001026002 001__ 1026002 001026002 005__ 20250204113851.0 001026002 0247_ $$2doi$$a10.1515/zkri-2024-0001 001026002 0247_ $$2ISSN$$a2194-4946 001026002 0247_ $$2ISSN$$a0044-2968 001026002 0247_ $$2ISSN$$a2196-7105 001026002 0247_ $$2ISSN$$a2366-1798 001026002 0247_ $$2WOS$$aWOS:001209070300001 001026002 037__ $$aFZJ-2024-03258 001026002 082__ $$a540 001026002 1001_ $$0P:(DE-HGF)0$$aDronskowski, Richard$$b0 001026002 245__ $$aNeutron diffraction: a primer 001026002 260__ $$aBerlin$$bDe Gruyter$$c2024 001026002 3367_ $$2DRIVER$$aarticle 001026002 3367_ $$2DataCite$$aOutput Types/Journal article 001026002 3367_ $$0PUB:(DE-HGF)16$$2PUB:(DE-HGF)$$aJournal Article$$bjournal$$mjournal$$s1728995706_24962 001026002 3367_ $$2BibTeX$$aARTICLE 001026002 3367_ $$2ORCID$$aJOURNAL_ARTICLE 001026002 3367_ $$00$$2EndNote$$aJournal Article 001026002 520__ $$aBecause of the neutron’s special properties, neutron diffraction may be considered one of the most powerful techniques for structure determination of crystalline and related matter. Neutrons can be released from nuclear fission, from spallation processes, and also from low-energy nuclear reactions, and they can then be used in powder, time-of-flight, texture, single crystal, and other techniques, all of which are perfectly suited to clarify crystal and magnetic structures. With high neutron flux and sufficient brilliance, neutron diffraction also excels for diffuse scattering, for in situ and operando studies as well as for high-pressure experiments of today’s materials. For these, the wave-like neutron’s infinite advantage (isotope specific, magnetic) is crucial to answering important scientific questions, for example, on the structure and dynamics of light atoms in energy conversion and storage materials, magnetic matter, or protein structures. 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