Size-dependent multiexciton dynamics governs scintillation from perovskite quantum dots

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Fratelli, Andrea, Zaffalon, Matteo L., Mazzola, Emanuele, Dirin, Dmitry, Cherniukh, Ihor, Martinez, Clara Otero, Salomoni, Matteo, Carulli, Francesco, Meinardi, Francesco, Gironi, Luca, Manna, Liberato, Kovalenko, Maksym V., Brovelli, Sergio
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914957090619392
author Fratelli, Andrea
Zaffalon, Matteo L.
Mazzola, Emanuele
Dirin, Dmitry
Cherniukh, Ihor
Martinez, Clara Otero
Salomoni, Matteo
Carulli, Francesco
Meinardi, Francesco
Gironi, Luca
Manna, Liberato
Kovalenko, Maksym V.
Brovelli, Sergio
author_facet Fratelli, Andrea
Zaffalon, Matteo L.
Mazzola, Emanuele
Dirin, Dmitry
Cherniukh, Ihor
Martinez, Clara Otero
Salomoni, Matteo
Carulli, Francesco
Meinardi, Francesco
Gironi, Luca
Manna, Liberato
Kovalenko, Maksym V.
Brovelli, Sergio
contents The recent emergence of quantum confined nanomaterials in the field of radiation detection, in particular lead halide perovskite nanocrystals, offers potentially revolutionary scalability and performance advantages over conventional materials. This development raises fundamental questions about the mechanism of scintillation itself at the nanoscale and the role of particle size, arguably the most defining parameter of quantum dots. Understanding this is crucial for the design and optimisation of future nanotechnology scintillators. In this work, we address these open questions by theoretically and experimentally studying the size-dependent scintillation of CsPbBr3 nanocrystals using a combination of Monte Carlo simulations, spectroscopic, and radiometric techniques. The results reveal and unravel a complex parametric space where the fine balance between the simultaneous effects of size-dependent energy deposition, (multi-)exciton population, and light emission under ionizing excitation, typical of confined particles, combine to maximize the scintillation efficiency and time performance of larger nanocrystals due to greater stopping power and reduced Auger decay. The remarkable agreement between theory and experiment produces a fully validated descriptive model that unprecedentedly predicts the scintillation yield and kinetics of nanocrystals without free parameters, providing the first fundamental guide for the rational design of nanoscale scintillators.
format Preprint
id arxiv_https___arxiv_org_abs_2409_16994
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Size-dependent multiexciton dynamics governs scintillation from perovskite quantum dots
Fratelli, Andrea
Zaffalon, Matteo L.
Mazzola, Emanuele
Dirin, Dmitry
Cherniukh, Ihor
Martinez, Clara Otero
Salomoni, Matteo
Carulli, Francesco
Meinardi, Francesco
Gironi, Luca
Manna, Liberato
Kovalenko, Maksym V.
Brovelli, Sergio
Applied Physics
Mesoscale and Nanoscale Physics
The recent emergence of quantum confined nanomaterials in the field of radiation detection, in particular lead halide perovskite nanocrystals, offers potentially revolutionary scalability and performance advantages over conventional materials. This development raises fundamental questions about the mechanism of scintillation itself at the nanoscale and the role of particle size, arguably the most defining parameter of quantum dots. Understanding this is crucial for the design and optimisation of future nanotechnology scintillators. In this work, we address these open questions by theoretically and experimentally studying the size-dependent scintillation of CsPbBr3 nanocrystals using a combination of Monte Carlo simulations, spectroscopic, and radiometric techniques. The results reveal and unravel a complex parametric space where the fine balance between the simultaneous effects of size-dependent energy deposition, (multi-)exciton population, and light emission under ionizing excitation, typical of confined particles, combine to maximize the scintillation efficiency and time performance of larger nanocrystals due to greater stopping power and reduced Auger decay. The remarkable agreement between theory and experiment produces a fully validated descriptive model that unprecedentedly predicts the scintillation yield and kinetics of nanocrystals without free parameters, providing the first fundamental guide for the rational design of nanoscale scintillators.
title Size-dependent multiexciton dynamics governs scintillation from perovskite quantum dots
topic Applied Physics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2409.16994