DOI: 10.1021/acsaem.6c01687 ISSN: 2574-0962

Controlling Valence Band for Cu2Sn0.38Ge0.62S3 Particles via Li Substitution at Cu Sites

Yosuke Kageshima, Tsubasa Kaneko, So Kato, Takahito Nishimura, Hiroh Miyagawa, Tetsuya Yamada, Katsuya Teshima, Kazunari Domen, Hiromasa Nishikiori

Abstract

Cu2(Sn,Ge)S3 (CTGS) is a promising near-infrared-responsive photocathode material whose conduction band minimum can be tuned by varying the Sn/Ge ratio, whereas direct control of the valence band maximum (VBM) remains challenging because of the large Cu 3d contribution to the VBM. This study proposes a strategy for adjusting the VBM position for CTGS photocatalytic particles based on a high degree of substitution of monovalent alkali metal cations at Cu+ sites. Specifically, Li+, Na+, and K+ are introduced during solid-state synthesis under H2S flow while reducing the Cu precursor amount. The results show that Na+ and K+ were mainly enriched near the surfaces of CTGS particles because of their larger ionic radii, whereas Li+ could be incorporated into the bulk of the photocatalyst crystals. Substituting Li+ ions at Cu+ sites reduced the contribution of Cu 3d orbitals to VBM formation, thereby positively shifting the VBM position. Notably, Li+-substituted CTGS was still able to absorb near-infrared light up to 900 nm, despite having a wider bandgap than pristine CTGS. Consequently, a photocathode fabricated from Li+-substituted CTGS particles exhibited an increased cathodic photocurrent of –4.5 mA cm–2 at 0 V vs a reversible hydrogen electrode (RHE) and a positively shifted onset potential of 0.38 VRHE during photoelectrochemical hydrogen evolution under simulated sunlight. Device simulations suggested that the positive VBM shift improves the CdS/CTGS band alignment, increases band bending, and suppresses interfacial recombination. It is evident that doping with Li+ represents a promising approach to significantly adjusting the band structures of Cu-based multielement semiconductors.

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