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  1. chem.libretexts.org › Electron_Paramagnetic_Resonance › ENDOR_-_TheoryENDOR - Theory - Chemistry LibreTexts

    30 Ιαν 2023 · Electron-nuclear double resonance spectroscopy (ENDOR) is a powerful advanced EPR technique that probes the environment surrounding paramagnetic centers. It is of great use to further examine …

    • Hyperfine

      The Hyperfine Coupling Constant. The hyperfine coupling...

  2. In this tutorial review the basic principles of continuous wave ENDOR are described. The theory of orientation selective ENDOR, for structure determination in frozen solutions and powders, is then described.

  3. 16 Απρ 2022 · Electron-nuclear double resonance spectroscopy (ENDOR) is a powerful advanced EPR technique that probes the environment surrounding paramagnetic centers. It is of great use to further examine paramagnetic samples which give complicated spectra via the standard EPR method due to electronic-nuclear interactions manifested as the hyperfine ...

  4. 1 Απρ 2006 · Both electron paramagnetic resonance (EPR) and electron nuclear double resonance (ENDOR) spectroscopies are extremely powerful and versatile methods for the characterisation of paramagnetic ...

  5. This review focuses on recent advances in high-field ENDOR and its applications to the study of proteins containing native paramagnetic sites and the interpretation of hyperfine couplings using quantum chemical calculations, primarily density functional theory (DFT) methods.

  6. A W-Band Pulsed ENDOR Spectrometer: Setup and Application to Transition Metal Centers. Igor Gromov. 1999, Journal of Magnetic Resonance. See full PDF. download Download PDF. Related papers. A Q-Band Pulse EPR/ENDOR Spectrometer and the Implementation of Advanced One- and Two-Dimensional Pulse EPR Methodology. Igor Gromov.

  7. 15 Δεκ 2011 · This article uses a multifaceted case study to illustrate the application of ENDOR spectroscopy in bioinorganic chemistry. Specifically, the case study describes the application of multinuclear ( 1, 2 H, 13 C, 57 Fe, 95 Mo) CW and pulsed ENDOR to enhance our understanding of the iron–molybdenum cofactor in nitrogenase.

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