4.8 Article

Core Levels, Band Alignments, and Valence-Band States in CuSbS2 for Solar Cell Applications

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 9, Issue 48, Pages 41916-41926

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.7b14208

Keywords

CuSbS2; copper antimony sulfide; XPS; DFT; thin-film solar cells; band alignments; density of states

Funding

  1. U.K. Engineering and Physical Sciences Research Council (EPSRC)
  2. EPSRC [EP/J50047/1, EP/K503095/1, EP/L505018/1, EP/L000202, EP/N01572X/1, EP/N015800/1]
  3. U.S. Department of Energy, Office of Energy Efficiency and Renewable Energy [DE-AC36-08GO28308]
  4. UCL Legion (Legion@UCL)
  5. Grace (Grace@UCL) HPC Facilities
  6. EPSRC
  7. Department of Chemistry at UCL [1492829]
  8. EPSRC [EP/L000202/1, EP/N01572X/1, EP/N015800/1] Funding Source: UKRI
  9. Engineering and Physical Sciences Research Council [1492829, EP/N015800/1, EP/L000202/1, 1231178, EP/N01572X/1] Funding Source: researchfish

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The earth-abundant material CuSbS2 (CAS) has shown good optical properties as a photovoltaic solar absorber material, but has seen relatively poor solar cell performance. To investigate the reason for this anomaly, the core levels of the constituent elements, surface contaminants, ionization potential, and valence-band spectra are studied by X-ray photoemission spectroscopy. The ionization potential and electron affinity for this material (4.98 and 3.43 eV) are lower than those for other common absorbers, including CuInxGa(1-x)Se2 (CIGS). Experimentally corroborated density functional theory (DFT) calculations show that the valence band maximum is raised by the lone pair electrons from the antimony cations contributing additional states when compared with indium or gallium cations in CIGS. The resulting conduction band misalignment with CdS is a reason for the poor performance of cells incorporating a CAS/CdS heterojunction, supporting the idea that using a cell design analogous to CIGS is unhelpful. These findings underline the critical importance of considering the electronic structure when selecting cell architectures that optimize open-circuit voltages and cell efficiencies.

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