatographic Method for Fractionating Selected Nitro Derivatives of
Polyaromatic Hydrocarbons," D.J. Thompson and W.D. Ellenson, J.
Chromatogr., 485, 607 (1989). "Development of a High-Performance Liquid Chromatographic Method
for Fluoroxypyr Herbicide and Metabolites Using Computer Simulation with
DryLab G Software," R.G. Lehman and J.R. Miller, J. Chromatogr., 485,
581 (1989). "Practical Approach for High-Performance Liquid Chromatographic
Method Development: Assaying Synthetic Intermediates of a Leukotriene
Inhibitor," J. Fulper, J. Chromatogr., 485,
579 (1989). "Peak Tracking in High-Performance Liquid Chromatography Based on
Normalized Areas. A Ribosomal Protein Sample as an Example," I. Molnar,
R. Boysen, and P. Jekow, J. Chromatogr., 485,
569 (1989). "Prediction of Retention Times in Ion-Exchange Chromatography,"
T. Sasegawa, Y. Sakamoto, T. Hirose, T. Yoshida, Y. Kobayashi, and Y. Sato,
J. Chromatogr., 485, 533 (1989). "Computer-Aided Optimization of High-Performance Liquid
Chromatography in the Pharmaceutical Industry," E.P. Lankmayr, W.
Wegscheider, J.C. Gfeller, N.M. Djordjevic, and B. Schreiber, J. Chromatogr.,
485, 183 (1989). "DryLab Computer Simulation for HPLC Method Development. II.
Gradient Elution," J.W. Dolan, D.C. Lommen, and L.R. Snyder, J.
Chromatogr., 485, 91 (1989). "DryLab Computer Simulation for HPLC Method Development. I.
Isocratic Elution," L.R. Snyder. J.W. Dolan, and D.C. Lommen, J.
Chromatogr., 485, 63 (1989). |
|
|
|
|
1988 |
|
|
|
"Design of Optimized High-Performance Liquid Chromatographic
Gradients for the Separation of Either Small or Large Molecules. II.
Background and Theory," B.F.D. Ghrist and L.R. Snyder, J. Chromatogr., 459,
25 (1988). "Design of Optimized High-Performance Liquid Chromatographic
Gradients for the Separation of Either Small or Large Molecules. I.
Minimizing Errors in Computer Simulations," B.F.D. Ghrist, B.S.
Cooperman, and L.R. Snyder, J. Chromatogr., 459, 1
(1988). "Computer Simulation in HPLC: Making Multistep Gradients
Practical," T.H. Jupille, J.W. Dolan, and L.R. Snyder, Am. Lab., 20(12),
20 (1988). "Quantitative Determination of Limonin in Citrus Juices by HPLC
Using Computerized Solvent Optimization," P.E. Shaw and C.W. Wilson, J.
Chromatog. Sci., 26, 478 (1988). "Computer Simulation as a Means of Developing an Optimized
Reversed-Phase Gradient Separation," J.W. Dolan, L.R. Snyder, and M.A.
Quarry, Chromatographia, 24, 261 (1988). "Developing a Gradient Elution Method for Reversed-Phase
HPLC," J.W. Dolan and L.R. Snyder, LC•GC, 5, 970
(1988). "Design of Optimized High-Performance Liquid Chromatographic
Gradients for the Separation of Either Small or Large Molecules. III. An
Overall Strategy and its Application to Several Examples," B.F.D. Ghrist
and L.R. Snyder, J. Chromatogr., 459, 43
(1988). "Solvent-Strength Selectivity in Reversed-Phase HPLC," L.R.
Snyder, M.A. Quarry, and J.L. Glajch, Chromatographia, 24, 33 (1988). |
|
|
|
|
1987 |
|
|
|
"Selectivity in Reversed-Phase Gradient Elution as a Function of
Gradient Conditions," J.W. Dolan and L.R. Snyder, Chromatography, 2,
49 (1987). "Predicting Bandwidth in the HPLC Separation of Large
Biomolecules. Predicting Bandwidth in the HPLC Separation of Large
Biomolecules. A General Model for the Four Common HPLC Methods," M.A.
Stadalius, B.F.D. Ghrist, and L.R. Snyder, J. Chromatogr., 387,
21 (1987). "HPLC Method Development and Column Reproducibility," J.W.
Dolan, L.R. Snyder, and M.A. Quarry, Am. Lab., 19(8),
43 (1987). "Band Spacing in Reversed-Phase HPLC as a Function of Solvent
Strength. A Simple and Fast Alternative to Solvent Optimization for Method
Development," M.A. Quarry, R.L. Grob., L.R. Snyder, J.W. Dolan, and M.
Rigney, J. Chromatogr., 384, 163 (1987). "Computer Simulation in HPLC Method Development. Reducing the
Error of Predicted Retention Times," L.R. Snyder and M.A. Quarry, J.
Liq. Chromatogr., 10, 1789 (1987). "Predicting Bandwidth in the HPLC Separation of Large
Biomolecules. Size-Exclusion Studies and the Role of Solute Stokes-Diameter
versus Particle Pore-Diameter," B.F.D. Ghrist, M.A. Stadalius, and L.R.
Snyder, J. Chromatogr., 387, 1 (1987). |
|
|
|