Hasil untuk "math.OC"

Menampilkan 20 dari ~1079353 hasil · dari DOAJ, CrossRef

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CrossRef Open Access 2011
Ultraviolet absorption cross sections of carbonyl sulfide isotopologues OC <sup>32</sup> S, OC <sup>33</sup> S, OC <sup>34</sup> S and O <sup>13</sup> CS: isotopic fractionation in photolysis and atmospheric implications

S. Hattori, S. O. Danielache, M. S. Johnson et al.

Abstract. We report measurements of the ultraviolet absorption cross sections of OC32S, OC33S, OC34S and O13CS from 195 to 260 nm. The OCS isotopologues were synthesized from isotopically-enriched elemental sulfur by reaction with carbon monoxide. The measured cross section of OC32S is consistent with literature spectra recorded using natural abundance samples. Relative to the spectrum of the most abundant isotopologue, substitution of heavier rare isotopes has two effects. First, as predicted by the reflection principle, the Gaussian-based absorption envelope becomes slightly more narrow and blue-shifted. Second, as predicted by Franck-Condon considerations, the weak vibrational structure is red-shifted. Sulfur isotopic fractionation constants (33ε, 34ε) as a function of wavelength are not highly structured, and tend to be close to zero on average on the high energy side and negative on the low energy side. Since OCS photolysis occurs in the lower stratosphere, the integrated photolysis rate of each isotopologue at 20 km was calculated. Sulfur isotopic fractionation constants at 20 km altitude are (−3.7 ± 4.5) ‰ and (1.1 ± 4.2) ‰ for 33ε and 34ε, respectively, which is inconsistent with the previously estimated large fractionation of over 73 ‰ in 34ε. This demonstrates that OCS photolysis does not produce sulfur isotopic fractionation of more than ca. 5 ‰, suggesting OCS may be the source of background stratospheric sulfate aerosols. Finally, the predicted isotopic fractionation constant for 33S excess (33E) in OCS photolysis is (−4.2 ± 6.6) ‰, and thus photolysis of OCS is not expected to be the source of the non-mass-dependent signature observed in modern and Archaean samples.

CrossRef Open Access 1991
ChemInform Abstract: Intermolecular Alkane C‐H Bond Activation with (OC)3Mn‐ and (OC)2Fe‐ Negative Ions in the Gas Phase.

R. N. MCDONALD, M. T. JONES, A. K. CHOWDHURY

AbstractChemInform is a weekly Abstracting Service, delivering concise information at a glance that was extracted from about 100 leading journals. To access a ChemInform Abstract of an article which was published elsewhere, please select a “Full Text” option. The original article is trackable via the “References” option.

CrossRef Open Access 1988
ChemInform Abstract: Organo‐Platinum‐Iron Complexes Derived from Allenes. Crystal Structures of ((OC)3Fe(μ‐dppm)(μ‐C(O)CH2C(=CH2))Pt(PPh3)), ((OC)3Fe(μ‐dppm)(μ‐C(=CH2)CH2)Pt(PPh3)), and ((OC)2Fe(μ‐dppm)(η4‐(CH2)(CMe2)CPt(PPh3))).

X. L. R. FONTAINE, G. B. JACOBSEN, B. L. SHAW et al.

AbstractTreatment of the diphosphine‐ and CO‐bridged FePt complex (I) with allene (II) at 20 °C in CH2Cl2 gives the insertion product (III).

CrossRef Open Access 1988
ChemInform Abstract: Organo‐Platinum‐Iron Complexes Containing One Bridging Ph2PCH2PPh2 Ligand. Crystal Structures of ((OC)3Fe(μ‐dppm)(μ‐CO)Pt(PPh3)), ((OC)2Fe(μ‐dppm)(μ‐C(O)C2H2)Pt(PPh3)), and ((OC)3Fe(μ‐dppm)(μ‐CMe=CH2)Pt(PPh3)) (BF4).

X. L. R. FONTAINE, G. B. JACOBSEN, B. L. SHAW et al.

AbstractTreatment of Fe(0) complexes (I) with the Pt(0) complex (II) gives the bimetallic diphosphine‐ and CO‐bridged complexes (III).

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