Chao Cao, Tingting Huo, Lei Gao, Jiangyue Long, Haoyun Yang, Peixin Liu, Xinlin Ye, Hongjuan Sun, Tongjiang Peng, Jianjun Deng, Faqin Dong
Phosphorus overloading drives eutrophication in aquatic environments, and reducing phosphate to low concentrations remains a central challenge for water treatment. The rational design of high-performance biopolymer-based adsorbents requires a mechanistic understanding of how hydrogel microstructure governs ion immobilisation, yet such understanding remains incomplete for chitosan (CS)/sodium alginate (SA) systems, where phosphate capture has largely been attributed to generic electrostatic and ligand-exchange models. Here, we propose a dual-phase chitosan incorporation strategy, in which CS is distributed in both the internal alginate matrix and the external cross-linking phase under sustained acidic conditions, and combine it with multi-scale characterisation-including SEM-EDS, XPS, XRD, TEM/SAED, and synchrotron Fe K-edge XANES/EXAFS-to establish how this design governs the phosphate sequestration pathway in CS/SA-Fe/Ca/CS hydrogel beads. The results are consistent with a proposed gradient-confined precipitation pathway: interfacial enrichment by protonated amino groups, inner-sphere Fe-O-P coordination accompanied by displacement of Fe-N and Fe-O-COO- bonds, and spatially constrained crystallisation into short-range ordered FePO4-type nanoclusters distributed from the bead surface toward the core. Chitosan amino groups are proposed to act as dynamic regulators through sequential protonation, ligand displacement, and re-protonation, sustaining phosphate capture across a broad pH range. The dual-phase design reconciles the mechanical stability-mass transfer trade-off, and the optimised material delivers a Sips model-derived capacity of 109 mg P g-1 (dry-bead basis), remains recyclable over five adsorption-desorption-re-crosslinking cycles, and lowers phosphate to below 0.5 mg P L-1 in domestic and synthetic wastewater and below 0.3 mg P L-1 in phosphogypsum leachate. These findings link hydrogel microstructure to phosphate immobilisation performance and provide a mechanistic and experimental foundation for the rational design of high-performance polysaccharide-based adsorbents.