A Systematic Literature Review on Urban Mining: The State of the Art and Future Directions
Abstract
1. Introduction
- 1.
- What is the current state of research and development in urban mining?
- 2.
- What technological developments are driving urban mining forward?
- 3.
- What technologies and processes have been proven to be effective?
- 4.
- Are there links between technologies and application domains?
- 5.
- What research gaps currently exist in urban mining?
- 6.
- Is there potential to apply previously underused methods in urban mining?
2. Theoretical Foundations
2.1. Urban Mining Scope Boundaries and Relation to Recycling and the Circular Economy
2.2. Technologies in Urban Mining
2.3. Related Work
2.4. Research Gap
3. Materials and Methods
4. Results
- Hydrometallurgy: The primary literature increased initially, peaking in 2022, followed by a marked decline with only one recent publication and none recorded in 2025. The secondary literature peaked in 2023 and stabilized at approximately three publications per year.
- Electrometallurgy: No publications appeared prior to 2023. The secondary literature began in 2023, rising to two in 2024, while the primary literature emerged only once, in 2025.
- Pyrometallurgy: The primary literature shows a general downward trend (peaking at three in 2022, then dropping to zero in 2023 and 2025). The secondary literature remained relatively stable between 2022 and 2025.
- Biological Methods: Following a single primary article in 2022, the secondary literature peaked in 2023, dropped, and then rebounded to three items in 2025.
- Other/Niche Technologies: “Other processes” contains three primary publications, though most items are secondary. Graphite recovery (2024) and detection methods (2022) appear only once in the primary literature. SCFE appears twice in 2022. No primary publications were found for combined processes, membrane processes, or photocatalysis.
5. Discussion
5.1. Comparison to Related Work
5.2. Research Questions
5.3. Economic Feasibility and the Reverse Supply Chain
6. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Technology | Core Principle | Typical Feed | Typical Product or Outcome | Ref. |
|---|---|---|---|---|
| Hydrometallurgy | Dissolve metals as ions in aqueous media with acids or bases and recover from solution | Ores, wastes, process residues | Metal salts or metals after deposition | [24] |
| Pyrometallurgy | Smelting or reduction at high temperature to separate metals from solids | Ores, slags, metallic wastes | Molten metals, alloys, matte, slag | [24] |
| Biometallurgy | Microbial leaching through metabolic redox reactions | Low-grade ores, e-waste fractions | Metal rich leachates for downstream recovery | [24] |
| Composting | Aerobic biodegradation of organic waste | Biowaste, organics | Stabilized compost for use as humus | [25] |
| Phytoextraction | Plant uptake and accumulation followed by ash recovery | Contaminated soils, tailings | Metal-enriched ash for extraction | [25] |
| Flash Joule heating | Millisecond electrical pulses reach extreme temperatures and break metal–oxide bonds | Slags, composite wastes | Reduced metals or reactive intermediates | [26] |
| Membrane processes | Size- or chemistry-based separation with semipermeable membranes | Wastewater, process liquors | Purified water or recovered solutes | [27] |
| Photocatalysis | Light-driven oxidation on catalytic surfaces | Contaminated water or air | Degraded pollutants, improved effluent quality | [28] |
| Electrometallurgy | Electrochemical deposition, purification, or extraction in cells | Metal ion solutions or melts | High-purity metals or intermediates | [24] |
| Graphite recovery | Oxidize spent graphite to GO then reduce to rGO with benign agents | Spent Li ion battery anodes | rGO with enhanced conductivity | [29] |
| Supercritical fluid extraction (SCFE) | Supercritical CO2 extracts rare earth ions as nonpolar complexes and releases them by depressurization | REE-bearing solids | Precipitated REE complexes for recovery | [30] |
| Criterion | [1] | [23] | [37] | [38] | [10] | [3] |
|---|---|---|---|---|---|---|
| Reporting guidelines | not explained | PRISMA | approach explained without guideline | PRISMA | approach following Cronin [39] | approach explained without guideline |
| Search criteria | missing | sound | sound | sound | sound | sound |
| Inclusion and exclusion criteria | missing | sound | missing | sound | imprecise | missing |
| Languages | missing | sound | missing | sound | sound | missing |
| Databases | missing | sound | sound | sound | sound | sound |
| Number of sources | missing | sound | sound | sound | sound | sound |
| Time span | missing | start unclear to search date 2023 | the last five years, imprecise | all entries up to search date 2023 | 2013 to search date 2023 | from 2015 to 2021 |
| Conclusion | method not presented transparently | complete except for the start date, process flow diagram present | incomplete, process flow diagram missing | all criteria fully met, process flow diagram present | almost complete, process flow diagram missing | incomplete, process flow diagram missing |
| Criteria | Inclusion | Exclusion |
|---|---|---|
| Publication year | January 2022–March 2025 | Outside this period |
| Search string: Title requirement | “Urban mining” exists in the title | “Urban mining” is missing from the title |
| Language | English and German | Not written in English or German |
| Type of publication | Books, research papers, review papers, book chapters, conference papers, dissertations, and opinion papers | Tertiary studies, conceptual papers, and works without sufficient technological detail, non-scientific formats |
| Topic | Technologies in urban mining, innovations and breakthroughs within the technologies | Insufficient focus on urban mining or lack of technological relevance within urban mining technologies |
| Context | Engineering and natural science domains; higher education context | Out-of-scope domains (e.g., medicine, psychology) or non-higher-education contexts |
| Author (Short) | Pretreatment | Hydrometallurgy | Electrometallurgy | Wastewater Treatment | Composting | Phytoextraction | Pyrometallurgy | SCFE | Biological Technologies | Membrane Technologies | Photocatalysis | FJH | Other Technologies | Graphite Recovery | Combined Technologies | Lanthanide Detection |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Agrawal et al. [37] | x | x | x | x | x | x | x | x | ||||||||
| Al-Sari et al. [17] | x | x | ||||||||||||||
| Alecu et al. [46] | x | |||||||||||||||
| Alexandre-Franco et al. [6] | x | |||||||||||||||
| Ambrós [5] | x | |||||||||||||||
| Anwer et al. [47] | x | x | x | |||||||||||||
| Arya et al. [48] | x | x | ||||||||||||||
| Bhandari et al. [49] | x | x | x | |||||||||||||
| Capodaglio [2] | x | x | x | |||||||||||||
| Castillo-Ramírez et al. [50] | x | |||||||||||||||
| Charpentier et al. [21] | x | |||||||||||||||
| Chen et al. [51] | x | |||||||||||||||
| David et al. [18] | x | x | x | x | x | |||||||||||
| Debnath et al. [52] | x | |||||||||||||||
| Deng et al. [26] | x | x | x | |||||||||||||
| Devahi et al. [12] | x | x | ||||||||||||||
| Durski et al. [53] | x | x | ||||||||||||||
| Dushyantha et al. [9] | x | x | x | x | ||||||||||||
| Erdiaw-Kwasie et al. [38] | x | x | x | |||||||||||||
| Firmansyah et al. [54] | x | x | x | |||||||||||||
| Funari et al. [32] | x | x | x | |||||||||||||
| Gawroński et al. [55] | x | |||||||||||||||
| Glock et al. [15] | x | |||||||||||||||
| Jha [56] | x | |||||||||||||||
| Kumari et al. [29] | x | x | ||||||||||||||
| Mahdjoub [19] | x | |||||||||||||||
| Man et al. [27] | x | x | x | |||||||||||||
| Ouro-Salim [10] | ||||||||||||||||
| Piao [45] | x | |||||||||||||||
| Pathak et al. [20] | x | x | x | |||||||||||||
| Pathak et al. [57] | x | |||||||||||||||
| Pontes et al. [58] | x | x | x | |||||||||||||
| Prodius et al. [59] | x | x | x | |||||||||||||
| Randive [24] | x | x | x | x | x | x | x | x | x | |||||||
| Sedykh et al. [60] | x | |||||||||||||||
| Talens Peiró et al. [22] | x | |||||||||||||||
| Tejaswini et al. [3] | x | x | x | x | x | x | x | |||||||||
| Tran et al. [61] | x | x | ||||||||||||||
| Trivedi et al. [62] | x | x | x | |||||||||||||
| Udage Kankanamge et al. [23] | x | x | ||||||||||||||
| Wirman et al. [63] | x | |||||||||||||||
| Wyss et al. [64] | x | x | x | x | x | |||||||||||
| Xavier et al. [1] | x | x | x | x | x | |||||||||||
| Yatoo et al. [25] | x | x | x | x | x | x | x | x | x | x | ||||||
| Zhang et al. [30] | x | x | x |
| Technology | Scalability | Yield/Purity | Versatility | Rank |
|---|---|---|---|---|
| Hydrometallurgy | − | + | + | |
| Pyrometallurgy | + | + | + | 1 |
| Biological technologies | − | + | 0 | |
| Membrane technologies | 0 | + | − | |
| SCFE | + | + | − | 2 |
| Graphite recovery | ? | 0 | − | |
| Composting | 0 | + | − | 4 |
| Photocatalysis | + | + | − | 2 |
| FJH | + | + | 0 | 1 |
| Phytoextraction | 0 | 0 | − | 3 |
| Electrometallurgy | 0 | + | 0 | |
| Wastewater treatment | + | + | − | |
| Lanthanide detection | ? | 0 | − |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Liebig-Schultz, S.; Greif, L. A Systematic Literature Review on Urban Mining: The State of the Art and Future Directions. Sustainability 2026, 18, 3947. https://doi.org/10.3390/su18083947
Liebig-Schultz S, Greif L. A Systematic Literature Review on Urban Mining: The State of the Art and Future Directions. Sustainability. 2026; 18(8):3947. https://doi.org/10.3390/su18083947
Chicago/Turabian StyleLiebig-Schultz, Sanja, and Lucas Greif. 2026. "A Systematic Literature Review on Urban Mining: The State of the Art and Future Directions" Sustainability 18, no. 8: 3947. https://doi.org/10.3390/su18083947
APA StyleLiebig-Schultz, S., & Greif, L. (2026). A Systematic Literature Review on Urban Mining: The State of the Art and Future Directions. Sustainability, 18(8), 3947. https://doi.org/10.3390/su18083947

