News News
Contact us
  • Customer service number:64321087
  • Commercial service telephone:13918059423
  • Technical service telephone:13918059423
  • Contact person: Mr. Cui 
  • Service email:shxtb@163.com
  • Address: room 107, building 8, no. 100, guilin road, xuhui district, Shanghai

Valorisation of acid mine drainage

The date of: 2024-12-06
viewed: 0
Valorisation of acid mine drainage: Studying biosorption and bioaccumulation of rare earth elements by seaweeds


 


source:sciencedirect
Abstract
Acid mine drainage (AMD) nature, persistence and the considerable amount of toxic elements cause significant environmental damage. Traditional passive treatment systems typically focus on neutralizing AMD using limestone and removing common toxic metal(loid)s, and often overlook the recovery of economic and strategic elements (e.g., rare earth elements (REEs)). This study is aimed at assessing for the first time the use of seaweeds to remove REEs from AMD, transforming an environmental problem into a resource. The ability of three seaweed species (Gracilaria sp., Ulva sp., and Fucus sp.) to remove REEs was studied in their dried (biosorption) and living (bioaccumulation) forms. Bioaccumulation was the most efficient process, with Gracilaria and Ulva species showing better performances (75 and 44 %, respectively), also removing over 60 % of Fe. Adjusting the pH of AMD with NaOH successfully separated unwanted elements with minimal REEs loss. After pH adjustment, REEs removal did not improve for either species, except for Dy removal. Seaweed dosage was crucial for a higher REEs removal, with Gracilaria sp. showing a higher bioconcentration factor (up to 1470). FTIR and SEM-EDS analysis identified sulphonate, carboxyl, and alkyne groups as key in binding elements to Gracilaria sp. biomass. Overall, the results demonstrate that seaweed-based biotechnologies are a promising alternative for treating AMD and recovering valuable elements, which can be easily incorporated into the current passive treatment systems.
Conclusion
The present results highlight the potential of living seaweeds (Gracilaria sp. and Ulva sp.) in removing rare earth elements from raw acid mine waters, indicating the technology's potential in addressing a global threat to the aquatic environment and resource valorisation. Through the bioaccumulation process using Gracilaria sp., removal efficiencies up to 75 % were achieved within 24 h both in the original physicochemical condition and pH-adjusted condition of AMD. Seaweed biomass could recover the REEs from the AMD waters up to 1400-fold more concentrated. To the best of our knowledge, these are the first results indicating the use of living seaweed as the basis for a technology to remove and recover REEs from true AMD waters. Although pH adjustment is deemed necessary to remove non-interest elements, the proposed methodology could easily be integrated into current AMD treatments such as wetlands. Furthermore, the valorisation and beneficiation of AMD water is a promising opportunity for a circular economy. The proposed process could be an alternative to conventional methods of extracting REEs from ores and lead to AMD being perceived as a resource rather than a waste material. This will ensure that the sustainable development process is achieved, and AMD environmental footprints are minimized.



Hot News / Related to recommend
  • 2025 - 05 - 16
    Click on the number of times: 1
    Correlating Structural Disorder and Pr3+ Emission Dynamics in Lu3Al2.5–xScxGa2.5O12 Crystals: A Comprehensive Structure–Property Investigation 来源:ACS PublicationsThis study explored the influence...
  • 2025 - 05 - 15
    Click on the number of times: 1
    Prediction and Rationalization of Site Preference of Rare Earth Elements in Fluorapatite from Density Functional Theory 来源:ACS PublicationsFluorapatite (FAp, nominally Ca10(PO4)6F2) has been iden...
  • 2025 - 05 - 14
    Click on the number of times: 0
    Dialdehyde Chitosan/Semicarbazide Synthesis for Lanthanum, Cerium, and Neodymium Ions Recovery from Phosphate Leachate   来源:ACS PublicationsRare earth elements are among the world’s most cru...
  • 2025 - 05 - 13
    Click on the number of times: 0
    Combination Diagnostics In Vivo: Dual-Mode Ultrasound/NIR Fluorescence Imaging with Neodymium- and Thulium-Doped Graphene Quantum Dots 来源:ACS PublicationsThe combination of two biomedical imaging...
  • Copyright ©Copyright 2018 2020 Shanghai rare earth association All Rights Reserved Shanghai ICP NO.2020034223
    the host:Shanghai Association of Rare Earth the guide:Shanghai Development and Application Office of Rare Earth the organizer:Shanghai rare earth industry promotion center
    犀牛云提供云计算服务