Valence-to-core X-ray emission spectroscopy of titanium compounds using energy dispersive detectors
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D. Lu | B. Ravel | W. Doriese | J. Ullom | J. Fowler | Y. Joe | G. O’Neil | D. Swetz | L. Miaja-Avila | K. Morgan | Brianna Ganly | B. Ganly
[1] D. Sokaras,et al. Excited state charge distribution and bond expansion of ferrous complexes observed with femtosecond valence-to-core x-ray emission spectroscopy. , 2020, The Journal of chemical physics.
[2] M. Bauer,et al. Hard X-ray spectroscopy: an exhaustive toolbox for mechanistic studies (?). , 2019, Faraday discussions.
[3] Simon R. Bandler,et al. Demonstration of Athena X-IFU Compatible 40-Row Time-Division-Multiplexed Readout , 2019, IEEE Transactions on Applied Superconductivity.
[4] D. Sokaras,et al. Diagram, valence-to-core, and hypersatellite K β X-ray transitions in metallic chromium , 2019, X-Ray Spectrometry.
[5] B. Beckhoff,et al. Valence-to-core XES of Ti, TiO and TiO2 by means of a double full-cylinder crystal von Hamos spectrometer. , 2018, X-ray spectrometry : XRS.
[6] Z. Németh,et al. Spectroscopic techniques to characterize the spin state: Vibrational, optical, Mössbauer, NMR, and X-ray spectroscopy , 2018, Comptes Rendus Chimie.
[7] B. Kanngießer,et al. A laboratory spectrometer for high throughput X-ray emission spectroscopy in catalysis research. , 2018, The Review of scientific instruments.
[8] Bradley K. Alpert,et al. TES X-ray Spectrometer at SLAC LCLS-II , 2018, Journal of Low Temperature Physics.
[9] Devon R. Mortensen,et al. An improved laboratory-based x-ray absorption fine structure and x-ray emission spectrometer for analytical applications in materials chemistry research. , 2018, The Review of scientific instruments.
[10] D. Lu,et al. Nonresonant valence-to-core x-ray emission spectroscopy of niobium. , 2018, Physical review. B.
[11] T. Madden,et al. Eliminating the non-Gaussian spectral response of X-ray absorbers for transition-edge sensors , 2017, 1708.08481.
[12] G. C. Hilton,et al. A practical superconducting-microcalorimeter X-ray spectrometer for beamline and laboratory science. , 2017, The Review of scientific instruments.
[13] Jinghua Guo,et al. A compact dispersive refocusing Rowland circle X-ray emission spectrometer for laboratory, synchrotron, and XFEL applications. , 2017, The Review of scientific instruments.
[14] G. C. Hilton,et al. A reassessment of absolute energies of the x-ray L lines of lanthanide metals , 2017, 1702.00507.
[15] Tadesse A. Assefa,et al. Probing Transient Valence Orbital Changes with Picosecond Valence-to-Core X-ray Emission Spectroscopy , 2017, The journal of physical chemistry. C, Nanomaterials and interfaces.
[16] E. Farquhar,et al. Cobalt Kβ valence-to-core X-ray emission spectroscopy: a study of low-spin octahedral cobalt(iii) complexes. , 2016, Dalton transactions.
[17] Z. Németh,et al. Laboratory von Hámos X-ray spectroscopy for routine sample characterization. , 2016, The Review of scientific instruments.
[18] J. Ullom,et al. Observation of iron spin-states using tabletop x-ray emission spectroscopy and microcalorimeter sensors , 2016 .
[19] W. B. Doriese,et al. The Practice of Pulse Processing , 2015, Journal of Low Temperature Physics.
[20] C. Pollock,et al. Insights into the geometric and electronic structure of transition metal centers from valence-to-core X-ray emission spectroscopy. , 2015, Accounts of chemical research.
[21] Devon R. Mortensen,et al. Benchtop Nonresonant X-ray Emission Spectroscopy: Coming Soon to Laboratories and XAS Beamlines Near You? , 2015, 1509.05711.
[22] S. DeBeer,et al. The Fe–V Cofactor of Vanadium Nitrogenase Contains an Interstitial Carbon Atom , 2015, Angewandte Chemie.
[23] Joel N. Ullom,et al. Review of superconducting transition-edge sensors for x-ray and gamma-ray spectroscopy , 2015 .
[24] S. DeBeer,et al. X-ray Absorption and Emission Study of Dioxygen Activation by a Small-Molecule Manganese Complex. , 2015, Inorganic chemistry.
[25] W. B. Doriese,et al. High-resolution X-ray emission spectroscopy with transition-edge sensors: present performance and future potential. , 2015, Journal of synchrotron radiation.
[26] Marcin Sikorski,et al. Photon-in photon-out hard X-ray spectroscopy at the Linac Coherent Light Source , 2015, Journal of synchrotron radiation.
[27] W. Schlotter,et al. Orbital-specific mapping of the ligand exchange dynamics of Fe(CO)5 in solution , 2015, Nature.
[28] M. Nielsen,et al. Visualizing the non-equilibrium dynamics of photoinduced intramolecular electron transfer with femtosecond X-ray pulses , 2015, Nature Communications.
[29] J. N. Ullom,et al. Laser plasma x-ray source for ultrafast time-resolved x-ray absorption spectroscopy , 2015, Structural dynamics.
[30] Tadesse A. Assefa,et al. Feasibility of Valence-to-Core X-ray Emission Spectroscopy for Tracking Transient Species , 2015, The journal of physical chemistry. C, Nanomaterials and interfaces.
[31] S. MacMillan,et al. Ligand-Sensitive But Not Ligand-Diagnostic: Evaluating Cr Valence-to-Core X-ray Emission Spectroscopy as a Probe of Inner-Sphere Coordination , 2014, Inorganic chemistry.
[32] P. Glatzel,et al. Valence to Core X‐ray Emission Spectroscopy , 2014, Advanced materials.
[33] Terrence Jach,et al. Origins of extreme broadening mechanisms in near-edge x-ray spectra of nitrogen compounds , 2014 .
[34] Thomas Elsaesser,et al. High-brightness table-top hard X-ray source driven by sub-100-femtosecond mid-infrared pulses , 2014, Nature Photonics.
[35] Devon R. Mortensen,et al. A laboratory-based hard x-ray monochromator for high-resolution x-ray emission spectroscopy and x-ray absorption near edge structure measurements. , 2014, The Review of scientific instruments.
[36] Nicholas K. Sauter,et al. Taking Snapshots of Photosynthetic Water Oxidation Using Femtosecond X-ray Diffraction and Spectroscopy , 2014, Nature Communications.
[37] F. Neese,et al. Kβ Mainline X-ray Emission Spectroscopy as an Experimental Probe of Metal–Ligand Covalency , 2014, Journal of the American Chemical Society.
[38] B. Kanngießer,et al. A novel von Hamos spectrometer for efficient X-ray emission spectroscopy in the laboratory. , 2014, The Review of scientific instruments.
[39] Kelly J. Gaffney,et al. Tracking excited-state charge and spin dynamics in iron coordination complexes , 2014, Nature.
[40] P. Glatzel,et al. Hard x-ray emission spectroscopy: a powerful tool for the characterization of magnetic semiconductors , 2013, 1312.0399.
[41] C. T. Chantler,et al. Characterization of the titanium Kβ spectral profile , 2013 .
[42] M. Nielsen,et al. Guest-host interactions investigated by time-resolved X‑ray spectroscopies and scattering at MHz rates: solvation dynamics and photoinduced spin transition in aqueous Fe(bipy)3(2+). , 2012, The journal of physical chemistry. A.
[43] J. Quintana,et al. A plastic miniature x-ray emission spectrometer based on the cylindrical von Hamos geometry. , 2012, The Review of scientific instruments.
[44] Peter Moeck,et al. Crystallography Open Database (COD): an open-access collection of crystal structures and platform for world-wide collaboration , 2011, Nucleic Acids Res..
[45] Bruno Golosio,et al. The xraylib library for X-ray-matter interactions. Recent developments , 2011 .
[46] C. Pollock,et al. Valence-to-core X-ray emission spectroscopy: a sensitive probe of the nature of a bound ligand. , 2011, Journal of the American Chemical Society.
[47] J J Kas,et al. Bethe-Salpeter equation calculations of core excitation spectra. , 2010, Physical review. B, Condensed matter and materials physics.
[48] Y. Kvashnin,et al. Ligand identification in titanium complexes using X-ray valence-to-core emission spectroscopy. , 2010, Inorganic chemistry.
[49] Rafael Abela,et al. Picosecond time-resolved X-ray emission spectroscopy: ultrafast spin-state determination in an iron complex. , 2010, Angewandte Chemie.
[50] Frank Neese,et al. Probing valence orbital composition with iron Kbeta X-ray emission spectroscopy. , 2010, Journal of the American Chemical Society.
[51] S. Fazinić,et al. Chemical effects on the K{beta}{sup ''} and K{beta}{sub 2,5} x-ray lines of titanium and its compounds , 2009 .
[52] Uwe Bergmann,et al. X-ray emission spectroscopy to study ligand valence orbitals in Mn coordination complexes. , 2009, Journal of the American Chemical Society.
[53] Uwe Bergmann,et al. X-ray emission spectroscopy , 2009, Photosynthesis Research.
[54] Vladimir A. Arkadiev,et al. An efficient X-ray spectrometer based on thin mosaic crystal films and its application in various fields of X-ray spectroscopy , 2009 .
[55] Uwe Bergmann,et al. Direct detection of oxygen ligation to the Mn(4)Ca cluster of photosystem II by X-ray emission spectroscopy. , 2009, Angewandte Chemie.
[56] Stefano de Gironcoli,et al. QUANTUM ESPRESSO: a modular and open-source software project for quantum simulations of materials , 2009, Journal of physics. Condensed matter : an Institute of Physics journal.
[57] M. Fernández-García,et al. Hard X-ray Photon-In Photon-Out Spectroscopy , 2009 .
[58] M. Bargheer,et al. Femtosecond hard X-ray plasma sources with a kilohertz repetition rate , 2009 .
[59] B. Kanngießer,et al. Evaluation of high-resolution X-ray absorption and emission spectroscopy for the chemical speciation of binary titanium compounds. , 2009, Analytical chemistry.
[60] L. Natarajan,et al. Satellites, hypersatellites and RAE from Ti, V, Cr, Mn and Fe in photoionisation , 2008 .
[61] Frank Benesch,et al. Ultrafast x-ray pulses emitted from a liquid mercury laser target. , 2007, Optics letters.
[62] C. T. Chantler,et al. Characterization of K{alpha} spectral profiles for vanadium, component redetermination for scandium, titanium, chromium, and manganese, and development of satellite structure for Z=21 to Z=25 , 2006 .
[63] U. Bergmann,et al. High-resolution X-ray emission spectroscopy of molybdenum compounds. , 2005, Inorganic chemistry.
[64] F. D. Groot,et al. High-Resolution X-ray Emission and X-ray Absorption Spectroscopy , 2001 .
[65] Uwe Bergmann,et al. Chemical dependence of interatomic X-ray transition energies and intensities – a study of Mn Kβ″ and Kβ2, 5 spectra , 1999 .
[66] Moshe Deutsch,et al. KALPHA 1,2 AND KBETA 1,3 X-RAY EMISSION LINES OF THE 3D TRANSITION METALS , 1997 .
[67] T. Konishi,et al. High resolution titanium Kα X-ray fluorescence spectra , 1994 .
[68] Speier,et al. Core-hole effects in the x-ray-absorption spectra of transition-metal silicides. , 1990, Physical review. B, Condensed matter.
[69] M. Krause,et al. Natural widths of atomic K and L levels, Kα X‐ray lines and several KLL Auger lines , 1979 .
[70] M. Murti,et al. A study of K x‐ray hyper‐satellites and KMM radiative Auger effect (RAE) of the elements 19 ≤ Z ≤ 25 by photon excitation , 2007 .
[71] C. Hébert. Practical aspects of running the WIEN2k code for electron spectroscopy. , 2007, Micron.
[72] Uwe Bergmann,et al. High resolution 1s core hole X-ray spectroscopy in 3d transition metal complexes—electronic and structural information , 2005 .
[73] R. Downs,et al. The American Mineralogist crystal structure database , 2003 .
[74] C. Kao,et al. Diagram X-ray emission spectra of a hollow atom: the Kh alpha1,2 and Kh beta1,3 hypersatellites of Fe. , 2003, Physical review letters.