3D-printed jars for ball-milling experiments monitored in situ by X-ray powder diffraction

Tumanov, Nikolai;Ban, Voraksmy;Poulain, Agnieszka;Filinchuk, Yaroslav
(2017) Journal of Applied Crystallography — Vol. 50 (2017), n° 4, p. 994-999 (2017)

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Authors
  • Tumanov, NikolaiUNamur
    Author
  • Ban, VoraksmyPaul Scherrer Institute (Switzerland)
    Author
  • Poulain, AgnieszkaESRF - Grenoble (France)
    Author
  • Author
Abstract
Mechanochemistry is flourishing in materials science, but a characterization of the related processes is difficult to achieve. Recently, the use of plastic jars in shaker mills has enabled in situ X-ray powder diffraction studies at high-energy beamlines. This paper describes an easy way to design and manufacture these jars by three-dimensional (3D) printing. A modified wall thickness and the use of a thin-walled sampling groove and a two-chamber design, where the milling and diffraction take place in two communicating volumes, allow for a reduced background/absorption and higher angular resolution, with the prospect for use at lower-energy beamlines. 3D-printed polylactic acid jars show good mechanical strength and they are also more resistant to solvents than jars made of polymethyl methacrylate. The source files for printing the jars are available as supporting information.
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Citations

Tumanov, N., Ban, V., Poulain, A., & Filinchuk, Y. (2017). 3D-printed jars for ball-milling experiments monitored in situ by X-ray powder diffraction. Journal of Applied Crystallography, 50 (2017)(4), 994-999. https://doi.org/10.1107/S1600576717006744 (Original work published 2017)