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Measurement of Quantum Interference in a Silicon Ring Resonator Photon Source
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Porous Silicon-Based Quantum Dot Broad Spectrum Radiation Detector.

M Urdaneta1, P Stepanov1, I N Weinberg1

  • 1Weinberg Medical Physics, Bethesda, Maryland, USA.

Journal of Instrumentation : an IOP and SISSA Journal
|January 17, 2014
PubMed
Summary

Researchers enhanced silicon radiation detectors by infusing porous silicon with quantum dots, improving stopping power for high-energy x-rays and gamma-rays. This innovation boosts sensitivity for applications in medical imaging and nuclear materials detection.

Keywords:
infraredlead sulfidelightmultispectrumnanoparticlesporous siliconquantum dotsensorx-ray

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Area of Science:

  • Materials Science
  • Semiconductor Physics
  • Radiation Detection

Background:

  • Silicon detectors are cost-effective for radiation detection but exhibit low stopping power for high-energy photons (e.g., 100 keV to 1 MeV).
  • High stopping power is crucial for effective detection in medical imaging (computed tomography, digital radiography) and nuclear materials security.

Purpose of the Study:

  • To enhance the stopping power of silicon-based radiation detectors.
  • To improve the sensitivity of silicon detectors for high-energy x-rays and gamma-rays.

Main Methods:

  • Fabrication of a porous or micro-machined silicon layer.
  • Infusion of this layer with semiconductor quantum dots composed of electron-dense materials.

Main Results:

  • Successfully increased the stopping power of silicon detectors.
  • Demonstrated prototype detector sensitivity across infrared, visible light, and x-ray spectra.
  • Achieved a low dark current of less than 1 nA/mm².

Conclusions:

  • Porous silicon infused with quantum dots offers a viable method to enhance silicon detector performance.
  • This approach addresses the limitations of silicon's stopping power for high-energy radiation.
  • The enhanced detectors show promise for advanced applications in medical imaging and security.