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A dual-functional adsorption-photocatalysis system driven by interfacial charge dynamics in a type-II 3D/2D CdIn(2)S(4)/nickel metal-organic layer heterojunction for environmental purification and water splitting.

PubMed
Authors: Shi K, Wang Z, Li X, Xiao Q, Ji W, Zhang J, Mu J, Yao H

Year

2026

Paper ID

9615

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

221

Citations

9

Abstract

The efficient removal of pollutants and solar-driven hydrogen production are crucial for advancing a green economy, yet their practical implementation remains challenging. In this study, we shortened the transport path of photogenerated charge carriers and increased the interfacial contact area by exfoliating 3D nickel metal-organic frameworks (Ni-MOFs) into 2D nickel metal-organic layers (Ni-MOLs). A 3D/2D CdInS/Ni-MOLs (CIS/NM) type-II heterojunction was successfully constructed via a one-pot solvothermal method, in which 3D CdInS was grown in situ on 2D Ni-MOLs. This heterojunction demonstrated synergistic and efficient adsorption-photocatalytic degradation of methylene blue (MB) and photocatalytic hydrogen production. Adsorption tests revealed that 1.5 CIS/NM achieved a capacity of 38.2 mg g for MB (30 mg L) within 240 min, following the Langmuir isotherm model and pseudo-second-order kinetics. Under optimized initial MB concentration and pH conditions C = 10 mg L, pH = 11, the synergistic removal efficiency of 1.5 CIS/NM reached 99.9 %. Density functional theory (DFT) calculations and mechanistic studies confirmed the formation of a type-II heterojunction between CdInS and Ni-MOLs, with •OH and •O identified as the dominant reactive radicals. Furthermore, 1.5 CIS/NM exhibited excellent photocatalytic hydrogen evolution performance, with a rate of 1247 μmol g h and an apparent quantum efficiency of 8.1 % at 400 nm. This study offers a straightforward synthesis strategy for achieving adsorption-degradation of pollutants and solar hydrogen production, providing new insights for the design of bifunctional photocatalysts.

Why This Paper Matters

  • This paper contributes to the Quantum Chemistry research area in the Quantum Articles archive.
  • It adds a 2026 reference point for readers tracking recent quantum research.
  • The efficient removal of pollutants and solar-driven hydrogen production are crucial for advancing a green economy, yet their practical implementation remains challenging.

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