Upcycling titanium gypsum into pH-gated calcium peroxide hydrogel beads for integrated water remediation with phosphorus-reuse potential

Cleaner remediation of eutrophic waters requires technologies that simultaneously improve chemical-use efficiency and create value from industrial by-products. Here, titanium gypsum (TiG), a calcium-rich industrial by-product, was upcycled into CaO 2 nanoparticles (CaO 2 NPs) and encapsulated in a sodium alginate/carboxymethyl chitosan/gelatin matrix to fabricate CaO 2 hydrogel beads (CaO 2 HBs) enabling pH-responsive swelling-controlled release. The biopolymer network served as a structural gate: protonation-driven contraction under acidic or near-neutral conditions restricted water access to CaO 2 , whereas alkaline deprotonation induced swelling and promoted CaO 2 hydrolysis. This pH-responsive swelling-controlled response increased H 2 O 2 accumulation under alkaline conditions while moderating alkaline shock, thereby reducing premature CaO 2 consumption under non-target conditions. CaO 2 HBs enhanced oxygenation, model bacterial inactivation, and Ca 2+ -mediated phosphate mineralization, reducing phosphate from 20 to below 2.0 mg PO 4 3− L −1 in a high-phosphate model solution under alkaline conditions. In simulated complex waters, the beads retained better multifunctional performance than bare CaO 2 NPs. A 1 L high-load simulated black-odorous wastewater test increased DO to 4.15 mg L −1 and achieved 94.36% relative bacterial inactivation, while partially reducing phosphate in a chemically complex matrix. Preliminary cost analysis identified PEG-400 as the principal cost hotspot in the nano-CaO 2 route, while a proof-of-concept plant-growth assay provided preliminary evidence that P-loaded spent beads could potentially be reused as a soil phosphorus source. Overall, this study establishes a recovery-conversion-remediation-reuse pathway that couples titanium gypsum valorization with regulated CaO 2 utilization, integrated water treatment, and phosphorus-reuse potential.

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Publication Details

Journal
Journal of Cleaner Production
Published
2026-09-16
DOI
https://doi.org/10.1016/j.jclepro.2026.149485
Primary Topic
Phosphorus and nutrient management
Type
article
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Upcycling titanium gypsum into pH-gated calcium peroxide hydrogel beads for integrated water remediation with phosphorus-reuse potential

Qingqing Yang, Junsheng Tan, Fang Jiang, Fengxia An et al.
Journal of Cleaner Production
Phosphorus and nutrient management
article

Upcycling titanium gypsum into pH-gated calcium peroxide hydrogel beads for integrated water remediation with phosphorus-reuse potential

Qingqing Yang, Junsheng Tan, Fang Jiang, Fengxia An, Huan Chen, Fuyuan Guo, Zhonghao Yu, Haonan Shi, Luyang Wang
article en

Abstract

Cleaner remediation of eutrophic waters requires technologies that simultaneously improve chemical-use efficiency and create value from industrial by-products. Here, titanium gypsum (TiG), a calcium-rich industrial by-product, was upcycled into CaO 2 nanoparticles (CaO 2 NPs) and encapsulated in a sodium alginate/carboxymethyl chitosan/gelatin matrix to fabricate CaO 2 hydrogel beads (CaO 2 HBs) enabling pH-responsive swelling-controlled release. The biopolymer network served as a structural gate: protonation-driven contraction under acidic or near-neutral conditions restricted water access to CaO 2 , whereas alkaline deprotonation induced swelling and promoted CaO 2 hydrolysis. This pH-responsive swelling-controlled response increased H 2 O 2 accumulation under alkaline conditions while moderating alkaline shock, thereby reducing premature CaO 2 consumption under non-target conditions. CaO 2 HBs enhanced oxygenation, model bacterial inactivation, and Ca 2+ -mediated phosphate mineralization, reducing phosphate from 20 to below 2.0 mg PO 4 3− L −1 in a high-phosphate model solution under alkaline conditions. In simulated complex waters, the beads retained better multifunctional performance than bare CaO 2 NPs. A 1 L high-load simulated black-odorous wastewater test increased DO to 4.15 mg L −1 and achieved 94.36% relative bacterial inactivation, while partially reducing phosphate in a chemically complex matrix. Preliminary cost analysis identified PEG-400 as the principal cost hotspot in the nano-CaO 2 route, while a proof-of-concept plant-growth assay provided preliminary evidence that P-loaded spent beads could potentially be reused as a soil phosphorus source. Overall, this study establishes a recovery-conversion-remediation-reuse pathway that couples titanium gypsum valorization with regulated CaO 2 utilization, integrated water treatment, and phosphorus-reuse potential.

Journal of Cleaner ProductionVol. 577
Nanjing University of Science and Technology (CN), State Key Laboratory of Pollution Control and Resource Reuse (CN), National Institute of Clean and Low-Carbon Energy (CN)
Clean water and sanitation
Openalex Percentile: Top 11%
Phosphorus and nutrient management
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