Optical and Scintillation Properties of Record-Efficiency CdTe Nanoplatelets toward Radiation Detection Applications.
Abhinav AnandMatteo L ZaffalonFrancesca CovaValerio PinchettiAli Hossain KhanFrancesco CarulliRosaria BresciaFrancesco MeinardiIwan MoreelsSergio BrovelliPublished in: Nano letters (2022)
Colloidal CdTe nanoplatelets featuring a large absorption coefficient and ultrafast tunable luminescence coupled with heavy-metal-based composition present themselves as highly desirable candidates for radiation detection technologies. Historically, however, these nanoplatelets have suffered from poor emission efficiency, hindering progress in exploring their technological potential. Here, we report the synthesis of CdTe nanoplatelets possessing a record emission efficiency of 9%. This enables us to investigate their fundamental photophysics using ultrafast transient absorption, temperature-controlled photoluminescence, and radioluminescence measurements, elucidating the origins of exciton- and defect-related phenomena under both optical and ionizing excitation. For the first time in CdTe nanoplatelets, we report the cumulative effects of a giant oscillator strength transition and exciton fine structure. Simultaneously, thermally stimulated luminescence measurements reveal the presence of both shallow and deep trap states and allow us to disclose the trapping and detrapping dynamics and their influence on the scintillation properties.
Keyphrases
- quantum dots
- energy transfer
- sensitive detection
- loop mediated isothermal amplification
- heavy metals
- high resolution
- radiation induced
- low dose
- air pollution
- real time pcr
- genome wide
- gene expression
- computed tomography
- magnetic resonance imaging
- health risk
- risk assessment
- brain injury
- dna methylation
- mass spectrometry
- magnetic resonance
- subarachnoid hemorrhage
- cerebral ischemia
- rare case
- light emitting