IEA, 2021 Net zero by 2050. A roadmap for the global energy sector. 4th revision, October 2021, International Energy Agency, Special Report, 224p.Search in Google Scholar
IEA 2021 https://www.statista.com/statistics/208727/total-assets-of-the-top-mining-companies/Search in Google Scholar
IEA 2021 https://www.eia.gov/energyexplained/coal/how-much-coal-is-left.phpSearch in Google Scholar
Wehnert, T., A. Bierwirth, M. Buschka, L. Hermwille, L. Mersmann, 2017 Phasing-out Coal, Reinventing European Regions - An Analysis of EU Structural Funding in four European Coal Regions, Wuppertal Institute for Climate, Environment & Energy, Wuppertal, Germany.Search in Google Scholar
U.N., 2021 Theme report on Energy Transition. Towards the achievement of SDG7 and net-zero emissions. Secretariat of the High-level Dialogue on Energy 2021, Division for Sustainable Development Goals, Department of Economic and Social Affairs United Nations, 59p.Search in Google Scholar
Bataille C., M. Ahman, K. Neuhoff, L.J. Nilsson, M. Fischedick, S. Lechtenböhmer, B. Solano-Rodriquez, A. Denis-Ryan, S. Stiebert, H. Waisman, O. Sartor, S. Rahbar, 2018 A review of technology and policy deep decarbonization pathway options for making energy-intensive industry production consistent with the Paris Agreement, Journal of Cleaner Production, 187, pp. 960-973.Search in Google Scholar
Maucorps, A., 2022 Phasing out coal? A challenge to European territorial cohesion in times of energy crisis. The Vienna Institute for International Economic Studies. https://wiiw.ac.at/phasing-out-coal-n-569.htmlSearch in Google Scholar
Pavloudakis F., C. Roumpos, E. Karlopoulos, N. Koukouzas, 2020 Sustainable rehabilitation of surface coal mining areas: The case of Greek lignite mines, Energies, 2020, 13, 3995; doi: 10.3390/en13153995, p.23, www.mdpi.com/journal/energies.Search in Google Scholar
Reid I., 2018 Non-energy uses of coal. IEA Clean Coal Centre CCC/291, November 2018, 90p.Search in Google Scholar
Giannouli A., S. Kalaitzidis, G. Siavalas, A. Chatziapostolou, K. Christanis, S. Papazisimou, C. Papanicolaou, A. Foscolos, 2009 Evaluation of Greek low-rank coals as potential raw material for the production of soil amendments and organic fertilizers, International Journal of Coal Geology, 77, Issues 3–4, 2009, pp. 383–393.Search in Google Scholar
Xu Yan, 2020 Coal-Biomass Co-Firing Power Generation Technology: Current Status, Challenges and Policy Implications. 2020. https://www.mdpi.com/2071-1050/12/9/3692.Search in Google Scholar
Stewart R.A., S. Mohamed, R. Daet, 2002 Strategic implementation of IT/IS projects in construction: a case study. Automation in Construction, 2002, 11(6), pp.681–694, https://doi.org/10.1016/S0926-5805(02)00009-2Search in Google Scholar
Mahase M.J., 2016 A survey of applications of multi-criteria decision analysis methods in mine planning and related case studies. The Journal South African Institute Minerology and Metallurgy. 2016, 116, pp.1051–1056; https://doi.org/10.17159/2411-9717/2016/v116n11a7Search in Google Scholar
Yavuz M., 2015 Equipment selection based on the AHP and Yager’s method. Journal of the Southern African Institute of Mining and Metallurgy. 2015, 115(5), pp.425–433; DOI:10.17159/2411-9717/2015/v115n5a10Search in Google Scholar
Spanidis P.-M., C. Roumpos, F. Pavloudakis, 2018 A Multi-Criteria Methodology for Low-Risk Evaluation of Mine Closure Restoration in Continuous Surface Lignite Mining Projects. Proceedings of the 14th International Symposium of Continuous Surface Mining, Thessaloniki, Greece, 23–26 September 2018.Search in Google Scholar
Goerner A., K. Toker, K. Uluzay, 2012 Application of Combined SWOT and AHP: A Case Study for a Manufacturing Firm. Procedia - Social and Behavioral Sciences. 2012, 58, pp.1525–1534; https://doi.org/10.1016/j.sbspro.2012.09.1139Search in Google Scholar
Kajanus M., P. Leskinen, M. Kurttila, J. Kangas, 2012 Making use of MCDS methods in SWOT analysis—Lessons learnt in strategic natural resources management. Forest Policy and Economics. 2012, 20, pp.1–9; https://doi.org/10.1016/j.forpol.2012.03.005Search in Google Scholar
Amirshenava S., M. Osanloo, 2022 Strategic planning of post-mining land uses: A semi-quantitative approach based on the SWOT analysis and IE matrix. Resources Policy, 2022, 76, https://doi.org/10.1016/j.resourpol.2022.102585Search in Google Scholar
Chang H.H., W.C. Huang, 2006 Application of a quantification SWOT analytical method. Mathematical and Computer Modelling. 2006, 43(1,2), pp.158–169; https://doi.org/10.1016/j.mcm.2005.08.016Search in Google Scholar
Ghazinoory S., M. Abdi, M. Azadegan-Mehr, 2011 S Methodology: A State of the Art Review for the Past-A Framework for the Future. Journal of Business Economics and Management. 2011, 12(1), pp.24–48; http://dx.doi.org/10.3846/16111699.2011.555358Search in Google Scholar
Ishizaka A., A. Labib, 2011 Review of the main developments in the analytic hierarchy process. Expert Systems with Applications. 2011, 38(11), pp.14336-14345; https://doi.org/10.1016/j.eswa.2011.04.143Search in Google Scholar
Kraujaliene L., 2019 Comparative Analysis if Multicriteria Decision-Making Methods Evaluating the Efficiency of Technology Transfer. Business management and Education. 2019, 17, pp.72–93; ISSN 2029-7491 / eISSN 2029-6169; DOI:10.3846/bme.2019.11014Search in Google Scholar
Saaty T.L., 1980 The Analytic Hierarchy Process; Applications and Studies. 1980, Berlin/Heidelberg, GermanySearch in Google Scholar
Saaty T.L., L.G. Vargas, 1991 Prediction, Projection and Forecasting; Springer: Dordrecht, The Netherlands, 1991; ISBN 978-94-015-7954-4Search in Google Scholar
Al-Harbi K.M. Al-Subhi, 2001 Application of the AHP in project management. International Journal of Project Management. 2001, 19(1), pp.19–27; https://doi.org/10.1016/S0263-7863(99)00038-1Search in Google Scholar
Brown K., 2012 In situ coal gasification: An emerging technology. 29th Annual National Conference of the American Society of Mining and Reclamation 2012, pp. 51–70. 10.21000/JASMR12010051.Search in Google Scholar
Yang D., N. Koukouzas, Y. Sheng, 2016 Recent development on underground coal gasification and subsequent CO2 storage, Journal of The Energy Institute, 89, 469–484.Search in Google Scholar
Novihum Technologies GmbH, 2018 A Sustainable Soil Solution: Scaling up Novihum, an innovation to convert bad soil into better, make brown coal clean and barren land green, and profitably advance food security in Europe and beyond, https://cordis.europa.eu/project/id/683550/resultsSearch in Google Scholar
Pasadakis N., G. Romanos, V. Perdikatsis, A.E. Foscolos, 2011 The Production of Activated Carbons Using Greek Lignites by Physical and Chemical Activation Methods: A Comparative Study. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 33(8), 713–723.Search in Google Scholar
Zhu Y., S. Murali, W. Cai, X. Li, J.W. Suk, J.R. Potts, R.S. Ruoff, 2010 Graphene and graphene oxide: Synthesis, properties, and applications. Advanced Materials, 2010, 22, 3906–3924.Search in Google Scholar
Kyzas G.Z, A.C. Mitropoulos, 2021 High-purity graphene produced by lignite, Industrial Property Organization of Greece, S.Ref. No 20210100243, 2021.Search in Google Scholar
Tsachouridis A., F. Pavloudakis, N. Kitratzis, 2021
Development of Rare Earth Elements separation processes from coal fly ash, Materials Proceedings, 2021, 3, MDPI Publications.Search in Google Scholar
US DoE, 2017 Report on rare earth elements from coal and coal byproducts, US Department of Energy, Report to Congress, January 2017, 43p.Search in Google Scholar
Zhang W., A. Noble, X. Yang, R. Honacker, 2020 A comprehensive review of rare earth elements recovery from coal-related materials, Minerals 2020, 10, 451; doi: 10.3390/min10050451.Search in Google Scholar
Osman A.I., N. Mehta, A,M. Elgarahy et al., 2021 Hydrogen production, storage, utilisation and environmental impacts: a review. Environ Chem Lett (2021). https://doi.org/10.1007/s10311-021-01322-8.Search in Google Scholar
IEA, 2019 The Future of Hydrogen, Technology Report-June 2019, IEA Publications.Search in Google Scholar
Kumar Nayak D., P.P. Abhilash, R. Singh, R.Kumar, V.Kumar, 2022 Fly ash for sustainable construction: A review of fly ash concrete and its beneficial use case studies, Cleaner Materials, Volume 6, 2022, 100143, ISSN 2772–3976, https://doi.org/10.1016/j.clema.2022.100143.Search in Google Scholar
Kelechi S.E., M. Adamu, O.A.U. Uche, I.P. Okokpujie, Y.E. Ibrahim, I.I. Obianyo, 2022 A comprehensive review on coal fly ash and its application in the construction industry, Cogent Engineering, 9:1, DOI: 10.1080/23311916.2022.2114201Search in Google Scholar