Radioluminescent Cu-Au Metal Nanoclusters: Synthesis and Self-Assembly for Efficient X-ray Scintillation and Imaging.
Ren-Wu HuangXin SongShulin ChenJun YinPartha MaityJiayi WangBingyao ShaoHongwei ZhuChunwei DongPeng YuanTaimoor AhmadOmar F MohammedOsman M BakrPublished in: Journal of the American Chemical Society (2023)
Zero-dimensional (0D) scintillation materials have drawn tremendous attention due to their inherent advantages in the fabrication of flexible high-energy radiation scintillation screens by solution processes. Although considerable progress has been made in the development of 0D scintillators, such as the current leading lead-halide perovskite nanocrystals and quantum dots, challenges still persist, including potential issues with self-absorption, air stability, and eco-friendliness. Here, we present a strategy to overcome those limitations by synthesis and self-assembly of a new class of scintillators based on metal nanoclusters. We demonstrate the gram-scale synthesis of an atomically precise nanocluster with a Cu-Au alloy core exhibiting high phosphorescence quantum yield, aggregation-induced emission enhancement (AIEE) behavior, and intense radioluminescence. By controlling solvent interactions, the AIEE-active nanoclusters were self-assembled into submicron spherical superparticles in solution, which we exploited as a novel building block for flexible particle-deposited scintillation films with high-resolution X-ray imaging performance. This work reveals metal nanoclusters and their self-assembled superstructures as a promising class of scintillators for practical applications in high-energy radiation detection and imaging.
Keyphrases
- high resolution
- sensitive detection
- quantum dots
- energy transfer
- room temperature
- label free
- loop mediated isothermal amplification
- mass spectrometry
- fluorescent probe
- solid state
- high throughput
- radiation induced
- magnetic resonance imaging
- high speed
- magnetic resonance
- gene expression
- molecular dynamics
- computed tomography
- high efficiency
- electron microscopy
- photodynamic therapy
- human health
- aqueous solution