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Review

Molecular Simulation in Phosphate Ore Interfacial Separation: Research Progress, Innovations, and Industrial Prospects

1
School of Resources and Safety Engineering, Wuhan Institute of Technology, Wuhan 430073, China
2
Yunnan Phosphate Chemical Group Co., Ltd., Kunming 650600, China
3
National Engineering and Technology Research Center for Development & Utilization of Phosphate Resources, Kunming 650600, China
*
Author to whom correspondence should be addressed.
Processes 2025, 13(11), 3684; https://doi.org/10.3390/pr13113684
Submission received: 19 September 2025 / Revised: 29 October 2025 / Accepted: 12 November 2025 / Published: 14 November 2025
(This article belongs to the Special Issue Molecular Simulation in Mineral Flotation Processes)

Abstract

Phosphate ore is essential for global food security and industry. However, the depletion of high-grade deposits necessitates processing complex low-grade ores, posing significant separation challenges. Flotation, the main beneficiation method, exploits minor differences in surface properties, yet conventional approaches offer limited molecular-level insight, resulting in inefficiency, high reagent use, and pollution. Molecular simulation has emerged as a transformative solution, integrating quantum chemistry, molecular dynamics, and mesoscale modeling to accurately predict electronic structures and optimize flotation systems. This review systematically examines its applications in phosphate ore processing, highlighting four key advances: a multi-scale framework linking atomic mechanisms to macro-performance; structure–activity models for rational reagent design; insights into interfacial micro-environments for intelligent control; and machine learning integration for high-throughput screening. Key challenges such as force field accuracy and simulation scalability are addressed, along with emerging directions like in situ dynamic simulation and integration with process engineering. This review aims to support the development of efficient, sustainable, and intelligently optimized phosphate beneficiation technologies.
Keywords: phosphate ore; interfacial separation; molecular simulation; density functional theory; molecular dynamics; flotation reagent design; multi-scale modeling; machine learning phosphate ore; interfacial separation; molecular simulation; density functional theory; molecular dynamics; flotation reagent design; multi-scale modeling; machine learning

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MDPI and ACS Style

Yang, W.; Cai, Z.; Zhang, H.; Du, L.; Wang, M.; He, D. Molecular Simulation in Phosphate Ore Interfacial Separation: Research Progress, Innovations, and Industrial Prospects. Processes 2025, 13, 3684. https://doi.org/10.3390/pr13113684

AMA Style

Yang W, Cai Z, Zhang H, Du L, Wang M, He D. Molecular Simulation in Phosphate Ore Interfacial Separation: Research Progress, Innovations, and Industrial Prospects. Processes. 2025; 13(11):3684. https://doi.org/10.3390/pr13113684

Chicago/Turabian Style

Yang, Wenquan, Zhongjun Cai, Hua Zhang, Lingpan Du, Menglai Wang, and Dongsheng He. 2025. "Molecular Simulation in Phosphate Ore Interfacial Separation: Research Progress, Innovations, and Industrial Prospects" Processes 13, no. 11: 3684. https://doi.org/10.3390/pr13113684

APA Style

Yang, W., Cai, Z., Zhang, H., Du, L., Wang, M., & He, D. (2025). Molecular Simulation in Phosphate Ore Interfacial Separation: Research Progress, Innovations, and Industrial Prospects. Processes, 13(11), 3684. https://doi.org/10.3390/pr13113684

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