A 5-μm pitch charge-coupled device optimized for resonant inelastic soft X-ray scattering.

Rev Sci Instrum

Lawrence Berkeley National Laboratory (LBNL), 1 Cyclotron Road, Berkeley, California 94720, USA.

Published: August 2017

AI Article Synopsis

  • Developed a 1.5 megapixel charge-coupled device (CCD) with optimized pixel geometry for improved detection of soft to hard X-rays (up to >8 keV).
  • The device features a fully depleted 200 μm-thick silicon structure that is back-illuminated for enhanced efficiency and performance in Resonant Inelastic X-ray Scattering (RIXS) applications.
  • Test results show significantly improved spectroscopic performance over standard commercial cameras, with a low readout noise (3-6 electrons) and a quantum efficiency exceeding 75% from 200 eV to 1 keV.

Article Abstract

We have developed a charge-coupled device (CCD) with 5 μm × 45 μm pixels on high-resistivity silicon. The fully depleted 200 μm-thick silicon detector is back-illuminated through a 10 nm-thick in situ doped polysilicon window and is thus highly efficient for soft through >8 keV hard X-rays. The device described here is a 1.5 megapixel CCD with 2496 × 620 pixels. The pixel and camera geometry was optimized for Resonant Inelastic X-ray Scattering (RIXS) and is particularly advantageous for spectrometers with limited arm lengths. In this article, we describe the device architecture, construction and operation, and its performance during tests at the Advance Light Source (ALS) 8.0.1 RIXS beamline. The improved spectroscopic performance, when compared with a current standard commercial camera, is demonstrated with a ∼280 eV (C) X-ray beam on a graphite sample. Readout noise is typically 3-6 electrons and the point spread function for soft C X-rays in the 5 μm direction is 4.0 μm ± 0.2 μm. The measured quantum efficiency of the CCD is greater than 75% in the range from 200 eV to 1 keV.

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Source
http://dx.doi.org/10.1063/1.4997727DOI Listing

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