Metal-Organic Framework Stationary Phases for One- and Two-Dimensional Micro-Gas Chromatographic Separations of Light Alkanes and Polar Toxic Industrial Chemicals
Author(s) -
Douglas Read,
Colin H. Sillerud,
Joshua J. Whiting,
Komandoor E. Achyuthan
Publication year - 2020
Publication title -
journal of chromatographic science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.362
H-Index - 56
eISSN - 1945-239X
pISSN - 0021-9665
DOI - 10.1093/chromsci/bmaa005
Subject(s) - chemistry , butane , propane , gas chromatography , chromatography , gravimetric analysis , methanol , metal organic framework , alkane , pentane , flame ionization detector , analytical chemistry (journal) , two dimensional gas , adsorption , hydrocarbon , organic chemistry , catalysis
Despite promising advances with metal-organic frameworks (MOFs) as stationary phases for chromatography, the application of MOFs for one- and two-dimensional micro-gas chromatography (μGC and μGC × μGC) applications has yet to be shown. We demonstrate for the first time, μGC columns coated with two different MOFs, HKUST-1 and ZIF-8, for the rapid separation of high volatility light alkane hydrocarbons (natural gas) and determined the partition coefficients for toxic industrial chemicals, using μGC and μGC × μGC systems. Complete separation of natural gas components, methane through pentane, was completed within 1 min, with sufficient resolution to discriminate n-butane from i-butane. Layer-by-layer controlled deposition cycles of the MOFs were accomplished to establish the optimal film thickness, which was validated using GC (sorption thermodynamics), quartz-crystal microbalance gravimetric analysis and scanning electron microscopy. Complete surface coverage was not observed until after ~17 deposition cycles. Propane retention factors with HKUST-1-coated μGC and a state-of-the-art polar, porous-layer open-tubular (PLOT) stationary phase were approximately the same at ~7.5. However, with polar methanol, retention factors with these two stationary phases were 748 and 59, respectively, yielding methanol-to-propane selectivity factors of ~100 and ~8, respectively, a 13-fold increase in polarity with HKUST-1. These studies advance the applications of MOFs as μGC stationary phase.
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