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Journal articles on the topic 'Solid-state nuclear magnetic resonance spectroscopy'

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1

Renault, M., R. Tommassen-van Boxtel, M. P. Bos, J. A. Post, J. Tommassen, and M. Baldus. "Cellular solid-state nuclear magnetic resonance spectroscopy." Proceedings of the National Academy of Sciences 109, no. 13 (2012): 4863–68. http://dx.doi.org/10.1073/pnas.1116478109.

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2

Walkley, B., and J. L. Provis. "Solid-state nuclear magnetic resonance spectroscopy of cements." Materials Today Advances 1 (March 2019): 100007. http://dx.doi.org/10.1016/j.mtadv.2019.100007.

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3

Knight, C. T. G., G. L. Turner, R. J. Kirkpatrick, and Eric Oldfield. "Solid-state tungsten-183 nuclear magnetic resonance spectroscopy." Journal of the American Chemical Society 108, no. 23 (1986): 7426–27. http://dx.doi.org/10.1021/ja00283a057.

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4

Kirkpatrick, R. J., K. A. Smith, S. Schramm, G. Turner, and W. H. Yang. "Solid-State Nuclear Magnetic Resonance Spectroscopy of Minerals." Annual Review of Earth and Planetary Sciences 13, no. 1 (1985): 29–47. http://dx.doi.org/10.1146/annurev.ea.13.050185.000333.

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5

Tishmack, Patrick A., David E. Bugay, and Stephen R. Byrn. "Solid-State Nuclear Magnetic Resonance Spectroscopy-Pharmaceutical Applications." Journal of Pharmaceutical Sciences 92, no. 3 (2003): 441–74. http://dx.doi.org/10.1002/jps.10307.

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6

Ashbrook, Sharon E., John M. Griffin, and Karen E. Johnston. "Recent Advances in Solid-State Nuclear Magnetic Resonance Spectroscopy." Annual Review of Analytical Chemistry 11, no. 1 (2018): 485–508. http://dx.doi.org/10.1146/annurev-anchem-061417-125852.

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The sensitivity of nuclear magnetic resonance (NMR) spectroscopy to the local atomic-scale environment offers great potential for the characterization of a diverse range of solid materials. Despite offering more information than its solution-state counterpart, solid-state NMR has not yet achieved a similar level of recognition, owing to the anisotropic interactions that broaden the spectral lines and hinder the extraction of structural information. Here, we describe the methods available to improve the resolution of solid-state NMR spectra and the continuing research in this area. We also high
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7

Hirsch, O., G. Scheler, and C. Jäger. "Spectrometer for stochastic solid-state nuclear magnetic resonance spectroscopy." Review of Scientific Instruments 72, no. 3 (2001): 1734. http://dx.doi.org/10.1063/1.1340563.

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8

Stewart, Phoebe L., Robert Tycko, and Stanley J. Opella. "Peptide backbone conformation by solid-state nuclear magnetic resonance spectroscopy." Journal of the Chemical Society, Faraday Transactions 1: Physical Chemistry in Condensed Phases 84, no. 11 (1988): 3803. http://dx.doi.org/10.1039/f19888403803.

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9

Mananga, Eugene Stephane. "Two Theoretical Approaches in Solid-State Nuclear Magnetic Resonance Spectroscopy." Journal of Modern Physics 05, no. 06 (2014): 458–63. http://dx.doi.org/10.4236/jmp.2014.56055.

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10

Stebbins, Jonathan F. "Nuclear Magnetic Resonance Spectroscopy of Geological Materials." MRS Bulletin 17, no. 5 (1992): 45–52. http://dx.doi.org/10.1557/s0883769400041282.

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From the earliest days of extractive metallurgy, materials scientists and geoscientists have shared common ground. Experimental approaches, such as phase equilibrium and structural studies, are often similar, as are the questions asked in attempts to connect microscopic fundamentals to technologically desired or naturally observed bulk properties. The actual materials studied by both groups are often similar or even identical, such as silicate ceramics and glasses, magnetic oxides, and crystals based on the perovskite structure.Nuclear magnetic resonance (NMR) was applied to solid-state physic
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11

Arnold, Alexandre A., and Isabelle Marcotte. "Studying natural structural protein fibers by solid-state nuclear magnetic resonance." Concepts in Magnetic Resonance Part A 34A, no. 1 (2009): 24–47. http://dx.doi.org/10.1002/cmr.a.20132.

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12

Weinert, Charles S. "G73e Nuclear Magnetic Resonance Spectroscopy of Germanium Compounds." ISRN Spectroscopy 2012 (November 14, 2012): 1–18. http://dx.doi.org/10.5402/2012/718050.

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The field of G73e NMR spectroscopy is reviewed in this paper, from early developments in the 1950s to present day research. Specific attention is paid to recent investigations, including the observation of fluxional behavior of hypervalent germanium species having five or six attached ligands by 73Ge NMR spectroscopy, the spectral properties of linear and branched oligogermanes that contain single germanium-germanium bonds, and the relatively new field of solid-state germanium-73 NMR.
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13

Oas, T. G., R. G. Griffin, and M. H. Levitt. "Rotary resonance recoupling of dipolar interactions in solid‐state nuclear magnetic resonance spectroscopy." Journal of Chemical Physics 89, no. 2 (1988): 692–95. http://dx.doi.org/10.1063/1.455191.

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14

Harris, Robin K. "Quantitative aspects of high-resolution solid-state nuclear magnetic resonance spectroscopy." Analyst 110, no. 6 (1985): 649. http://dx.doi.org/10.1039/an9851000649.

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15

Hoh, Ka-Pi, Hatsuo Ishida, and Jack L. Koenig. "Silicon-29 solid-state nuclear magnetic resonance spectroscopy of composite interfaces." Polymer Composites 11, no. 2 (1990): 121–25. http://dx.doi.org/10.1002/pc.750110208.

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16

Mananga, Eugene S., Jalil Moghaddasi, Ajaz Sana, and Mostafa Sadoqi. "Theories in Spin Dynamics of Solid-State Nuclear Magnetic Resonance Spectroscopy." World Journal of Nuclear Science and Technology 05, no. 01 (2015): 27–42. http://dx.doi.org/10.4236/wjnst.2015.51004.

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17

Harris, Robin K., Philip J. Wilkes, Paul T. Wood, and J. Derek Woollins. "Solid-state phosphorus-31 nuclear magnetic resonance spectroscopy of phosphorus sulphides." Journal of the Chemical Society, Dalton Transactions, no. 5 (1989): 809. http://dx.doi.org/10.1039/dt9890000809.

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18

Kloprogge, J. T. "Solid-State Nuclear Magnetic Resonance Spectroscopy on Synthetic Ammonium/Aluminum-Saponites*." Clays and Clay Minerals 42, no. 4 (1994): 416–20. http://dx.doi.org/10.1346/ccmn.1994.0420406.

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19

Zhou, Lingdi, Jiugao Guo, Nianhua Yang, and Liyun Li. "Solid-state nuclear magnetic resonance and infrared spectroscopy of alkali feldspars." Science in China Series D: Earth Sciences 40, no. 2 (1997): 159–65. http://dx.doi.org/10.1007/bf02878374.

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20

Lambert, Joseph B., Catherine E. Shawl, George O. Poinar, and Jorge A. Santiago-Blay. "Classification of Modern Resins by Solid State Nuclear Magnetic Resonance Spectroscopy." Bioorganic Chemistry 27, no. 6 (1999): 409–33. http://dx.doi.org/10.1006/bioo.1999.1147.

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21

Xu, Yijue, Scott A. Southern, Patrick M. J. Szell, and David L. Bryce. "The role of solid-state nuclear magnetic resonance in crystal engineering." CrystEngComm 18, no. 28 (2016): 5236–52. http://dx.doi.org/10.1039/c6ce01206j.

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22

Bukhari, Syed Nasir Abbas, Ng Shin Hwei, and Ibrahim Jantan. "Recent Advances in Solid-State Analysis of Pharmaceuticals." Open Pharmaceutical Sciences Journal 2, no. 1 (2015): 13–20. http://dx.doi.org/10.2174/1874844901502010013.

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Current analytical techniques for characterizing solid-state pharmaceuticals include powder x-ray diffraction, differential scanning calorimetry, thermogravimetric analysis, infrared spectroscopy, Raman spectroscopy, electron microscopy and nuclear magnetic resonance. Powder x-ray diffraction and differential scanning calorimetry are mainstream techniques but they lack spatial resolution. Scanning electron microscopy and micro-Raman spectroscopy provide good chemical and optical characterization but they are not capable of analysing very small nanoparticles. Transmission electron microscopy an
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23

Aslam, Nabeel, Matthias Pfender, Philipp Neumann, et al. "Nanoscale nuclear magnetic resonance with chemical resolution." Science 357, no. 6346 (2017): 67–71. http://dx.doi.org/10.1126/science.aam8697.

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Nuclear magnetic resonance (NMR) spectroscopy is a key analytical technique in chemistry, biology, and medicine. However, conventional NMR spectroscopy requires an at least nanoliter-sized sample volume to achieve sufficient signal. We combined the use of a quantum memory and high magnetic fields with a dedicated quantum sensor based on nitrogen vacancy centers in diamond to achieve chemical shift resolution in 1H and 19F NMR spectroscopy of 20-zeptoliter sample volumes. We demonstrate the application of NMR pulse sequences to achieve homonuclear decoupling and spin diffusion measurements. The
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24

Mallikarjunaiah, K. J., Jacob J. Kinnun, Horia I. Petrache, and Michael F. Brown. "Flexible lipid nanomaterials studied by NMR spectroscopy." Physical Chemistry Chemical Physics 21, no. 34 (2019): 18422–57. http://dx.doi.org/10.1039/c8cp06179c.

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25

Szell, Patrick M. J., and David L. Bryce. "Solid-state nuclear magnetic resonance and nuclear quadrupole resonance as complementary tools to study quadrupolar nuclei in solids." Concepts in Magnetic Resonance Part A 45A, no. 6 (2016): e21412. http://dx.doi.org/10.1002/cmr.a.21412.

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26

Yamasaki, Akira. "Solid-state nuclear magnetic resonance spectroscopy of metal coordination complexes and organometallics." Coordination Chemistry Reviews 109, no. 1 (1991): 107–23. http://dx.doi.org/10.1016/0010-8545(91)80003-v.

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27

Dawes, Steven B., Ahmed S. Ellaboudy, and James L. Dye. "Cesium-133 solid-state nuclear magnetic resonance spectroscopy of alkalides and electrides." Journal of the American Chemical Society 109, no. 12 (1987): 3508–13. http://dx.doi.org/10.1021/ja00246a002.

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28

Bustillo, Karen C., Mark A. Petrich, and Jeffrey A. Reimer. "Characterization of amorphous hydrogenated carbon using solid-state nuclear magnetic resonance spectroscopy." Chemistry of Materials 2, no. 2 (1990): 202–5. http://dx.doi.org/10.1021/cm00008a025.

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29

Kovaľaková, Mária, Oľga Fričová, Viktor Hronský, Dušan Olčák, Ján Mandula, and Brigita Salaiová. "Characterisation of crumb rubber modifier using solid-state nuclear magnetic resonance spectroscopy." Road Materials and Pavement Design 14, no. 4 (2013): 946–58. http://dx.doi.org/10.1080/14680629.2013.837835.

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30

Leroy, César, and David L. Bryce. "Recent advances in solid-state nuclear magnetic resonance spectroscopy of exotic nuclei." Progress in Nuclear Magnetic Resonance Spectroscopy 109 (December 2018): 160–99. http://dx.doi.org/10.1016/j.pnmrs.2018.08.002.

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31

Loening, Nikolaus M., Barth-Jan Rossum, and Hartmut Oschkinat. "Broadband excitation pulses for high-field solid-state nuclear magnetic resonance spectroscopy." Magnetic Resonance in Chemistry 50, no. 4 (2012): 284–88. http://dx.doi.org/10.1002/mrc.3800.

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32

Rainey, Jan K., Jeffrey S. DeVries, and Brian D. Sykes. "A rotatable flat coil for static solid-state nuclear magnetic resonance spectroscopy." Review of Scientific Instruments 76, no. 8 (2005): 086102. http://dx.doi.org/10.1063/1.1994899.

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33

Loy, Douglas A., Roger A. Assink, Gregory M. Jamison, W. Frere McNamara, S. Prabakar, and Duane A. Schneider. "Characterization of Poly(xylylenes) with Solid-State 13C Nuclear Magnetic Resonance Spectroscopy." Macromolecules 28, no. 17 (1995): 5799–803. http://dx.doi.org/10.1021/ma00121a016.

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34

LAMBERT, J. B., J. S. FRYE, and G. W. CARRIVEAU. "THE STRUCTURE OF ORIENTAL LACQUER BY SOLID STATE NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY." Archaeometry 33, no. 1 (1991): 87–93. http://dx.doi.org/10.1111/j.1475-4754.1991.tb00687.x.

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35

Pietraβ, T., A. Bifone, R. D. Roth, V. P. Koch, A. P. Alivisatos, and A. Pines. "29Si high resolution solid state nuclear magnetic resonance spectroscopy of porous silicon." Journal of Non-Crystalline Solids 202, no. 1-2 (1996): 68–76. http://dx.doi.org/10.1016/0022-3093(96)00144-5.

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36

Wilson, M. A., A. M. Vassallo, Y. L. Liu, and L. S. K. Pang. "High resolution solid state nuclear magnetic resonance spectroscopy of Chinese maceral concentrates." Fuel 69, no. 7 (1990): 931–34. http://dx.doi.org/10.1016/0016-2361(90)90246-m.

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37

Cao, Xiaoyan, John Yang, and Jingdong Mao. "Characterization of kerogen using solid-state nuclear magnetic resonance spectroscopy: A review." International Journal of Coal Geology 108 (March 2013): 83–90. http://dx.doi.org/10.1016/j.coal.2011.12.001.

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38

Laurencin, Danielle, and Sharon Ashbrook. "Recent advances in solid‐state nuclear magnetic resonance spectroscopy of quadrupolar nuclei." Magnetic Resonance in Chemistry 59, no. 9-10 (2021): 851–52. http://dx.doi.org/10.1002/mrc.5192.

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39

Chien, Po-Hsiu, Kent J. Griffith, Haoyu Liu, Zhehong Gan, and Yan-Yan Hu. "Recent Advances in Solid-State Nuclear Magnetic Resonance Techniques for Materials Research." Annual Review of Materials Research 50, no. 1 (2020): 493–520. http://dx.doi.org/10.1146/annurev-matsci-091019-011049.

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Establishing structure–property correlations is of paramount importance to materials research. The ability to selectively detect observable magnetization from transitions between quantized spin states of nuclei makes nuclear magnetic resonance (NMR) spectroscopy a powerful probe to characterize solids at the atomic level. In this article, we review recent advances in NMR techniques in six areas: spectral resolution, sensitivity, atomic correlations, ion dynamics, materials imaging, and hardware innovation. In particular, we focus on the applications of these techniques to materials research. S
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40

Smith, Adam N., and Joanna R. Long. "Dynamic Nuclear Polarization as an Enabling Technology for Solid State Nuclear Magnetic Resonance Spectroscopy." Analytical Chemistry 88, no. 1 (2015): 122–32. http://dx.doi.org/10.1021/acs.analchem.5b04376.

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41

Einfalt, Tomaž, Odon Planinšek, and Klemen Hrovat. "Methods of amorphization and investigation of the amorphous state." Acta Pharmaceutica 63, no. 3 (2013): 305–34. http://dx.doi.org/10.2478/acph-2013-0026.

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Abstract The amorphous form of pharmaceutical materials represents the most energetic solid state of a material. It provides advantages in terms of dissolution rate and bioavailability. This review presents the methods of solid- -state amorphization described in literature (supercooling of liquids, milling, lyophilization, spray drying, dehydration of crystalline hydrates), with the emphasis on milling. Furthermore, we describe how amorphous state of pharmaceuticals differ depending on the method of preparation and how these differences can be screened by a variety of spectroscopic (X-ray powd
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42

Wi, Sungsool, John W. Logan, Dimitris Sakellariou, Jamie D. Walls, and Alexander Pines. "Rotary resonance recoupling for half-integer quadrupolar nuclei in solid-state nuclear magnetic resonance spectroscopy." Journal of Chemical Physics 117, no. 15 (2002): 7024–33. http://dx.doi.org/10.1063/1.1506907.

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43

Halye, Jeffrey L., and Charles V. Rice. "Cadmium Chelation by Bacterial Teichoic Acid from Solid-State Nuclear Magnetic Resonance Spectroscopy." Biomacromolecules 11, no. 2 (2010): 333–40. http://dx.doi.org/10.1021/bm9010479.

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44

Thompson, A. R., and Eric Oldfield. "Solid-state scandium-45, yttrium-89, and lanthanum-139 nuclear magnetic resonance spectroscopy." Journal of the Chemical Society, Chemical Communications, no. 1 (1987): 27. http://dx.doi.org/10.1039/c39870000027.

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45

Mananga, Eugène S., and Thibault Charpentier. "Introduction of the Floquet-Magnus expansion in solid-state nuclear magnetic resonance spectroscopy." Journal of Chemical Physics 135, no. 4 (2011): 044109. http://dx.doi.org/10.1063/1.3610943.

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46

Theint, Theint, Yongjie Xia, Philippe S. Nadaud, et al. "Structural Studies of Amyloid Fibrils by Paramagnetic Solid-State Nuclear Magnetic Resonance Spectroscopy." Journal of the American Chemical Society 140, no. 41 (2018): 13161–66. http://dx.doi.org/10.1021/jacs.8b06758.

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47

Ding, Shangwu, C. A. McDowell, Chaohui Ye, et al. "Quantum computation based on magic-angle-spinning solid state nuclear magnetic resonance spectroscopy." European Physical Journal B 24, no. 1 (2001): 23–35. http://dx.doi.org/10.1007/s100510170018.

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48

Zaper, A. M., and J. L. Koenig. "Applications of high resolution solid state nuclear magnetic resonance spectroscopy to surface studies." Advances in Colloid and Interface Science 22, no. 2-4 (1985): 113–50. http://dx.doi.org/10.1016/0001-8686(85)80003-8.

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49

Frydman, Lucio, Gerard C. Chingas, Young K. Lee, et al. "Variable‐angle correlation spectroscopy in solid‐state nuclear magnetic resonancea)." Journal of Chemical Physics 97, no. 7 (1992): 4800–4808. http://dx.doi.org/10.1063/1.463860.

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50

Rodrigues, Tathiane, Maria Tavares, Igor Soares, Ana Moreira, and Antonio Ferreira. "The Use of Solid State NMR to Characterize High Density Polyethylene/Organoclay Nanocomposites." Chemistry & Chemical Technology 3, no. 3 (2009): 187–90. http://dx.doi.org/10.23939/chcht03.03.187.

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Recently the development of new materials, in special polymeric nanocomposites, formed by polymer and layered silicates, have gained attention. In this work nanocomposites based on high-density polyethylene matrix (HDPE) and organically modified clay were prepared by melt processing and characterized by the determination of proton spin-lattice relaxation time through solid state nuclear magnetic resonance (NMR) spectroscopy. This work has a proposal to add one quantitative technique to help the researchers to better evaluate polymeric nanocomposite, because NMR is an important tool employed to
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