William Ramsay, Morris W. Travers: On a new constituent of atmospheric air. In: Proceedings of the Royal Society of London. 1898, Band 63, Nummer 389-400, S.405–408, doi:10.1098/rspl.1898.0051.
Stefan I. B. Cartledge, J. T. Lauroesch, David M. Meyer, Ulysses J. Sofia, Geoffrey C. Clayton: Interstellar Krypton Abundances: The Detection of Kiloparsec-scale Differences in Galactic Nucleosynthetic History. In: The Astrophysical Journal. 687, 2008, S.1043–1053, doi:10.1086/592132.
Jean-Christophe Rostaing, Francis Bryselbout, Michel Moisan, Jean-Claude Parenta: Méthode d’épuration des gaz rares au moyen de décharges électriques de haute fréquence. In: Comptes Rendus de l'Académie des Sciences – Series IV – Physics. 1, 1, 2000, S.99–105, doi:10.1016/S1296-2147(00)70012-6.
Wolfram Saenger, Mathias Noltemeyer: Röntgen-Strukturanalyse des α-Cyclodextrin-Krypton-Einschlußkomplexes: Ein Edelgas in organischer Matrix. In: Angewandte Chemie. 86, 16, 1972, S.594–595, doi:10.1002/ange.19740861611.
G. Audi, F. G. Kondev, Meng Wang, W.J. Huang, S. Naimi: The NUBASE2016 evaluation of nuclear properties. In: Chinese Physics C. 41, 2017, S.030001, doi:10.1088/1674-1137/41/3/030001 (Volltext).
Zackary I. Cleveland, Galina E. Pavlovskaya, Nancy D. Elkins, Karl F. Stupic, John E. Repine, Thomas Meersmann: Hyperpolarized 83Kr MRI of lungs. In: Journal of Magnetic Resonance. 195, 2008, 2, S.232–237, doi:10.1016/j.jmr.2008.09.020.
Thomas H. Johnson, Allen M. Hunter: Physics of the krypton fluoride laser. In: J. Appl. Phys. 51, 1980, S.2406–2420, doi:10.1063/1.328010.
Deokiee Chon, Kenneth C. Beck, Brett A. Simon, Hidenori Shikata, Osama I. Saba, Eric A. Hoffman: Effect of low-xenon and krypton supplementation on signal/noise of regional CT-based ventilation measurements. In: J. Appl. Physiol. 102, 2007, S.1535–1544, doi:10.1152/japplphysiol.01235.2005.
V. M. Aulchenko, S. G. Klimenko, G. M. Kolachev, L. A. Leontiev, A. P. Onuchin, V. S. Panin, Yu. V. Pril, V. A. Rodyakin, A. V. Rylin, V. A. Tayursky, Yu. A. Tikhonov, P. Cantoni, P. L. Frabetti, L. Stagni, G. Lo Bianco, F. Palombo, P. F. Manfredi, V. Re, V. Speziali: Investigation of an electromagnetic calorimeter based on liquid krypton. In: Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment. 289, 1990, S.468–474, doi:10.1016/0168-9002(90)91518-G.
E. Mazzucato: Status of the NA48 experiment at the CERN SPS. In: Nuclear Physics B – Proceedings Supplements. 59, 1997, S.174–181, doi:10.1016/S0920-5632(97)00440-4.
Michael Schoeppner, Alexander Glaser:Present and future potential of krypton-85 for the detection of clandestine reprocessing plants for treaty verification. In: Journal of Environmental Radioactivity. Band162–163, C, Juni 2016, doi:10.1016/j.jenvrad.2016.06.001.
Leonid Khriachtchev, Hanna Tanskanen, Arik Cohen, R. Benny Gerber, Jan Lundell, Mika Pettersson, Harri Kiljunen, Markku Räsänen: A Gate to Organokrypton Chemistry: HKrCCH. In: Journal of the American Chemical Society. 125, 23, 2003, S.6876–6877, doi:10.1021/ja0355269.
PatentEP1752417:Process and apparatus for the production of krypton and/or xenon.Angemeldetam20.September 2005,veröffentlichtam14.Februar 2007,Anmelder:Linde AG,Erfinder:Matthias Meilinger.
G. Audi, F. G. Kondev, Meng Wang, W.J. Huang, S. Naimi: The NUBASE2016 evaluation of nuclear properties. In: Chinese Physics C. 41, 2017, S.030001, doi:10.1088/1674-1137/41/3/030001 (Volltext).
www-pub.iaea.org
R. Purtschert, R. Yokochi, N. C. Sturchio: Krypton-81 dating of old groundwater. S.91–124 in: A. Suckow, P. K. Aggarwal, L. Araguas-Araguas (Hrsg.): Isotope Methods For Dating Old Groundwater. Internationale Atomenergiebehörde, Wien 2013 (PDF 18MB; komplettes Buch)
Eintrag zu Krypton(Phase change data). In: P.J. Linstrom, W.G. Mallard (Hrsg.): NIST Chemistry WebBook, NIST Standard Reference Database Number 69. National Institute of Standards and Technology, Gaithersburg MD,abgerufen am 17.November 2019.