Self‐Assembled Colloidal Photonic Structures for Directional Radioluminescence of Gd and Ta Oxide Scintillators

Author:

Strassberg Rotem12ORCID,Nakanishi Akihiro3,Shamaev Betty1,Katznelson Shaul2,Schuetz Roman2,Dosovitskiy Georgy2,Levy Shai1,Be'er Orr1,Shaek Saar1,Onoe Tomoya4,Maekawa Taiki4,Hayakawa Rino4,Tsuji Kazuma4,Murai Kei‐ichiro34,Moriga Toshihiro34ORCID,Bekenstein Yehonadav12ORCID

Affiliation:

1. Department of Materials Science and Engineering Technion – Israel Institute of Technology Haifa 32000 Israel

2. The Solid State Institute Technion – Israel Institute of Technology Haifa 32000 Israel

3. Department of Chemical Science and Technology Graduate School of Advanced Technology and Science Tokushima University 2‐1 Minami‐Josanjima Tokushima 770‐8506 Japan

4. Department of Applied Chemistry Graduate School of Science and Technology for Innovation Tokushima University 2‐1 Minami‐Josanjima Tokushima 770‐8506 Japan

Abstract

AbstractRadiation detection is being revolutionized by integrating photonic elements into scintillators. In this study, a scalable and cost‐effective method is proposed to achieve tuneable emission enhancement across the visible spectrum by colloidal self‐assembly of photonic crystals on scintillator surfaces. This concept is demonstrated for Eu3+/Tb3+‐doped Gd and Ta oxides. Widely available and affordable colloidal nanospheres of SiO2 or polymethyl methacrylate are self‐assembled on these scintillators. The size of the nanospheres is carefully optimized to match the desired emission lines of Eu3+/Tb3+. The result is homogeneous and closely‐packed structures with clear photonic bandgap in the visible range. Under X‐ray excitation, the scintillators covered with the photonic layers exhibit enhanced light extraction in the direction perpendicular to the surface, compared to isotropic emission in the bare scintillator. Such scintillation directionality, when optically matched with a proper detector, will result in higher efficiency of the overall detection system. Moreover, X‐ray imaging demonstrates an enhancement of 25% in system resolution of the scintillator supplemented with the photonic layer compared to unmodified scintillators. The proposed method is scintillator‐ and nanosphere‐agnostic, thus offering a promising versatile approach for directing the scintillation light toward a photodetector and increasing detection system performance, including high‐resolution imaging applications.

Funder

Nancy and Stephen Grand Technion Energy Program

Council for Higher Education

Publisher

Wiley

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