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  • SAGE Publications  (4)
  • Chemistry/Pharmacy  (4)
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  • SAGE Publications  (4)
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  • Chemistry/Pharmacy  (4)
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  • 1
    Online Resource
    Online Resource
    SAGE Publications ; 2016
    In:  Applied Spectroscopy Vol. 70, No. 9 ( 2016-09), p. 1464-1475
    In: Applied Spectroscopy, SAGE Publications, Vol. 70, No. 9 ( 2016-09), p. 1464-1475
    Abstract: The key challenge of time-resolved Raman spectroscopy is the identification of the constituent species and the analysis of the kinetics of the underlying reaction network. In this work we present an integral approach that allows for determining both the component spectra and the rate constants simultaneously from a series of vibrational spectra. It is based on an algorithm for nonnegative matrix factorization that is applied to the experimental data set following a few pre-processing steps. As a prerequisite for physically unambiguous solutions, each component spectrum must include one vibrational band that does not significantly interfere with the vibrational bands of other species. The approach is applied to synthetic “experimental” spectra derived from model systems comprising a set of species with component spectra differing with respect to their degree of spectral interferences and signal-to-noise ratios. In each case, the species involved are connected via monomolecular reaction pathways. The potential and limitations of the approach for recovering the respective rate constants and component spectra are discussed.
    Type of Medium: Online Resource
    ISSN: 0003-7028 , 1943-3530
    RVK:
    Language: English
    Publisher: SAGE Publications
    Publication Date: 2016
    detail.hit.zdb_id: 1474251-2
    SSG: 11
    Library Location Call Number Volume/Issue/Year Availability
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  • 2
    In: Applied Spectroscopy, SAGE Publications, Vol. 53, No. 3 ( 1999-03), p. 283-291
    Abstract: A novel approach for time-resolved (TR) surface-enhanced (resonance) Raman (SE(R)R) spectroscopy is presented for probing potential-dependent processes of molecules adsorbed on a silver electrode. TR SE(R)R spectroscopy offers the unique advantage of providing structural and kinetic data exclusively of the adsorbed species and their reactions. These processes are initiated by a rapid potential jump and monitored by SE(R)R spectroscopy after a delay time δ for the probe interval Δ t. The synchronization is achieved by a mechanical chopper that triggers the potential jump via a photodiode and gates the exciting continuous-wave laser beam. After the probe event, the potential is reset to its initial value. Thus, the original equilibrium is restored to allow a continuous repetition of the sequence of potential jumps and probe events. During the entire experiment, the detection system, a liquid nitrogen-cooled charge-coupled device (CCD) detector, is active so that the signal-to-noise ratio (SNR) can be iteratively improved. This mode of detection does not limit the time resolution, so that the present approach allows TR SE(R)R experiments down to the microsecond time scale without lowering the SNR. The possibilities and limitations of this method are discussed. As an example we present preliminary results of a TR SERR study on yeast iso-1 cytochrome c (Cyt- c) adsorbed on a Ag electrode by applying a potential jump from −0.4 V to +0.05 V (vs. saturated calomel electrode). The experiments are carried out with a rotating electrode to avoid photoinduced degradation and desorption processes. The SERR spectra, which were measured with delay times between 45 to 175 ms, were analyzed quantitively in terms of the various states of the adsorbed Cyt- c that are formed in this potential range. The results show that under these conditions the relaxation processes include the electron transfer of the adsorbed Cyt- c to the electrode and a subsequent conformational transition. The analysis of the data reveals a heterogenous oxidation rate constant of 10.3 s −1 and rate constant for the conformational transition of 4.3 s −1 , supporting the view that the biological electron transfer of Cyt- c is coupled with conformational transitions.
    Type of Medium: Online Resource
    ISSN: 0003-7028 , 1943-3530
    RVK:
    Language: English
    Publisher: SAGE Publications
    Publication Date: 1999
    detail.hit.zdb_id: 1474251-2
    SSG: 11
    Library Location Call Number Volume/Issue/Year Availability
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  • 3
    Online Resource
    Online Resource
    SAGE Publications ; 2000
    In:  Applied Spectroscopy Vol. 54, No. 10 ( 2000-10), p. 1480-1484
    In: Applied Spectroscopy, SAGE Publications, Vol. 54, No. 10 ( 2000-10), p. 1480-1484
    Abstract: In the present work we have developed a reliable approach for probing the reaction dynamics of metalloproteins on the millisecond time scale. It is based on the combination of the freeze-quench method with resonance Raman (RR) and electron paramagnetic resonance (EPR) spectroscopy. The reactions are initiated in a mixing chamber and rapidly quenched at low temperature in liquid isopentane after variable delay times. The experimental device is designed in such a way that the same frozen samples can be subsequently studied by two analytical techniques, thereby providing complementary information about the active site structures of intermediate states of the enzyme. In particular, the present setup permits the measurement of high-quality RR spectra despite the interference by the Raman bands of isopentane. With the use of the azide binding reaction to myoglobin as a test case, it is found that RR spectroscopy allows a reliable determination of rate constants, whereas the quantitative analysis of the EPR spectra is associated with a relatively high and unavoidable uncertainty mainly due to irreproducible packing of the freeze-quenched samples.
    Type of Medium: Online Resource
    ISSN: 0003-7028 , 1943-3530
    RVK:
    Language: English
    Publisher: SAGE Publications
    Publication Date: 2000
    detail.hit.zdb_id: 1474251-2
    SSG: 11
    Library Location Call Number Volume/Issue/Year Availability
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  • 4
    Online Resource
    Online Resource
    SAGE Publications ; 1993
    In:  Applied Spectroscopy Vol. 47, No. 9 ( 1993-09), p. 1452-1456
    In: Applied Spectroscopy, SAGE Publications, Vol. 47, No. 9 ( 1993-09), p. 1452-1456
    Abstract: The near-infrared Fourier transform (NIR FT) Raman technique permits the measurement of Raman spectra without interference by fluorescence. Absorption by molecules containing X-H bonds in the NIR range requires a 180° scattering geometry. In this way, Raman spectroscopy of samples on surfaces is possible, both the detecting of small spots and the mapping of the sample distribution over larger areas. The spatial resolution extends into the micrometer range. Mapping of the inorganic pigment distribution of an initial letter of a mediaeval manuscript is demonstrated. For time-resolved measurements, the step-scan technique, previously developed for infrared spectroscopy, may be used in NIR FT-Raman spectroscopy as well. It allows the study of photochemical and photophysical processes, the application of modulation techniques, and the investigation of “noisy” samples. Photo-isomerization of the dye merocyanine 540 has been observed with the step-scan technique upon periodic excitation with a flash lamp.
    Type of Medium: Online Resource
    ISSN: 0003-7028 , 1943-3530
    RVK:
    Language: English
    Publisher: SAGE Publications
    Publication Date: 1993
    detail.hit.zdb_id: 1474251-2
    SSG: 11
    Library Location Call Number Volume/Issue/Year Availability
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