Recycling and circular economy—towards a closed loop for metals in emerging clean technologies
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Adie G et al (2018) Person in the Port project. UNU United Nations University, Bonn, Assessing import of used electrical and electronic equipment into Nigeria
Blömeke S, Mennenga M, Herrmann C, Scheller C, Spengler T, Nippraschk M, Goldmann D, Lawrenz S, Sharma P, Rausch A, Poschmann H, Brügemann H, Kintscher L, Bikker G (2020) Recycling 4.0 - An integrated approach towards an advanced circular economy. ICT4S’20: 7th International Conference on ICT for Sustainability, June 21-26, 2020, Bristol, United Kingdom. https://doi.org/10.1145/3401335.3401666
Bookhagen B, Bastien B (2020) Metalle in Smartphones. Commodity TopNews 65, BGR-DERA, Hannover
CEID Circular Economy Initiative Deutschland (ed.) (2020) Resource-efficient battery life cycles – driving electric mobility with the circular economy. Kwade A et al., acatech/SYSTEMIQ, Munich/London. www.circular-economy-initiative.de/publikationen
CEID Circular Economy Initiative Deutschland (2021) The Circular Economy Roadmap for Germany. CEID Circular Economy Initiative Deutschland. www.circular-economy-initiative.de/english
Cimprich A, Young S, Schrijvers D, Ku A, Hagelüken C, Christmann P, Eggert R, Habib K, Hirohata A, Hurd A, Lee MH, Peck D, Petavratzi E, Tercero Espinoza L, Wäger P, Hool A (2022) The role of industrial actors in the circular economy for critical raw material: a framework with case studies across a range of industries. Mineral Economics Springer Online 21(2):2022. https://doi.org/10.1007/s13563-022-00304-8
Ellen MacArthur Foundation, Sun, McKinsey (2015) Growth within – a circular economy vision for a competitive Europe
Elwert T, Goldmann D, Schirmer T, Strauß K (2012a) Phase composition of high lithium slags from the recycling of lithium ion batteries. World of Metallurgy – Erzmetall, Bd. 65 (2012a), No.3, pp. 163–171
Elwert T, Goldmann D, Schirmer T, Strauß K (2012b) Affinity of rare earth elements to silico-phosphate phases in the system Al2O3-CaO-MgO-P2O5-SiO2. Chemie Ingenieur Technik, Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim, 2014, 86, No. 6. https://doi.org/10.1002/cite.201300168
EU-COM (2008) 699 The raw materials initiative – meeting our critical needs for growth and jobs in Europe. 4.11.2008: ec.europa.eu/growth/sectors/raw-materials/policy-strategy_en
EU-COM (2011) 25 Communication from the commission to the European Parliament, the Council, the European Economic and social committee and the Committee of the Regions, “Tackling the challenges in commodity markets and on raw materials”, 2.2.2011
EU-COM (2014) 398 final/2 Towards a circular economy: A zero waste programme for Europe, 2.7.2014
EU-COM (2015) 614 Communication from the commission to the European Parliament, the Council, the European Economic and social committee and the Committee of the Regions, “Closing the loop – An EU action plan for the Circular Economy”, 2.12.2015
EU-COM (2019) 640 Communication from the Commission to the European Parliament, the European Council, the Council, the European Economic and Social Committee and the Committee of the regions, “The European Green Deal”, 11.12.2019, ec.europa.eu/info/strategy/priorities-2019–2024/european-green-deal_en
EU-COM (2020a) 98 Communication from the commission to the European Parliament, the Council, the European Economic and social committee and the Committee of the Regions, “A new Circular Economy Action Plan – For a cleaner and more competitive Europe”, 11.3.2020
EU-COM (2020b) 474 Communication from the commission to the European Parliament, the Council, the European Economic and social committee and the Committee of the Regions, “Critical Raw Materials Resilience: Charting a Path towards greater Security and Sustainability”, 3.9.2020
EU-COM (2020c) 798 final Regulation of the European Parliament and of the Council, concerning batteries and waste batteries, 10.12.2020
EU-COM (2021) 550 Communication from the commission to the European Parliament, the Council, the European Economic and social committee and the Committee of the Regions, “Fit for 55: delivering the EU’s 20230 Climate Target on the way to climate neutrality”, 14.7.2021
EU-WEEE Directive (2013) M/518 EN Mandate to the European Standardization Organization for Standardization in the Field pf Waste Electrical and Electronic Equipment (Directive 2012/19/EU (WEEE)), Brussels 2013. Available online: http://ec.europa.eu/environment/waste/weee/pdf/m518%20EN.pdf
GERRI Das deutsche Forschungsnetzwerk Rohstoffe (2021) GERRI Positionspapier 2021 – Verantwortungsvolle Rohstoffversorgung. www.gerri-germany.org/files/gerri/GERRI%20Positionspapier%202021%20-%20Verantwortungsvolle%20Rohstoffversorgung.pdf
Gislev M, Grohol M et al (2018) Report on Critical Raw Materials and the Circular Economy. Brussels. https://doi.org/10.2873/167813
Goldmann D (2010) Strategische und strukturelle Überlegungen zur effizienten Nutzung anthropogener Rohstoffpotentiale in Zeiten der Globalisierungen. Müll Und Abfall Heft 10(2010):476–481
Goldmann D (2010) Recycling als Beitrag zur Rohstoffsicherung – neue strukturelle und technologische Herausforderungen. Chemie Ingenieur Technik Heft 11(2010):1851–1860
Goldmann D, Rasenack K, Schmitz M, Wittenberg A, Schulz P, Brandenburg T (2014) Internationale Entwicklungen zur Effizienzsteigerung bei Rohstoffnutzung und Recycling – Benchmark, Wettbewerb und Kooperationspotentiale. Recycling und Rohstoffe, Bd. 7, Hrsg. K.-J. Thomé-Kozmiensky, D. Goldmann, 2014, TK-Verlag, S. 17–35
Haas A, Elwert T, Goldmann D, Schirmer T (2018) Challenges and research needs in flotation of synthetic metal phases. Proceedings of the European Mineral Processing & Recycling Congress. Ed.: GDMB, GDMB Verlag GmbH, Clausthal-Zellerfeld, ISBN: 978–3–940276–84–1
Hagelüken C (2012) Secondary raw material sources for precious and special metals. In Sinding-Larsen, R., F.W. Wellmer (eds), non-renewable resource issues, Springer, 2012
Hagelüken C (2014) Recycling of (critical) metals. In: Gunn G (ed) Critical Metals Handbook. Wiley, pp 41–69
Hagelüken C (2017) Bedeutung des EU Kreislaufwirtschaftspakets für das Metallrecycling. Chem Ing Tech 89(1–2):17–28
Hagelüken C (2020) Business as unusual – Anforderungen an eine Kreislaufwirtschaft von Lithium-Ionen Batterien. Müll Und Abfall 5:263
Hagelüken C et al (2016) The EU Circular Economy and its relevance to metals recycling. Recycling 7:242–253
Hagelüken C (2019) Die Märkte der Katalysatormetalle Platin, Palladium und Rhodium-Teil 1. Metall 73, 2019, H 10, 396–403
Hagelüken C (2020a) Die Märkte der Katalysatormetalle Platin, Palladium und Rhodium-Teil 2. Metall 74, 2020a, H 1–2, 24–31
Keber S, Schirmer T, Elwert T, Goldmann D (2020) Characterization of fine fractions from the processing of municipal solid waste incinerator bottom ashes for the potential recovery of valuable metals. In: Minerals 10(10):S. 838. https://doi.org/10.3390/min10100838
Lawrenz S, Nippraschk M, Wallat P, Rausch A, Goldmann D, Lohrengel A (2021) Is it all about Information? The Role of the Information Gap between Stakeholders in the Context of the Circular Economy. Procedia CIRP 98:364–369. https://doi.org/10.1016/j.procir.2021.01.118
Magalini F, Huisman J (2018) WEEE Recycling Economics – the shortcomings of the current business model. Conducted by United Nations University, commissioned by EERA 2018
Menges R, Cloos J, Greiff M, Wehrle J, Goldmann D, Rabe L (2020) Recycling behavior of private households: an empirical investigation of individual preferences in a club good experiment. In Clean Technol Environ Policy. https://doi.org/10.1007/s10098-020-01929-5
Poschmann H, Brüggemann H, Goldmann D (2020) Disassembly 40 A review on using robotics in disassembly tasks as a way of automation. In Chem Ing Tech 92(4):341–359
Poschmann H, Brüggemann H, Goldmann D (2021) Fostering end-of-life utilization by information-driven robotic disassembly. Procedia CIRP 98:282–287. https://doi.org/10.1016/j.procir.2021.01.104
Römer F, Goldmann D (2019) Reprocessing of a mining waste deposit in the Harz mountains – How contaminated sites might become raw material deposits in the future. In CHEMKON 26(2):66–71. https://doi.org/10.1002/ckon.201800080
Scheller C, Blömeke S, Nippraschk M, Schmidt K, Mennenga M, Spengler T, Hermann C, Goldmann D (2021) Coordinated planning in closed-loop supply chains and its implications on the production and recycling of lithium-ion batteries. Procedia CIRP 98:464–469. https://doi.org/10.1016/j.procir.2021.01.135
Soulier M, Glöser-Chahaud S, Goldmann D, Tercero Espinoza LA (2018) Dynamic analysis of European copper flows. Resources, Conservation & Recycling, 129 (2018) S. 143 – 152, Elsevier
Statusbericht Kreislaufwirtschaft (2020) Statusbericht der deutschen Kreislaufwirtschaft 2018. Bericht der Verbände der deutschen Entsorgungswirtschaft
Tercero Espinoza L A et al (2020) Criticality and the circular economy, Resources, conservation & Recycling
UNEP (2011) Recycling rates of metals - status report. a report of the working group on global metal flows to the international resource panel
UNEP (2013) Metal recycling – opportunities, limits, infrastructure. A report of the working group on global metal flows to the international resource panel
Wellmer FW, Hagelüken C (2015) The feedback control cycle of minerals supply, increase of raw materials efficiency, and sustainable development. Minerals 5:815–836
Wellmer FW et al (2018) Raw materials for future energy supply. Springer Nature, Heidelberg