Yan Zou, Peng Cheng, Tingying Li, Huimin Sui, Yinan Liu, Lei Zhang, Xiaoshu Lv, Guangming Jiang
Mismanagement of Phosphorus (P) depletes phosphate finite rock reserves and exacerbates widespread aquatic eutrophication, driving an urgent demand for integrated strategies that simultaneously remove and recover phosphate (PO43-). Herein, we show that rough-surfaced oblate La(OH)CO3 particles capture PO43- with exceptional efficiency, and the spent one can serve as a slow-release P fertilizer, enabling full pollutant-to-resource conversion. The material achieves a maximum adsorption capacity of 211.59 mgP g-1, rapid chemisorption-dominated kinetics, a broad pH window (3-7), and strong selectivity against competing anions and natural organic matters. In fixed-bed column tests, effluent P concentrations stayed below 0.2 mg L-1 discharge threshold for a breakthrough time of 84 h and > 90% P recovery was achieved. When evaluated as a fertilizer in hydroponic cultivation of Pisum sativum, the spent adsorbent produced plant height and biomass that matched or exceeded those from a conventional soluble P source at the optimal dosage. Mechanistic and comparative studies with La(OH)3 and La2(CO3)3 reveal that the superior performance originates from the synergy of electrostatic attraction, surface OH- ligand exchange, interlayer CO32- anion exchange (facilitated by favorable size matching), and inner-sphere complexation, all enabled by the unique layered structure of La(OH)CO3 ([La(OH)]2+ framework layers and interlayer CO32-). This work reports a high-performance La-based adsorbent for efficient P control and establishes a broadly applicable pollutant-to-resource paradigm that bridges environmental remediation with circular nutrient economies.