4.8 Article

Composition-Dependent Passivation Efficiency at the CdS/CuIn1-xGaxSe2 Interface

Journal

ADVANCED MATERIALS
Volume 32, Issue 9, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.201907763

Keywords

CIGS; CIGS; CdS; interfacial recombination; solar cells; THz spectroscopy

Funding

  1. Ministerio de Ciencia, Innovacion y Universidades [ENE2017-89561-C4-2-R]
  2. Max Planck Society
  3. regional government of Comunidad de Madrid [2017-T1/AMB-5207]
  4. Severo Ochoa Programme for Centres of Excellence in RD (MINECO) [SEV-2016-0686]

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The bandgap of CuIn1-xGaxSe2 (CIGS) chalcopyrite semiconductors can be tuned between approximate to 1.0 and approximate to 1.7 eV for Ga contents ranging between x = 0 and x = 1. While an optimum bandgap of 1.34 eV is desirable for achieving maximum solar energy conversion in solar cells, state-of-the-art CIGS-based devices experience a drop in efficiency for Ga contents x > 0.3 (i.e., for bandgaps >1.2 eV), an aspect that is limiting the full potential of these devices. The mechanism underlying the limited performance as a function of CIGS composition has remained elusive: both surface and bulk recombination effects are proposed. Here, the disentanglement between surface and bulk effects in CIGS absorbers as a function of Ga content is achieved by comparing photogenerated charge carrier dynamics in air/CIGS and surface-passivated ZnO/CdS/CIGS samples. While surface passivation prevents surface recombination of charge carriers for low Ga content (x < 0.3; up to 1.2 eV bandgap), surface recombination dominates for higher-bandgap materials. The results thus demonstrate that surface, rather than bulk effects, is responsible for the drop in efficiency for Ga contents larger than x approximate to 0.3.

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