From Trace Element Biogeochemistry to Critical Minerals Resourcing: Lessons Learned and Opportunities for Innovation

Abstract Critical minerals and materials, which are raw materials essential to modern technologies yet vulnerable to supply disruption, have emerged as a major focal point of research to diversify resources, advance processing technologies, and bolster supply chains. Many of these elements, however, have long been studied in the context of trace-element biogeochemistry, where decades of work have elucidated their speciation, transport, transformation, and biological interactions in natural and engineered systems. This Perspective article reaffirms these foundational principles as a powerful framework for advancing critical mineral resourcing. Principles studied for pollution mitigation, such as sorption, redox transformations, and biological uptake, can be reenvisioned as strategies for selective recovery from dilute and complex feedstocks, including industrial wastewater, solid residuals, and unconventional geological materials. Advances in molecular-scale characterization, geochemical modeling, and data science further link element speciation, extractability, and product quality. Such connections could offer new pathways for process design, such as biological approaches that would apply to low-energy and distributed recovery systems. Importantly, the viability of new processes extends beyond conventional economic metrics and must consider regulatory drivers, circularity goals, and societal impacts, as demonstrated in related sectors, such as phosphorus recovery and waste reutilization. By integrating concepts from biogeochemistry with advances in materials research, environmental sciences, and data analytics, the field is well positioned to contribute to a new paradigm for mineral resourcing─one that emphasizes sustainability, resilience, and environmental stewardship alongside technological innovation.

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Publication Details

Journal
Environmental Science & Technology
Published
2026-09-22
DOI
https://doi.org/10.1021/acs.est.6c08144
Primary Topic
Phosphorus and nutrient management
Type
article
Field-Weighted Citation Impact
0.00
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From Trace Element Biogeochemistry to Critical Minerals Resourcing: Lessons Learned and Opportunities for Innovation

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Environmental Science & Technology
Phosphorus and nutrient management
article

From Trace Element Biogeochemistry to Critical Minerals Resourcing: Lessons Learned and Opportunities for Innovation

Case M. van Genuchten, Heileen Hsu‐Kim, Joel G. Burken, Mengling Y. Stuckman, Jon Petter Gustafsson, Djuna Gulliver
article en

Abstract

Abstract Critical minerals and materials, which are raw materials essential to modern technologies yet vulnerable to supply disruption, have emerged as a major focal point of research to diversify resources, advance processing technologies, and bolster supply chains. Many of these elements, however, have long been studied in the context of trace-element biogeochemistry, where decades of work have elucidated their speciation, transport, transformation, and biological interactions in natural and engineered systems. This Perspective article reaffirms these foundational principles as a powerful framework for advancing critical mineral resourcing. Principles studied for pollution mitigation, such as sorption, redox transformations, and biological uptake, can be reenvisioned as strategies for selective recovery from dilute and complex feedstocks, including industrial wastewater, solid residuals, and unconventional geological materials. Advances in molecular-scale characterization, geochemical modeling, and data science further link element speciation, extractability, and product quality. Such connections could offer new pathways for process design, such as biological approaches that would apply to low-energy and distributed recovery systems. Importantly, the viability of new processes extends beyond conventional economic metrics and must consider regulatory drivers, circularity goals, and societal impacts, as demonstrated in related sectors, such as phosphorus recovery and waste reutilization. By integrating concepts from biogeochemistry with advances in materials research, environmental sciences, and data analytics, the field is well positioned to contribute to a new paradigm for mineral resourcing─one that emphasizes sustainability, resilience, and environmental stewardship alongside technological innovation.

Environmental Science & Technology
Duke University (US), Missouri University of Science and Technology (US), Geological Survey of Denmark and Greenland (DK), Swedish University of Agricultural Sciences (SE), Duke Energy (United States) (US), National Energy Technology Laboratory (US), Duke University Hospital (US), University of Missouri (US)
Industry, innovation and infrastructure
Openalex Percentile: Top 11%
Phosphorus and nutrient management
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