Fast Emitting Nanocomposites for High‐Resolution ToF‐PET Imaging Based on Multicomponent Scintillators

Author:

Orfano Matteo1,Pagano Fiammetta23,Mattei Ilaria4,Cova Francesca1,Secchi Valeria15,Bracco Silvia1,Rogers Edith6,Barbieri Luca1,Lorenzi Roberto1,Bizarri Gregory6,Auffray Etiennette2,Monguzzi Angelo15ORCID

Affiliation:

1. Dipartimento di Scienza dei Materiali Università degli Studi Milano‐Bicocca via R. Cozzi 55 Milano 20125 Italy

2. CERN Geneva CH‐1211 Switzerland

3. Dipartimento di Fisica Giuseppe Occhialini Università degli Studi Milano Bicocca Piazza della Scienza 3 Milano 20126 Italy

4. INFN Sezione di Milano via G. Celoria 16 Milan 20133 Italy

5. NANOMIB Center for Biomedical Nanomedicine University of Milano‐Bicocca Milan 20126 Italy

6. School of Aerospace Transport & Manufacturing Cranfield University Bedford MK43 0AL UK

Abstract

AbstractTime‐of‐Flight Positron Emission Tomography (ToF‐PET) is a medical imaging technique, based on the detection of two back‐to‐back γ‐photons generated from radiotracers injected into the body. Its limit is the ability of employed scintillation detectors to discriminate in time the arrival of γ‐pairs, that is, the coincidence time resolution (CTR). A CTR < 50 ps will enable fast imaging with ultralow radiotracer dose. Monolithic materials do not have simultaneously the required high light output and fast emission characteristics, thus the concept of scintillating heterostructure is proposed, where the device is made of a dense scintillator coupled to a fast‐emitting light material. Here a composite polymeric scintillator loaded with hafnium oxide nanoparticles is presented. This enhanced by +300% its scintillation yield, by surpassing commercial plastic scintillators. The nanocomposite is coupled to bismuth germanate oxide (BGO) realizing a multilayer metascintillator. The energy sharing between its components is observed, which activates the nanocomposite's fast emission enabling a net CTR improvement of 25% with respect to monolithic BGO. These results demonstrate that a controlled loading with dense nanomaterials is an excellent strategy to enhance the performance of polymeric scintillators for their use in advanced radiation detection and imaging technologies.

Funder

Engineering and Physical Sciences Research Council

Horizon 2020 Framework Programme

Ministero dell'Università e della Ricerca

Publisher

Wiley

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