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For [[visible light]] most [[transparency and translucency|transparent]] media have refractive indices between 1 and 2. A few examples are given in the adjacent table. These values are measured at the yellow doublet [[D2 line|D-line]] of [[sodium]], with a wavelength of 589 [[nanometers]], as is conventionally done.<ref name="FBI">{{cite web |title= Forensic Science Communications, Glass Refractive Index Determination |url= https://www.fbi.gov/about-us/lab/forensic-science-communications/fsc/jan2005/index.htm/standards/2005standards9.htm |url-status= dead |archive-url= https://web.archive.org/web/20140910195815/http://www.fbi.gov/about-us/lab/forensic-science-communications/fsc/jan2005/index.htm/standards/2005standards9.htm |archive-date= 2014-09-10 |access-date= 2014-09-08 |publisher= FBI Laboratory Services}}</ref> Gases at atmospheric pressure have refractive indices close to 1 because of their low density
For [[infrared]] light refractive indices can be considerably higher. [[Germanium]] is transparent in the wavelength region from {{val|2|to|14|u=µm}} and has a refractive index of about 4.<ref>Tosi, Jeffrey L., article on [http://www.photonics.com/EDU/Handbook.aspx?AID=25495 Common Infrared Optical Materials] in the Photonics Handbook, accessed on 2014-09-10</ref> A type of new materials termed "[[topological insulators]]", was recently found which have high refractive index of up to 6 in the near to mid infrared frequency range. Moreover, topological insulators are transparent when they have nanoscale thickness. These properties are potentially important for applications in infrared optics.<ref>{{Cite journal|last1=Yue|first1=Zengji|last2=Cai|first2=Boyuan|last3=Wang|first3=Lan|last4=Wang|first4=Xiaolin|last5=Gu|first5=Min|date=2016-03-01|title=Intrinsically core-shell plasmonic dielectric nanostructures with ultrahigh refractive index|journal=Science Advances|language=en|volume=2|issue=3|pages=e1501536|doi=10.1126/sciadv.1501536|issn=2375-2548|pmc=4820380|pmid=27051869|bibcode=2016SciA....2E1536Y}}</ref>
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