Journal of Power Sources· 2026Q1
Quasi-high-entropy alloy CoNiCuMnCd/NC directly derived from ZIF-type MOFs as counter electrode catalysts for dye-sensitized solar cells
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- Q1SCImago
- 2026year
Short summary
A quasi-high-entropy alloy, CoNiCuMnCd/NC, derived from ZIF-type MOFs, achieved a 7.44% power conversion efficiency (PCE) in dye-sensitized solar cells (DSSCs), outperforming Pt (6.95%).
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Key points
- A quasi-high-entropy alloy (CoNiCuMnCd/NC) was synthesized from ZIF-type MOFs via high-temperature pyrolysis.
- The CoNiCuMnCd/NC catalyst exhibited superior electrochemical properties, including the lowest charge transfer resistance (R ct = 1.36 Ω cm 2) and highest exchange current density (J 0 = 4.87 mA cm −2).
- Dye-sensitized solar cells (DSSCs) using CoNiCuMnCd/NC as the counter electrode achieved a power conversion efficiency (PCE) of 7.44%, exceeding that of Pt (6.95%).
- The alloy design optimizes electron transfer, adsorption energy, and interface energy alignment for photovoltaic applications.
AI-generated from the title and abstract; the full text is not read.
Abstract
High-entropy alloys (HEAs) as counter electrode (CE) catalysts can promote the power conversion efficiency (PCE) of dye-sensitized solar cells (DSSCs), due to their intrinsic characteristics of the high configurational entropy, lattice distortion, delayed diffusion and cocktail effects. Herein, five transition metal (Co, Ni, Cu, Mn and Cd) ions were combined with 2-methylimidazole to assemble ZIF-type metal-organic frameworks (MOFs) as sacrificial precursors. Then, the four transition metal alloy/N-doped carbon (NC) catalysts (CoNi/NC, CoNiCu/NC, CoNiCuMn/NC, and CoNiCuMnCd/NC) were derived respectively from precursors via pyrolysis in N 2 under high temperature. The structural characteristics of alloys were confirmed through XRD, XPS, TEM, SEM, and N 2 adsorption/desorption. Electrochemical characterization including EIS, Tafel, and CV presented that CoNiCuMnCd/NC achieved the lowest R ct (1.36 Ω cm 2 ), largest J 0 (4.87 mA cm −2 ), narrowest Δ E pp (0.204 V) and highest | I p | (2.384 mA cm −2 ) for I 3 − /I − shuttles regeneration. The J-V results show that the PCE of DSSCs assembled with CoNiCuMnCd/NC CE reaches 7.44%, which is superior to CoNi/NC (6.09%), CoNiCu/NC (6.37%), CoNiCuMn/NC (6.98%), and even Pt (6.95%). The CoNiCuMnCd/NC based on entropy-driven design can be classified as quasi-HEA, which optimize electron transfer, adsorption energy, and interface energy alignment, thereby providing a high-performance and cost-effective way to select catalysts for photovoltaic application in DSSCs.
The authors' abstract, as published at the source. Journal of Power Sources, 2026 · DOI ↗
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Field: Renewable Energy, Sustainability and the Environment
Renewable Energy, Sustainability and the EnvironmentEnergy