Materias primas críticas y complejidad económica en América Latina
Páginas 15-51.
- Autores:
-
Lara Rodríguez, Juan Sebastián
Tosi Furtado, André
Altimiras Martin, Aleix
- Tipo de recurso:
- Article of journal
- Fecha de publicación:
- 2018
- Institución:
- Universidad Pedagógica y Tecnológica de Colombia
- Repositorio:
- RiUPTC: Repositorio Institucional UPTC
- Idioma:
- deu
- OAI Identifier:
- oai:repositorio.uptc.edu.co:001/2067
- Acceso en línea:
- https://repositorio.uptc.edu.co/handle/001/2067
- Palabra clave:
- Industria minera - Aspectos económicos
Teoría económica
Recursos naturales no renovables - América Latina
Desarrollo económico - América Latina
Recursos minerales
Recursos naturales no renovables
Desarrollo económico
Innovación
Tecnologías sostenibles
- Rights
- openAccess
- License
- Copyright (c) 2018 Universidad Pedagógica y Tecnológica de Colombia
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dc.title.spa.fl_str_mv |
Materias primas críticas y complejidad económica en América Latina |
dc.title.alternative.eng.fl_str_mv |
Critical Raw Materials and Economic Complexity in Latin America Matérias-primas críticas e complexidade econômica na América Latina |
title |
Materias primas críticas y complejidad económica en América Latina |
spellingShingle |
Materias primas críticas y complejidad económica en América Latina Industria minera - Aspectos económicos Teoría económica Recursos naturales no renovables - América Latina Desarrollo económico - América Latina Recursos minerales Recursos naturales no renovables Desarrollo económico Innovación Tecnologías sostenibles |
title_short |
Materias primas críticas y complejidad económica en América Latina |
title_full |
Materias primas críticas y complejidad económica en América Latina |
title_fullStr |
Materias primas críticas y complejidad económica en América Latina |
title_full_unstemmed |
Materias primas críticas y complejidad económica en América Latina |
title_sort |
Materias primas críticas y complejidad económica en América Latina |
dc.creator.fl_str_mv |
Lara Rodríguez, Juan Sebastián Tosi Furtado, André Altimiras Martin, Aleix |
dc.contributor.author.none.fl_str_mv |
Lara Rodríguez, Juan Sebastián Tosi Furtado, André Altimiras Martin, Aleix |
dc.subject.lemb.none.fl_str_mv |
Industria minera - Aspectos económicos |
topic |
Industria minera - Aspectos económicos Teoría económica Recursos naturales no renovables - América Latina Desarrollo económico - América Latina Recursos minerales Recursos naturales no renovables Desarrollo económico Innovación Tecnologías sostenibles |
dc.subject.armarc.none.fl_str_mv |
Teoría económica Recursos naturales no renovables - América Latina Desarrollo económico - América Latina |
dc.subject.proposal.spa.fl_str_mv |
Recursos minerales Recursos naturales no renovables Desarrollo económico Innovación Tecnologías sostenibles |
description |
Páginas 15-51. |
publishDate |
2018 |
dc.date.accessioned.none.fl_str_mv |
2018-06-27T21:22:19Z |
dc.date.available.none.fl_str_mv |
2018-06-27T21:22:19Z |
dc.date.issued.none.fl_str_mv |
2018-02-06 |
dc.type.spa.fl_str_mv |
Artículo de revista |
dc.type.coar.fl_str_mv |
http://purl.org/coar/resource_type/c_2df8fbb1 |
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dc.type.version.spa.fl_str_mv |
info:eu-repo/semantics/publishedVersion |
dc.type.content.spa.fl_str_mv |
Text |
dc.type.redcol.spa.fl_str_mv |
https://purl.org/redcol/resource_type/ART |
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Lara Rodríguez, J. S., Tosi Furtado, A. & Altimiras Martin, . (2018). Materias críticas y complejidad económica en América Latina. Revista Apuntes del CENES, 37(65), 15-51. DOI: https://doi.org/10.19053/01203053.v37.n65.2018.5426. http://repositorio.uptc.edu.co/handle/001/2067 |
dc.identifier.issn.none.fl_str_mv |
0120-3053 2256-5779 En línea |
dc.identifier.uri.none.fl_str_mv |
https://repositorio.uptc.edu.co/handle/001/2067 |
dc.identifier.doi.none.fl_str_mv |
10.19053/01203053.v37.n65.2018.5426 |
identifier_str_mv |
Lara Rodríguez, J. S., Tosi Furtado, A. & Altimiras Martin, . (2018). Materias críticas y complejidad económica en América Latina. Revista Apuntes del CENES, 37(65), 15-51. DOI: https://doi.org/10.19053/01203053.v37.n65.2018.5426. http://repositorio.uptc.edu.co/handle/001/2067 0120-3053 2256-5779 En línea 10.19053/01203053.v37.n65.2018.5426 |
url |
https://repositorio.uptc.edu.co/handle/001/2067 |
dc.language.iso.spa.fl_str_mv |
deu |
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deu |
dc.relation.references.spa.fl_str_mv |
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Gospodarka Surowcami Mineralnymi - Mineral Resources Management, 29(3). http://doi.org/10.2478/gospo-2013-0028 Dosi, G. (1982). Technological paradigsm and tecnological trajectories. Research Policy, 11, 147–162. http://doi.org/https://doi.org/10.1016/0048- 7333(82)90016-6 Du, X., & Graedel, T. E. (2013). Uncovering the end uses of the rare earth elements. The Science of the Total Environment, 461–462, 781–4. http://doi. org/10.1016/j.scitotenv.2013.02.099 Engholm, M., & Norin, L. (2008). Preventing photodarkening in ytterbium-doped high power fiber lasers; correlation to the UV-transparency of the core glass. Optics Express, 16, 1260–1268. http://doi.org/10.1364/OE.16.001260 Erdmann, L., & Graedel, T. E. (2011). Criticality of non-fuel minerals: A review of major approaches and analyses. Environmental Science and Technology, 45, 7620–7630. http://doi.org/10.1021/es200563g European Commission. (2014). Report on critical raw materials for the EU, Report of the Ad hoc Working Group on defining critical raw materials. Brussels. Retrieved from http://ec.europa.eu/enterprise/policies/raw-materials/ files/docs/crm-report-on-critical-raw-materials_en.pdf Fromer, N. a., & Diallo, M. S. (2013). Nanotechnology and clean energy: sustainable utilization and supply of critical materials. Journal of Nanoparticle Research, 15(11), 1–15. http://doi.org/10.1007/s11051-013-2011-9 Glöser, S., Tercero, L., Gandenberger, C., & Faulstich, M. (2015). Raw material criticality in the context of classical risk assessment. Resources Policy, 44, 35–46. Goe, M., & Gaustad, G. (2014). Identifying critical materials for photovoltaics in the US: A multi-metric approach. Applied Energy, 123, 387–396. http:// doi.org/10.1016/j.apenergy.2014.01.025 Goonan, T. (2011). Rare Earth Elements — End Use and Recyclability. Reston, Virginia: U.S. Geological Survey Scientific Investigations Report 2011– 5094. Retrieved from http://pubs.usgs.gov/sir/2011/5094/ Graedel, T. E., Barr, R., Chandler, C., Chase, T., Choi, J., Christoffersen, L., … Zhu, C. (2012). Methodology of metal criticality determination. Environmental Science and Technology, 46(2), 1063–1070. http://doi.org/10.1021/ es203534z Granda, M., Blanco, C., Alvarez, P., Patrick, J. W., & Menéndez, R. (2014). Chemicals from coal coking. Chemical Reviews, 114(3), 1608–1636. http://doi.org/10.1021/cr400256y Gu, Y. F., Harada, H., & Ro, Y. (2004). Chromium and chromium-based alloys: Problems and possibilities for high-temperature service. Jom, 56(9), 28– 33. http://doi.org/10.1007/s11837-004-0197-0 Gupta, V. K., Jain, R., Hamdan, a. J., Agarwal, S., & Bharti, A. K. (2010). A novel ion selective sensor for promethium determination. Analytica Chimica Acta, 681(1–2), 27–32. http://doi.org/10.1016/j.aca.2010.09.037 Halme, K., Piirainen, K., Vekinis, G., Ernst-Udo, S., & Viljamaa, K. (2012). Substitutionability of Critical Raw Materials. 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Economic Challenges in the Clean Energy Supply Chain: The Market for Rare Earth Minerals and Other Critical Inputs. Business Economics, 46(3), 171–184. http://doi.org/10.1057/be.2011.17 Hidalgo, C. a, & Hausmann, R. (2009). The building blocks of economic complexity. Proceedings of the National Academy of Sciences of the United States of America, 106(26), 10570–10575. http://doi.org/10.1073/ pnas.0900943106 Hoppstock, K., & Sures, B. (2004). Platinum-Group Metals. In E. Merian, M. Anke, & M. Stoeppler (Eds.), Elements and Their Compounds in the Environment: Occurrence, Analysis and Biological Relevance (pp. 1047–1086). Weinheim, Germany: WILEY-VCH Verlag GmbH&Co. KGaA. http://doi. org/10.1002/9783527619634.ch41 Hort, N., Mathaudhu, S., Ncclameggham, N., & Alderman, M. (2013). Magnesium Technology 2013. (M. & M. S. (TMS) Magnesium Committee of the Light Metals Division of The Minerals, Ed.). San Antonio: Wiley. Karl, T. L. (1997). Review The Paradox of Plenty: Oil Booms and Petro-States. Berkeley: University of California Press. Köhler, A. R., Bakker, C., & Peck, D. (2013). Critical materials: a reason for sustainable education of industrial designers and engineers. European Journal of Engineering Education, 38(4), 441–451. http://doi.org/10.1080/030437 97.2013.796341 Lara-Rodríguez, J. S., & Bermúdez, J. I. (2011). Perspectiva de la política de innovación y su monitoreo en la Unión Europea , 2010-2020. Finanzas Y Política Económica, 3(2), 105–126. Retrieved from http://ideas.repec. org/a/col/000443/009853.html Lara-Rodríguez, J. S., Rojas, C. A., & Martínez, J. A. (2015). Evolución organizacional : inducción socio-biológica para el entendimiento de la metáfora. AD-Minister, 26(enero-junio), 101–122. http://doi.org/10.17230/ad-minister.26.5 Lara-Rodríguez, J. S., Naranjo-Merchán, W., & Manosalva, S. R. (2017). Formación de capacidades para la formalización minera en Colombia: Un estudio de investigación acción. Cuadernos Del CENDES, 34(94), 97–126. Extraído de http://www.redalyc.org/pdf/403/40353171006.pdf Lundvall, B. Å., Vang, J., Chaminade, J., & Chaminade, C. (2009). Innovation system research and developing countries. In B. Å. Lundvall, K. J. Joseph, C. Chaminade, & J. Vang (Eds.), Handbook of Innovation Systems and Developing Countries, Building Domestic Capabilities in a Global Setting (pp. 1–30). Cheltenham, UK and Northampton, MA, USA: Edward Elgar Publishing Massari, S., & Ruberti, M. (2013). Rare earth elements as critical raw materials: Focus on international markets and future strategies. Resources Policy, 38(1), 36–43. http://doi.org/10.1016/j.resourpol.2012.07.001 McNeil, D. (2004). Beryllium. London, GBR. Retrieved from http://beryllium. eu/resources/Critical Material and Market Forces Literature/Beryllium Production and Outlook Roskill Mineral Sevices.pdf Melcher, F., & Buchholz, P. (2014). Germanium. In G. Gunn (Ed.), Critical Metals Handbook (First, pp. 177–203). Nottingham. UK: John Wiley & Sons. http://doi.org/10.1002/9781118755341.ch8 Miller, M. (2010). Fluorspar. Mining Engineering, 62(6), 48–49. Retrieved from http://search.proquest.com/docview/578164423?accountid=8113 Ministério de Minas e Energia. (2011). Plano Nacional de Mineração 2030. Geologia, Mineração e Transformação Mineral. Brasilia. Retrieved from http:// www.mme.gov.br/documents/1138775/1732821/Book_PNM_2030_2. pdf/f7cc76c1-2d3b-4490-9d45-d725801c3522 Ministerio de Minas y Energía. (2012). Resolución número 18 0102 de 30 enero de 2012 “Por la cual se determinan unos minerales de interés estratégico para el país.” Bogotá D.C.: República de Colombia. Retrieved from http:// www.minminas.gov.co/documents/10180//23517//20337-10498.pdf Ministerio de Minería. (2015). Ministerio de Minería - Cuenta Pública. Santiago de Chile. Retrieved from http://www.gob.cl/cuenta-publica/2015/sectorial/2015_sectorial_ministerio-mineria.pdf Mishra, B., & Termsuksawad, P. (1999). Niobium. 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Accessibility of strategic and critical materials to U.S. in time of war and for expanding economy. Accessibility of Strategic and Critical Materials to the United States in Time of War and for Our Expanding Economy. Report of the Committee on Interior and Insular Affairs Made by Its Minerals, Materials, and Fuels Economic Subcommittee pursuant to S. Re. Retrieved from http:// ezproxy.unal.edu.co/login?url=http://search.ebscohost.com/login.aspx?direct=true&db=edslns&AN=LNSD80B819B-90F7F8E3&lang=es&site=e ds-live Sievers, H., Buijs, B., & Tercero Espinoza, L. a. (2012). Limits to the critical raw materials approach. Proceedings of the ICE - Waste and Resource Management, 165(4), 201–208. http://doi.org/10.1680/warm.12.00010 Slowinski, G., Latimer, D., & Mehlman, S. (2013). Research-on-Research: Dealing with Shortages of Critical Materials. Research-Technology Management, 56(5), 18–24. http://doi.org/10.5437/08956308X5605139 The World Bank. (2013). World Development Indicators: Science and technology. Washington, DC, USA: World Bank Group. Retrieved from http://wdi. worldbank.org/table/5.13 The World Bank. (2014). World Bank GDP Deflator. Retrieved from http://data. worldbank.org/indicator/NY.GDP.DEFL.KD.ZG) U.S. Geological Survey. (2015). Mineral Commodity Summaries 2015. Reston, Virginia. Retrieved from http://minerals.usgs.gov/minerals/pubs/ mcs/2015/mcs2015.pdf Unidad de Planeación Minero Energética. (2013). Plan Nacional De Desarrollo Minero 2010 - 2014. Bogotá D.C. Retrieved from http://www.upme.gov. co/Docs/pndm/2013/PNDM2014.pdf Van Gosen, B., Verplanck, P., Long, K., Gambogi, J., Joseph, & Seal. (2014). The Rare-Earth Elements — Vital to Modern Technologies and Lifestyles. U.S. Geological Survey Fact Sheet 2014–3078. Reston, Virginia: U.S. Geological Survey Fact Sheet 2014–3078. http://doi.org/http://dx.doi.org/10.3133/ fs20143078 World Commission on Environment and Development. (1987). Report of the World Commission on Environment and Development: Our Common Future (The Brundtland Report). Medicine, Conflict and Survival. http://doi. org/10.1080/07488008808408783 Wübbeke, J. (2013). Rare earth elements in China: Policies and narratives of reinventing an industry. Resources Policy, 38(3), 1–11. http://doi.org/10.1016/j. resourpol.2013.05.005 Ziemann, S., Grunwald, A., Schebek, L., Müller, D. b., & Weil, M. (2013). The future of mobility and its critical raw materials. Revue de Métallurgie, 110(1), 47–54. http://doi.org/10.1051/metal/2013052 Zimmermann, T., & Gößling-Reisemann, S. (2013). Critical materials and dissipative losses: a screening study. The Science of the Total Environment, 461–462, 774–80. http://doi.org/10.1016/j.scitotenv.2013.05.040 |
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Lara Rodríguez, Juan SebastiánTosi Furtado, AndréAltimiras Martin, Aleix2018-06-27T21:22:19Z2018-06-27T21:22:19Z2018-02-06Lara Rodríguez, J. S., Tosi Furtado, A. & Altimiras Martin, . (2018). Materias críticas y complejidad económica en América Latina. Revista Apuntes del CENES, 37(65), 15-51. DOI: https://doi.org/10.19053/01203053.v37.n65.2018.5426. http://repositorio.uptc.edu.co/handle/001/20670120-30532256-5779 En líneahttps://repositorio.uptc.edu.co/handle/001/206710.19053/01203053.v37.n65.2018.5426Páginas 15-51.There are minerals that boost economic growth and which are essential for the development of sustainable technologies. These critical raw materials (CRMs) were determined by models created for complex economies. This paper aims to examine the mineral policies regarding CRMs of the main Latin-American economies, and the role of their respective National Innovation Systems (NIS) in the pursuit of greater economic complexity. This is achieved through a comparative assessment method applied to the mineral policies of the principal nations of the region —Brazil, Mexico, Argentina, Colombia and Chile. In this way, we found that due to the simplicity of these economies, as well as mineral policies that disregard their respective NIS, the increase of the economic complexity of the states in question is compromised. This is characterized by the exiguous value added through the interaction of knowledge and capabilities regarding their mineral resources and industryExisten minerales dinamizadores de crecimiento económico, fundamentales para el desarrollo de tecnologías sostenibles. Estas materias primas críticas (MPC) son determinadas por modelos creados para economías complejas. El objetivo de este artículo es examinar las políticas minerales de materias primas críticas en las principales economías de América Latina, y el papel de sus respectivos sistemas nacionales de innovación (SNI), en búsqueda de mayor complejidad económica, mediante un método de evaluación comparativo aplicado a la política mineral de las principales naciones de esta zona —Brasil, México, Argentina, Colombia y Chile—. Descubrimos que debido a la simplicidad de estas economías y de políticas minerales que desestiman sus respectivos sistemas nacionales de innovación, se compromete el aumento de la complejidad económica de los Estados en cuestión, la cual se caracteriza por la precaria adición de valor mediante la interacción de conocimiento y capacidades en relación con sus recursos minerales e industria.Existem minérios que impulsam o crescimento econômico e são fundamentais para o desenvolvimento de tecnologias sustentáveis, estas Matérias Primas Criticas (MPC) são determinadas mediante modelos criados pelas economias complexas. Portanto, o artigo tem por objetivo examinar as políticas minerais de MPC nas economias Latino Americanas de destaque, e o papel do respetivo Sistema Nacional de Inovação (SNI) na procura de uma maior complexidade econômica. Isto, por meio de um método de avaliação comparativa de política mineral, aplicado nos principais países da América Latina -Brasil, México, Argentina, Colômbia e Chile-. Desta maneira a gente descobriu que devido à simplicidade destas economias, e de políticas minerais que desestimam seus SNI, há um comprometimento do aumento da complexidade econômica dos países estudados. A qual é caraterizada pela precária adição de valor através da interação do conhecimento e capacidades, em torno dos recursos minerais e a indústria.Bibliografía: páginas 44-51.Artículo de investigación revisado por pares académicos.Artículos clasificados en Journal of economic Literatura JEL: Q32; O30; N56; L72; Q55.application/pdfdeuUniversidad Pedagógica y Tecnológica de ColombiaCopyright (c) 2018 Universidad Pedagógica y Tecnológica de Colombiahttps://creativecommons.org/licenses/by-nc/4.0/info:eu-repo/semantics/openAccessAtribución-NoComercial 4.0 Internacional (CC BY-NC 4.0)http://purl.org/coar/access_right/c_abf2https://revistas.uptc.edu.co/index.php/cenes/article/view/5426/6037Materias primas críticas y complejidad económica en América LatinaCritical Raw Materials and Economic Complexity in Latin AmericaMatérias-primas críticas e complexidade econômica na América LatinaArtículo de revistahttp://purl.org/coar/resource_type/c_6501http://purl.org/coar/resource_type/c_2df8fbb1info:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionTexthttps://purl.org/redcol/resource_type/ARThttp://purl.org/coar/version/c_970fb48d4fbd8a85Industria minera - Aspectos económicosTeoría económicaRecursos naturales no renovables - América LatinaDesarrollo económico - América LatinaRecursos mineralesRecursos naturales no renovablesDesarrollo económicoInnovaciónTecnologías sosteniblesAbramczyk, H. 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