Non-equilibrium stabilization of sulfur-rich zinc blende Cu1+δI1−xSx alloys with ultra-degenerate p-type conductivity

High-performance p-type transparent conductors are limited by low conductivity and poor stability. Here, we report the synthesis of Cu1+δI1−xSx alloy films via non-equilibrium magnetron co-sputtering, enabling sulfur incorporation beyond the thermodynamic solubility limits. X-ray diffraction reveals stabilization of the zinc blende-dominated structure up to x ≈ 0.8, with systematic lattice contraction, consistent with substantial substitutional sulfur incorporation. Sulfur alloying induces a transition toward degenerate p-type conduction, with hole concentrations increasing from ∼1018 to 1022 cm−3, while the optical bandgap narrows from ∼3.1 to ∼2.2 eV. X-ray photoelectron spectroscopy and first-principles calculations show that sulfur incorporation preserves the Cu+ valence state and modifies the electronic structure through valence band elevation and conduction band lowering. Defect calculations indicate that sulfur alloying enhances p-type conductivity primarily by tuning the formation energetics and electronic character of copper vacancies, which dominate hole generation. These results demonstrate a non-equilibrium route for engineering CuI-based alloys with tunable electronic structure and high p-type conductivity, offering a promising platform for transparent electronic applications.

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Journal
Applied Physics Letters
Published
2026-09-28
DOI
https://doi.org/10.1063/5.0352407
Primary Topic
Copper-based nanomaterials and applications
Type
article
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Non-equilibrium stabilization of sulfur-rich zinc blende Cu1+δI1−xSx alloys with ultra-degenerate p-type conductivity

Kin Man Yu, Chun Yuen Ho, Gui Shan Liu, Chao Ping Liu et al.
Applied Physics Letters
Copper-based nanomaterials and applications
article

Non-equilibrium stabilization of sulfur-rich zinc blende Cu1+δI1−xSx alloys with ultra-degenerate p-type conductivity

Kin Man Yu, Chun Yuen Ho, Gui Shan Liu, Chao Ping Liu, Bei Deng, Yuanshen Qi, Xiong Jing Chen, Zhan Hua Li, Li Rong Lin, Qing Xing Duan, Xue Chao Zou
article en

Abstract

High-performance p-type transparent conductors are limited by low conductivity and poor stability. Here, we report the synthesis of Cu1+δI1−xSx alloy films via non-equilibrium magnetron co-sputtering, enabling sulfur incorporation beyond the thermodynamic solubility limits. X-ray diffraction reveals stabilization of the zinc blende-dominated structure up to x ≈ 0.8, with systematic lattice contraction, consistent with substantial substitutional sulfur incorporation. Sulfur alloying induces a transition toward degenerate p-type conduction, with hole concentrations increasing from ∼1018 to 1022 cm−3, while the optical bandgap narrows from ∼3.1 to ∼2.2 eV. X-ray photoelectron spectroscopy and first-principles calculations show that sulfur incorporation preserves the Cu+ valence state and modifies the electronic structure through valence band elevation and conduction band lowering. Defect calculations indicate that sulfur alloying enhances p-type conductivity primarily by tuning the formation energetics and electronic character of copper vacancies, which dominate hole generation. These results demonstrate a non-equilibrium route for engineering CuI-based alloys with tunable electronic structure and high p-type conductivity, offering a promising platform for transparent electronic applications.

Applied Physics LettersVol. 129(13)
National Sun Yat-sen University (TW), Technion – Israel Institute of Technology (IL), University of Southern Denmark (DK), Shantou University (CN), Guangdong Technion-Israel Institute of Technology (CN), Nanjing University (CN)
Openalex Percentile: Top 26%
Copper-based nanomaterials and applications
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