Hydrothermal and Mechanosynthesis of Mixed‐Cation Double Perovskite Scintillators for Radiation Detection

Author:

O'Neill Joseph1ORCID,Ghosh Joydip1ORCID,Alghamdi Suad1,Braddock Isabel1,Crean Carol2ORCID,Dorey Robert3ORCID,Mulholland Roma2,Richards Sion4,Wilson Matthew4,Salway Hayden5,Anaya Miguel5ORCID,Reiss Justin67ORCID,Wolfe Douglas67ORCID,Sellin Paul1ORCID

Affiliation:

1. Department of Physics University of Surrey Guildford GU2 7XH UK

2. Department of Chemistry University of Surrey Guildford GU2 7XH UK

3. School of Mechanical Engineering Sciences University of Surrey Guildford GU2 7XH UK

4. Science and Technology Facilities Council, Rutherford Appleton Laboratory Harwell Campus Didcot OX11 0QX UK

5. Department of Chemical Engineering and Biotechnology University of Cambridge Cambridge CB3 0AS UK

6. Applied Research Laboratory The Pennsylvania State University University Park PA 16801 USA

7. Materials Science and Engineering Department The Pennsylvania State University University Park PA 16801 USA

Abstract

AbstractThis article details work performed on the synthesis and characterization of an inorganic mixed‐cation double halide perovskite, Cs2Ag.6Na.4In.85Bi.15Cl6 (CANIBIC). Single crystals have been created via a hydrothermal reaction, milled into a powder, and pressed into pellets, while nanocrystals have been directly synthesized via mechanosynthesis. A computational model is constructed to predict the X‐ray diffraction pattern of CANIBIC; this model aligns very well with the X‐ray diffraction pattern measured for CANIBIC crystal powder. This model can therefore be developed in the future as a tool to predict lattice parameters and crystal structures of other novel double‐halide perovskites. Photoluminescence spectra obtained from each format show broad emission centered at 630 nm, as is typical for self‐trapped exciton emission; self‐trapped exciton emission is also confirmed by investigating photoluminescence intensity as a function of laser power. Nanocomposites are produced via the loading of nanocrystals of CANIBIC into PMMA. Although nanocomposite disks consisting of a small proportion of CANIBIC nanocrystals in PMMA have a smaller mass attenuation coefficient than a pressed pellet of CANIBIC, these disks have comparatively bright radioluminescence due to their optical transparency. These nanocomposite disks are therefore a particularly useful format for the practical use of the CANIBIC scintillator.

Funder

Science and Technology Facilities Council

Engineering and Physical Sciences Research Council

Defense Threat Reduction Agency

Rutherford Appleton Laboratory

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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