TY - JOUR
T1 - A new approach to sustainable management of industrial phosphogypsum waste
T2 - mechanism exploration and industrial application
AU - Meng, Yifei
AU - Gan, Siyu
AU - Liang, Jing
AU - Chen, Bin
AU - Ma, Rongyue
AU - Alhijjawi, Yasmeen
AU - Yang, Fan
AU - Ren, Shan
AU - He, Chi
AU - Shi, Jinpeng
AU - Zhu, Aibin
AU - Xu, Chunbao
AU - Zheng, Chunli
N1 - Publisher Copyright:
© 2026
PY - 2026/2
Y1 - 2026/2
N2 - A novel inexpensive modified calcium oxide (MCA) was prepared using commercial calcium oxide (CCO) and n-butanol and applied to curing phosphogypsum (PG) waste. With the MCA, the soluble phosphorus (SP), soluble fluoride (SF) and pH of PG changed from 230.6 mg/L, 180.7 mg/L and 2.89 drastically to 0.46 mg/L, 8.3 mg/L and 8.58 after 3 days, meeting the GB8978–1996 (SP≤0.5 mg/L, SF≤10 mg/L, pH = 6∼9), remaining stable even after 90 days. Our mechanism study revealed that the MCA reacted with SP to form amorphous CaHPO4 which further tranformed to Ca5(PO4)3OH. Ca5(PO4)3OH combined with SF to produce Ca5(PO4)3F (Ksp=2.1 × 10–59). Compared to CaF2 and CaHPO4, the Ksp of Ca5(PO4)3F decreased markedly by approximately 1048 and 1052 times. More importantly, in this work MCA has been industrially applied to cure 790,000-tons PG. Moritoring for >500 days showed that the SP, SF and pH values met the GB8976–1996 standard continuously. This study demonstrated a promising new approach to sustainable management of industrial PG waste by treating PG with the novel inexpensive MCA to solidify SF and SP into precipitates of Ca5(PO4)3F with greatly improved long-term stability.
AB - A novel inexpensive modified calcium oxide (MCA) was prepared using commercial calcium oxide (CCO) and n-butanol and applied to curing phosphogypsum (PG) waste. With the MCA, the soluble phosphorus (SP), soluble fluoride (SF) and pH of PG changed from 230.6 mg/L, 180.7 mg/L and 2.89 drastically to 0.46 mg/L, 8.3 mg/L and 8.58 after 3 days, meeting the GB8978–1996 (SP≤0.5 mg/L, SF≤10 mg/L, pH = 6∼9), remaining stable even after 90 days. Our mechanism study revealed that the MCA reacted with SP to form amorphous CaHPO4 which further tranformed to Ca5(PO4)3OH. Ca5(PO4)3OH combined with SF to produce Ca5(PO4)3F (Ksp=2.1 × 10–59). Compared to CaF2 and CaHPO4, the Ksp of Ca5(PO4)3F decreased markedly by approximately 1048 and 1052 times. More importantly, in this work MCA has been industrially applied to cure 790,000-tons PG. Moritoring for >500 days showed that the SP, SF and pH values met the GB8976–1996 standard continuously. This study demonstrated a promising new approach to sustainable management of industrial PG waste by treating PG with the novel inexpensive MCA to solidify SF and SP into precipitates of Ca5(PO4)3F with greatly improved long-term stability.
KW - Fluoride
KW - Industrial application
KW - Long-term stability
KW - Modified calcium oxide
KW - Phosphogypsum waste
KW - Sustainable management
UR - https://www.scopus.com/pages/publications/105028251712
U2 - 10.1016/j.hazadv.2026.101032
DO - 10.1016/j.hazadv.2026.101032
M3 - 文章
AN - SCOPUS:105028251712
SN - 2772-4166
VL - 21
JO - Journal of Hazardous Materials Advances
JF - Journal of Hazardous Materials Advances
M1 - 101032
ER -