Función de distribución radial (Spanish Wikipedia)

Analysis of information sources in references of the Wikipedia article "Función de distribución radial" in Spanish language version.

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  • Yarnell, J.; Katz, M.; Wenzel, R.; Koenig, S. (1973). «Structure Factor and Radial Distribution Function for Liquid Argon at 85 K». Physical Review A 7 (6): 2130. doi:10.1103/PhysRevA.7.2130. 
  • Gingrich, N. S.; Heaton, L. (1961). «Structure of Alkali Metals in the Liquid State». The publicación of Chemical Physics 34 (3): 873. doi:10.1063/1.1731688. 
  • Sirota, E.; Ou-Yang, H.; Sinha, S.; Chaikin, P.; Axe, J.; Fujii, Y. (1989). «Complete phase diagram of a charged colloidal system: A synchrotron x-ray scattering study». Physical Review Letters 62 (13): 1524-1527. doi:10.1103/PhysRevLett.62.1524. 
  • Pedersen, J. S. (1997). «Analysis of small-angle scattering data from colloids and polymer solutions: Modeling and least-squares fitting». Advances in Colloid and Interface Science 70: 171-201. doi:10.1016/S0001-8686(97)00312-6. 
  • Crocker, J. C.; Grier, D. G. (1996). «Methods of Digital Video Microscopy for Colloidal Studies». Journal of Colloid and Interface Science 179: 298-201. doi:10.1006/jcis.1996.0217. 
  • Nakroshis, P.; Amoroso, M.; Legere, J.; Smith, C. (2003). «Measuring Boltzmann's constant using video microscopy of Brownian motion». American Journal of Physics 71 (6): 568. doi:10.1119/1.1542619. 
  • Pagnola, M. R.; Morales, F.; Tancredi, P.; Socolovsky, L. M. (1 de agosto de 2021). «Radial Distribution Function Analysis and Molecular Simulation of Graphene Nanoplatelets Obtained by Mechanical Ball Milling». JOM (en inglés) 73 (8): 2471-2478. ISSN 1543-1851. doi:10.1007/s11837-020-04499-5. Consultado el 24 de enero de 2022. 
  • Gasser, U.; Weeks, E. R.; Schofield, A.; Pusey, P. N.; Weitz, D. A. (2001). «Real-Space Imaging of Nucleation and Growth in Colloidal Crystallization». Science 292 (5515): 258-262. doi:10.1126/science.1058457. 
  • Weeks, E. R.; Crocker, J. C.; Levitt, A. C.; Schofield, A.; Weitz, D. A. (2000). «Three-Dimensional Direct Imaging of Structural Relaxation Near the Colloidal Glass Transition». Science 287 (5453): 627-631. PMID 10649991. doi:10.1126/science.287.5453.627. 
  • Cipelletti, L.; Manley, S.; Ball, R. C.; Weitz, D. A. (2000). «Universal Aging Features in the Restructuring of Fractal Colloidal Gels». Physical Review Letters 84 (10): 2275-2278. Bibcode:2000PhRvL..84.2275C. PMID 11017262. doi:10.1103/PhysRevLett.84.2275. 
  • Varadan, P.; Solomon, M. J. (2003). «Direct Visualization of Long-Range Heterogeneous Structure in Dense Colloidal Gels». Langmuir 19 (3): 509. doi:10.1021/la026303j. 
  • Gao, C.; Kulkarni, S. D.; Morris, J. F.; Gilchrist, J. F. (2010). «Direct investigation of anisotropic suspension structure in pressure-driven flow». Physical Review E 81 (4). Bibcode:2010PhRvE..81d1403G. doi:10.1103/PhysRevE.81.041403. 
  • Wochner, P.; Gutt, C.; Autenrieth, T.; Demmer, T.; Bugaev, V.; Ortiz, A. D.; Duri, A.; Zontone, F.; Grubel, G.; Dosch, H. (2009). «X-ray cross correlation analysis uncovers hidden local symmetries in disordered matter». Proceedings of the National Academy of Sciences 106 (28): 11511. doi:10.1073/pnas.0905337106. 

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