Pair distribution function computed tomography
暂无分享,去创建一个
Marco Di Michiel | Xiaohao Yang | Simon J L Billinge | Simon D M Jacques | Robert J Cernik | M. Di Michiel | A. Beale | R. Cernik | S. Jacques | Xiaohao Yang | S. Billinge | S. Kimber | Andrew M Beale | Simon A J Kimber
[1] P. Bleuet,et al. Probing the structure of heterogeneous diluted materials by diffraction tomography. , 2008, Nature materials.
[2] D. Hunter,et al. Applications of synchrotron-based X-ray microprobes. , 2001, Chemical reviews.
[3] Simon J L Billinge,et al. Relationship between the atomic pair distribution function and small-angle scattering: implications for modeling of nanoparticles. , 2008, Acta crystallographica. Section A, Foundations of crystallography.
[4] U Neitzel,et al. X-ray diffraction computed tomography. , 1987, Medical physics.
[5] A. Beale,et al. Chemical imaging of catalytic solids with synchrotron radiation. , 2010, Chemical Society reviews.
[6] S. Bordiga,et al. Selective catalysis and nanoscience: an inseparable pair. , 2007, Chemistry.
[7] J. Tarascon,et al. Pair distribution function analysis and solid state NMR studies of silicon electrodes for lithium ion batteries: understanding the (de)lithiation mechanisms. , 2011, Journal of the American Chemical Society.
[8] Dean R. Haeffner,et al. Mapping the chemical states of an element inside a sample using tomographic x-ray absorption spectroscopy , 2003 .
[9] G. Hounsfield. Computerized transverse axial scanning (tomography): Part I. Description of system. 1973. , 1973, The British journal of radiology.
[10] G. Hounsfield. Computerized transverse axial scanning (tomography). 1. Description of system. , 1973, The British journal of radiology.
[11] Simon J L Billinge,et al. Understanding the formation and evolution of ceria nanoparticles under hydrothermal conditions. , 2012, Angewandte Chemie.
[12] A. Beale,et al. Tomographic energy dispersive diffraction imaging to study the genesis of Ni nanoparticles in 3D within gamma-Al2O3 catalyst bodies. , 2009, Journal of the American Chemical Society.
[13] J. C. Elliott,et al. X‐ray microtomography , 1982, Journal of microscopy.
[14] S. Kohara,et al. A new approach to the determination of atomic-architecture of amorphous zeolite precursors by high-energy X-ray diffraction technique. , 2006, Physical chemistry chemical physics : PCCP.
[15] H. Freund,et al. Hydrogenation on metal surfaces: why are nanoparticles more active than single crystals? , 2003, Angewandte Chemie.
[16] P. Bleuet,et al. "Compressed graphite" formed during C60 to diamond transformation as revealed by scattering computed tomography. , 2012, Physical review letters.
[17] Takeshi Egami,et al. Underneath the Bragg Peaks , 2003 .
[18] S J L Billinge,et al. PDFfit2 and PDFgui: computer programs for studying nanostructure in crystals , 2007, Journal of physics. Condensed matter : an Institute of Physics journal.
[19] Judith E. Adams,et al. Advances in bone imaging for osteoporosis , 2012, Nature Reviews Endocrinology.
[20] Bert M. Weckhuysen,et al. Active phase evolution in single Ni/Al2O3 methanation catalyst bodies studied in real time using combined μ-XRD-CT and μ-absorption-CT , 2012 .
[21] G. Hutchings,et al. Identification of Active Gold Nanoclusters on Iron Oxide Supports for CO Oxidation , 2008, Science.
[22] J. Nørskov,et al. Making gold less noble , 2000 .
[23] P. Lauterbur,et al. Image Formation by Induced Local Interactions: Examples Employing Nuclear Magnetic Resonance , 1973, Nature.
[24] K. Chapman,et al. Chasing changing nanoparticles with time-resolved pair distribution function methods. , 2012, Journal of the American Chemical Society.
[25] M. Preuss,et al. Fatigue and Damage in Structural Materials Studied by X-Ray Tomography , 2012 .
[26] Christian G. Schroer,et al. Hard and Soft X‐Ray Microscopy and Tomography in Catalysis: Bridging the Different Time and Length Scales , 2011 .
[27] Krijn P. de Jong,et al. Synthesis of Solid Catalysts , 2009 .
[28] Andrew L. Goodwin,et al. Applications of pair distribution function methods to contemporary problems in materials chemistry , 2011 .
[29] S. Billinge,et al. Towards a robust ad hoc data correction approach that yields reliable atomic pair distribution functions from powder diffraction data , 2012, Journal of physics. Condensed matter : an Institute of Physics journal.
[30] Taha Sochi,et al. Dynamic X-ray diffraction computed tomography reveals real-time insight into catalyst active phase evolution. , 2011, Angewandte Chemie.
[31] K. Wilson,et al. Reaction-driven surface restructuring and selectivity control in allylic alcohol catalytic aerobic oxidation over Pd. , 2011, Journal of the American Chemical Society.
[32] K. Shankland,et al. Characterisation of amorphous and nanocrystalline molecular materials by total scattering , 2010 .
[33] Taha Sochi,et al. A new approach to synchrotron energy-dispersive X-ray diffraction computed tomography. , 2012, Journal of synchrotron radiation.
[34] M. Fernández-García,et al. Surface and Bulk Approach to Time‐resolved Characterization of Heterogeneous Catalysts , 2012 .
[35] P. Bleuet,et al. Diffraction/scattering computed tomography for three-dimensional characterization of multi-phase crystalline and amorphous materials , 2012 .
[36] H. Topsøe,et al. Developments in operando studies and in situ characterization of heterogeneous catalysts , 2003 .
[37] Barbara L. Welther,et al. The impact , 1995 .
[38] B. Weckhuysen,et al. Heterogeneities of Individual Catalyst Particles in Space and Time as Monitored by Spectroscopy , 2013 .
[39] Carlo Lamberti,et al. 0.5 wt.% Pd/C catalyst for purification of terephthalic acid: Irreversible deactivation in industrial plants , 2011 .
[40] Axel Knop-Gericke,et al. The Roles of Subsurface Carbon and Hydrogen in Palladium-Catalyzed Alkyne Hydrogenation , 2008, Science.
[41] A. Bell. The Impact of Nanoscience on Heterogeneous Catalysis , 2003, Science.
[42] T. Pinnavaia,et al. Role of framework sodium versus local framework structure in determining the hydrothermal stability of MCM-41 mesostructures. , 2002, Journal of the American Chemical Society.
[43] A. Beale,et al. Profiling physicochemical changes within catalyst bodies during preparation: new insights from invasive and noninvasive microspectroscopic studies. , 2010, Accounts of chemical research.
[44] Marco Stampanoni,et al. Development and trends in synchrotron studies of ancient and historical materials , 2012 .
[45] O. Bunk,et al. High-Resolution Scanning X-ray Diffraction Microscopy , 2008, Science.
[46] L. I. Kheifets,et al. Theory of preparation of supported catalysts , 1981 .
[47] G. Somorjai,et al. Catalysis and nanoscience. , 2003, Chemical communications.
[48] K. Hämäläinen,et al. Direct tomography with chemical-bond contrast. , 2011, Nature materials.
[49] Yijin Liu,et al. Hard X-ray nanotomography of catalytic solids at work. , 2012, Angewandte Chemie.
[50] J. Regalbuto. Catalyst Preparation : Science and Engineering , 2006 .
[51] R. Turner,et al. Echo-planar imaging: magnetic resonance imaging in a fraction of a second. , 1991, Science.
[52] T. Teranishi,et al. Size Control of Palladium Nanoparticles and Their Crystal Structures , 1998 .
[53] J. F. Creemer,et al. Nanoscale chemical imaging of a working catalyst by scanning transmission X-ray microscopy , 2008, Nature.
[54] M Ratner,et al. Heterogeneous Catalysis: Fundamentals and Applications , 2011 .
[55] Simon J. L. Billinge,et al. PDFgetX3: a rapid and highly automatable program for processing powder diffraction data into total scattering pair distribution functions , 2012, 1211.7126.
[56] Simon J L Billinge,et al. The Problem with Determining Atomic Structure at the Nanoscale , 2007, Science.
[57] J. Kosanetzky,et al. Scattered X-ray beam nondestructive testing , 1989 .