| Literature DB >> 23648594 |
Toshio Miwa1, Atsushi Yamamoto, Mitsuru Saito, Yoshinori Inoue.
Abstract
To examine the effects of weak intermolecular interactions on solid-phase extraction (SPE) and chromatographic separation, we synthesized some novel stationary phases with a heavy atom effect layer by immobilizing halogenated aromatic rings and hydroxyl groups onto the surface of a hydrophilic base polymer. Using SPE cartridges packed with the functionalized materials, we found that the heavy atom stationary phases could selectively retain halophenols in organic solvents, such as 1-propanol which blocks the hydrogen bonding, or acetonitrile which blocks the π-π interaction. The extraction efficiency of the materials toward the halophenols depended on the dipole moments of phenoxy groups present as functional groups. On the other hand, the extraction efficiency of solutes toward the functional group depended on their molar refractions, i.e., induced dipole moments. The retention of the solutes to the stationary phase ultimately depended on not only strong intermolecular interactions, but also the effects of weak interactions such as the dispersion force.Entities:
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Year: 2013 PMID: 23648594 PMCID: PMC6270212 DOI: 10.3390/molecules18055163
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Contents of functional group in the prepared adsorbents.
| Adsorbents | Contents of phenoxy groups/mmol g−1 |
|---|---|
| Pentabromophenoxy (PBP) | 0.30 |
| 2,4,6-Tribromophenoxy (TBP) | 0.23 |
| 2,4-Dibromophenoxy (DBP) | 0.34 |
| 4-Bromophenoxy (4BP) | 0.43 |
| 2,4-Dichlorophenoxy (DCP) | 0.56 |
| Phenoxy (Phe) | 1.22 |
Figure 1Extraction efficiencies (n = 2) of phenols dissolved in 1-propanol on various adsorbents.
Figure 2Extraction efficiencies (n = 2) of phenols dissolved in acetonitrile on various adsorbents.
Dipole moment data.
| Phenols | Dipole moment/D | References |
|---|---|---|
| 2,4-Dichlorophenol | 3.019 * | [ |
| 2,4-Dibromophenol | 2.64–2.99 * | [ |
| 4-Bromophenol | 2.15–2.78 | [ |
| 2,4,6-Tribromophenol | 1.44–2.15 | [ |
| Pentabromophenol | 1.73 | [ |
| Phenol | 1.22–1.86 | [ |
* OH group does not take part in intramolecular hydrogen bonding with the ortho-substituted halogen.
Calculation of molar refraction for halophenols.
| Phenols | Dipole moment/D | Refractive index | Specific volume/g cm−3 | Molar weight/g mol−1 | Molar refraction/cm3 mol−1 |
|---|---|---|---|---|---|
| 2,4,6-Tribromophenol | 1.45–2.15 | 1.7 a | 2.55 (20 °C) | 330.8 | 50.1 (51.2 b) |
| 2,4,6-Trichlorophenol | 1.38–2.00 [ | 1.6 a | 1.675 | 197.45 | 40.3 (42.8 b) |
| 2,6-Dichlorophenol | 1.77–2.15 [ | 1.594 b | 1.532 | 163.0 | 36.1 (37.9 b) |
| 2,4-Dichlorophenol | 0.846–3.019 | 1.594 b | 1.383 | 163.0 | 40.0 (37.9 b) |
| 2,4-Dibromophenol | 0.37–2.99 | 1.643 b | 2.07 (20 °C) | 251.9 | 44.0 (43.5 b) |
| 3-Bromophenol | 0.90–3.10 [ | 1.5957 | 1.63 | 173.0 | 36.2 (35.8 b) |
| 4-Bromophenol | 2.15–2.78 | 1.5875 | 1.65 | 173.0 | 35.3 (35.8 b) |
| 4-Cresol | 1.44–1.83 [ | 1.5312 | 1.0347 | 108.1 | 33.1 (33.0 b) |
| Phenol | 1.22–1.86 | 1.5425 | 1.07 | 94.1 | 27.7 (28.1 b) |
a Values speculated using the data from ref. [18]; b Predicted values generated using the ACD/Labs’ ACD/PhysChem Suite.
Scheme 1Synthesis steps used for preparing the phenoxy adsorbents.