Skip to main navigation Skip to search Skip to main content

Resilience of High-Efficiency CdSeTe:As and CdSeTe:Cu Solar Cells to Proton Irradiation: Article No. 035009

  • Scott Lambright
  • , Zachary Zawisza
  • , Aesha Patel
  • , Tamara Isaacs-Smith
  • , Patrick Chen
  • , Samuel Erickson
  • , Sabin Neupane
  • , James Becker
  • , Ebin Bastola
  • , Abasi Abudulimu
  • , Richard Irving
  • , Adam Phillips
  • , Michael Heben
  • , Yanfa Yan
  • , Zhaoning Song
  • , Randy Ellingson
  • University of Toledo
  • Auburn University
  • First Solar

Research output: Contribution to journalArticlepeer-review

Abstract

Power generation in space is currently dominated by expensive III-V multi-junction photovoltaic (PV) devices and cheap crystalline silicon (c-Si) PV devices. Both of these technologies degrade rapidly in proton-radiation-rich space environments, such as the Van Allen belt. The present study of cadmium selenide telluride- (CdSeTe-) based PV devices exposed to 150-to-1500 keV proton irradiation with fluences up to 9 x 1013 cm-2 reveal a more radiation-hard alternative to III-V and c-Si PV technologies. We report on measurement and analysis of current density vs voltage (JV), external quantum efficiency (EQE), external radiative efficiency, and capacitance vs voltage (CV) characteristics. JV characteristics of As-doped CdSeTe devices show 80% remaining power conversion efficiency (PCE) relative to unexposed controls when exposed to 650 keV protons at a fluence of 1012 cm-2. Under these same irradiation conditions, Cu-doped CdSeTe devices demonstrate an even better 95% PCE retention compared with unirradiated control devices. Evidence of radiation-induced absorber p-type doping compensation is observed in the glass-side EQE at 0 V and CV characteristics of most of the irradiated CdSeTe:As devices, but clear compensation is evident only for the most heavily irradiated CdSeTe:Cu devices. Elevated blue-green photocurrent in the film-side 0 V EQE suggests a buried junction in the most heavily irradiated CdSeTe:As devices. Although CdSeTe:Cu devices are the more resilient of the CdSeTe structures, both CdSeTe-based technologies are radiation-hard when compared to c-Si and III-V multi-junction PV.
Original languageAmerican English
Number of pages13
JournalJPhys Energy
Volume8
DOIs
StatePublished - 2026

NLR Publication Number

  • NLR/JA-5K00-102060

Keywords

  • CdSeTe
  • CdTe
  • photovoltaics
  • proton radiation
  • solar cell
  • space PV
  • space solar cell

Fingerprint

Dive into the research topics of 'Resilience of High-Efficiency CdSeTe:As and CdSeTe:Cu Solar Cells to Proton Irradiation: Article No. 035009'. Together they form a unique fingerprint.

Cite this