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March 14, 2026Applied Organometallic Chemistry1 citations

Preparation of Potassium Copper (II) Ferrocyanide Anchoring Hydrogel Composites for Rubidium Recovery

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PLPeihua LinGJG. JinBLBo‐Lin Liu

Key Points

  • To develop a hydrogel composite using potassium copper ferrocyanide for efficient rubidium recovery.
  • Synthesis of a ternary hydrogel using graphene, polyvinyl alcohol, chitosan, and tetracarboxylic acid.
  • In situ formation of potassium copper (II) ferrocyanide composites through coprecipitation in a specific K4Fe(CN)6 solution.
  • Characterization of the structure and properties using FE-SEM, EDS, XRD, and IR methods.
  • Achieved an adsorption capacity of approximately 262.48 mg g −1 for rubidium at specific conditions.
  • Over 95% desorption efficiency of rubidium was realized using a 0.5 mol L −1 HCl/NH4Cl solution.
  • The adsorption process followed a pseudo-second-order model and fit a three-stage intraparticle diffusion process.

Abstract

ABSTRACT Potassium copper ferrocyanide (KCuFC) is considered promising for rubidium resource recovery with high adsorption capacity and excellent selectivity. However, its microcrystalline powder structure restricts the recycling. In this work, a useful ternary hydrogel was prepared using graphene/polyvinyl alcohol/chitosan/tetracarboxylic acid (RPCT) by via hydrogen bond reaction. In which graphene makes the improved stability, tetracarboxylic acid offers many chelating sites for Cu 2+ . Further, potassium copper (II) ferrocyanide anchoring hydrogel composites (RPCT‐KCuFC) could be formed in situ in 40 mmol L −1 K 4 Fe(CN) 6 by coprecipitation. Various FE‐SEM, EDS, XRD, IR, and other technologies proved the structure, composition, and physical properties. The recovery of Rb + was investigated using RPCT‐KCuFC from solution in detail. The adsorption process fits pseudo‐second‐order model with three‐stage intraparticle diffusion process, and the Langmuir isotherm model could explain the adsorption behavior. The adsorption capacity is about 262.48 mg g −1 (45°C, 4 h, pH 7, Rb + initial = 10 mg L −1 ). Over 95% of Rb + could be desorbed from the RPCT‐KCuFC (Rb + ) in 0.5 mol L −1 of HCl/NH 4 Cl with 4 h. Moreover, RPCT‐KCuFC was applied to recover Rb + from simulative brine. The present work provided effective immobilization strategies of KCuFC for separating Rb + .

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Cite This Study

Lin et al. (2026) studied this question.

synapsesocial.com/papers/69b4fbf9b39f7826a300c852https://doi.org/10.1002/aoc.70555
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