20%-efficient polycrystalline Cd(Se,Te) thin-film solar cells with compositional gradient near the front junction

Abstract

Bandgap gradient is a proven approach for improving the open-circuit voltages (VOCs) in Cu(In,Ga)Se2 and Cu(Zn,Sn)Se2 thin-film solar cells, but has not been realized in Cd(Se,Te) thin-film solar cells, a leading thin-film solar cell technology in the photovoltaic market. Here, we demonstrate the realization of a bandgap gradient in Cd(Se,Te) thin-film solar cells by introducing a Cd(O,S,Se,Te) region with the same crystal structure of the absorber near the front junction. The formation of such a region is enabled by incorporating oxygenated CdS and CdSe layers. We show that the introduction of the bandgap gradient reduces the hole density in the front junction region and introduces a small spike in the band alignment between this and the absorber regions, effectively suppressing the nonradiative recombination therein and leading to improved VOCs in Cd(Se,Te) solar cells using commercial SnO2 buffers. A champion device achieves an efficiency of 20.03% with a VOC of 0.863 V.

Document Details

Document Type
Pub Defense Publication
Publication Date
Dec 21, 2022
Source ID
10.1038/s41467-022-35442-8

Entities

People

  • Abasi Abudulimu
  • Adam Phillips
  • David A Cullen
  • Deng-Bing Li
  • Jonathan Poplawsky
  • Kamala Khanal Subedi
  • Manoj K. Jamarkattel
  • Michael J. Heben
  • Randy J Ellingson
  • Rasha A Awni
  • Sabin Neupane
  • Sandip S Bista
  • Xiaoming Wang
  • Yanfa Yan

Organizations

  • Air Force Research Laboratory Information Directorate
  • National Science Foundation

Tags

Fields of Study

  • Materials science

Readers

  • Semiconductor Device Technology
  • Solar Photovoltaics and Thermoelectric Devices.
  • Systems Analysis and Design