AI Article Synopsis

  • Energy-resolved neutron imaging allows for detailed, non-destructive analysis of materials, particularly effective at bright pulsed spallation neutron sources due to advancements in neutron detectors.
  • This method was exemplified through a study of natural gold samples, mapping palladium distributions and revealing crystalline structures within the gold.
  • The technique involves measuring neutron transmission spectra across multiple energy ranges with high spatial resolution, providing a promising alternative to traditional methods that struggle with opaque samples.

Article Abstract

Energy-resolved neutron imaging enables non-destructive analyses of bulk structure and elemental composition, which can be resolved with high spatial resolution at bright pulsed spallation neutron sources due to recent developments and improvements of neutron counting detectors. This technique, suitable for many applications, is demonstrated here with a specific study of ~5-10 mm thick natural gold samples. Through the analysis of neutron absorption resonances the spatial distribution of palladium (with average elemental concentration of ~0.4 atom% and ~5 atom%) is mapped within the gold samples. At the same time, the analysis of coherent neutron scattering in the thermal and cold energy regimes reveals which samples have a single-crystalline bulk structure through the entire sample volume. A spatially resolved analysis is possible because neutron transmission spectra are measured simultaneously on each detector pixel in the epithermal, thermal and cold energy ranges. With a pixel size of 55 μm and a detector-area of 512 by 512 pixels, a total of 262,144 neutron transmission spectra are measured concurrently. The results of our experiments indicate that high resolution energy-resolved neutron imaging is a very attractive analytical technique in cases where other conventional non-destructive methods are ineffective due to sample opacity.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5244400PMC
http://dx.doi.org/10.1038/srep40759DOI Listing

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