Matches in SemOpenAlex for { <https://semopenalex.org/work/W2068161138> ?p ?o ?g. }
- W2068161138 endingPage "7356" @default.
- W2068161138 startingPage "7349" @default.
- W2068161138 abstract "A comprehensive study has been made to predict the adsorption structures and 31P NMR chemical shifts of various trialkylphosphine oxides (R3PO) probe molecules, viz., trimethylphosphine oxide (TMPO), triethylphosphine oxide (TEPO), tributylphosphine oxide (TBPO), and trioctylphosphine oxide (TOPO), by density functional theory (DFT) calculations based on 8T zeolite cluster models with varied Si−H bond lengths. A linear correlation between the 31P chemical shifts and proton affinity (PA) was observed for each of the homologous R3PO probe molecules examined. It is found that the differences in 31P chemical shifts of the R3POH+ adsorption complexes, when referring to the corresponding chemical shifts in their crystalline phase, may be used not only in identifying Brønsted acid sites with varied acid strengths but also in correlating the 31P NMR data obtained from various R3PO probes. Such a chemical shift difference therefore can serve as a quantitative measure during acidity characterization of solid acid catalysts when utilizing 31P NMR of various adsorbed R3PO, as proposed in our earlier report (Zhao; et al. J. Phys. Chem. B 2002, 106, 4462) and also illustrated herein by using a mesoporous H-MCM-41 aluminosilicate (Si/Al = 25) test adsorbent. It is indicative that, with the exception of (TMPO), variations in the alkyl chain length of the R3PO (R = CnH2n+1; n ≥ 2) probe molecules have only negligible effect on the 31P chemical shifts (within experimental error of ca. 1−2 ppm) either in their crystalline bulk or in their corresponding R3POH+ adsorption complexes. Consequently, an average offset of 8 ± 2 ppm was observed for 31P chemical shifts of adsorbed R3PO with n ≥ 2 relative to TMPO (n = 1). Moreover, by taking the value of 86 ppm predicted for TMPO adsorbed on 8T cluster models as a threshold for superacidity (Zheng; et al. J. Phys. Chem. B 2008, 112, 4496), a similar threshold 31P chemical shift of ca. 92−94 ppm was deduced for TEPO, TBPO, and TOPO." @default.
- W2068161138 created "2016-06-24" @default.
- W2068161138 creator A5040784794 @default.
- W2068161138 creator A5055850550 @default.
- W2068161138 creator A5057189871 @default.
- W2068161138 creator A5058036510 @default.
- W2068161138 creator A5074911937 @default.
- W2068161138 creator A5079394531 @default.
- W2068161138 creator A5080011065 @default.
- W2068161138 creator A5081958822 @default.
- W2068161138 creator A5087450760 @default.
- W2068161138 date "2008-07-23" @default.
- W2068161138 modified "2023-10-16" @default.
- W2068161138 title "<sup>31</sup>P Chemical Shift of Adsorbed Trialkylphosphine Oxides for Acidity Characterization of Solid Acids Catalysts" @default.
- W2068161138 cites W1499950543 @default.
- W2068161138 cites W1551841129 @default.
- W2068161138 cites W170846248 @default.
- W2068161138 cites W1968222396 @default.
- W2068161138 cites W1969066952 @default.
- W2068161138 cites W1972680975 @default.
- W2068161138 cites W1981020788 @default.
- W2068161138 cites W1982873992 @default.
- W2068161138 cites W1985834120 @default.
- W2068161138 cites W1987388741 @default.
- W2068161138 cites W1989640743 @default.
- W2068161138 cites W1992348872 @default.
- W2068161138 cites W2007111834 @default.
- W2068161138 cites W2010506875 @default.
- W2068161138 cites W2010979359 @default.
- W2068161138 cites W2011341199 @default.
- W2068161138 cites W2013312703 @default.
- W2068161138 cites W2017242697 @default.
- W2068161138 cites W2017503837 @default.
- W2068161138 cites W2019422250 @default.
- W2068161138 cites W2020247653 @default.
- W2068161138 cites W2023263521 @default.
- W2068161138 cites W2026196573 @default.
- W2068161138 cites W2026606093 @default.
- W2068161138 cites W2028706235 @default.
- W2068161138 cites W2030687437 @default.
- W2068161138 cites W2032935988 @default.
- W2068161138 cites W2035198890 @default.
- W2068161138 cites W2035566689 @default.
- W2068161138 cites W2035711583 @default.
- W2068161138 cites W2037433282 @default.
- W2068161138 cites W2039035988 @default.
- W2068161138 cites W2040857192 @default.
- W2068161138 cites W2043658276 @default.
- W2068161138 cites W2046412723 @default.
- W2068161138 cites W2046875129 @default.
- W2068161138 cites W2054164390 @default.
- W2068161138 cites W2060336452 @default.
- W2068161138 cites W2061221675 @default.
- W2068161138 cites W2062119316 @default.
- W2068161138 cites W2063101865 @default.
- W2068161138 cites W2063785851 @default.
- W2068161138 cites W2069113953 @default.
- W2068161138 cites W2070750941 @default.
- W2068161138 cites W2077376342 @default.
- W2068161138 cites W2079867218 @default.
- W2068161138 cites W2084016367 @default.
- W2068161138 cites W2086830208 @default.
- W2068161138 cites W2087116809 @default.
- W2068161138 cites W2087180242 @default.
- W2068161138 cites W2089591052 @default.
- W2068161138 cites W2090759508 @default.
- W2068161138 cites W2092995611 @default.
- W2068161138 cites W2093418761 @default.
- W2068161138 cites W2115323849 @default.
- W2068161138 cites W2125037565 @default.
- W2068161138 cites W2149567138 @default.
- W2068161138 cites W2156115804 @default.
- W2068161138 cites W2166045565 @default.
- W2068161138 cites W2169571222 @default.
- W2068161138 cites W226787020 @default.
- W2068161138 cites W2951235754 @default.
- W2068161138 cites W2952169278 @default.
- W2068161138 cites W2953204406 @default.
- W2068161138 cites W3021096748 @default.
- W2068161138 cites W990254383 @default.
- W2068161138 doi "https://doi.org/10.1021/jp8027319" @default.
- W2068161138 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/18646739" @default.
- W2068161138 hasPublicationYear "2008" @default.
- W2068161138 type Work @default.
- W2068161138 sameAs 2068161138 @default.
- W2068161138 citedByCount "87" @default.
- W2068161138 countsByYear W20681611382012 @default.
- W2068161138 countsByYear W20681611382013 @default.
- W2068161138 countsByYear W20681611382014 @default.
- W2068161138 countsByYear W20681611382015 @default.
- W2068161138 countsByYear W20681611382016 @default.
- W2068161138 countsByYear W20681611382017 @default.
- W2068161138 countsByYear W20681611382018 @default.
- W2068161138 countsByYear W20681611382019 @default.
- W2068161138 countsByYear W20681611382020 @default.
- W2068161138 countsByYear W20681611382021 @default.
- W2068161138 countsByYear W20681611382022 @default.
- W2068161138 countsByYear W20681611382023 @default.