Page 455 - A Comprehensive Guide to Solar Energy Systems
P. 455
Chapter 23 • Materials: Abundance, Purification, and the Energy Cost 467
[49] Frenzel M, Ketris MP, Gutzmer J: On the geological availability of germanium, Miner Deposi-
ta:471–486, 2014, Springer, Heidelberg, Berlin, Germany.
[50] Hannon B, Ruth M, Delucia E: A physical view of sustainability, Ecol Econ 8:253–268, 1993.
[51] Hall CAS, Lindenberger D, Kummel R, Kroeger T, Eichorn W: The need to reintegrate the natural sci-
ences with economics, BioScience 51(8):663–673, 2001.
[52] Ayerse RU: Information, entropy, and progress: a new evolutionary paradigm, new york, uS, 1994,
American Institute of Physics.
[53] Hall CAS, Cleveland C, Kaufmann R: Energy and resource quality: the ecology of the economic process,
new york, uS, 1986, Wiley & Sons, Inc, 221-228.
[54] Gupta AK, Hall CAS: Energy costs of materials associated with the exponential growth of thin-film
photovoltaic systems. In Ginley DS, Cahen D, editors: Fundamentals of materials for energy and en-
vironmental sustainability, Warendale, uS and Cambridge, England, 2012, Cambridge univ. Press,
materials Research Society.
[55] Koppelaar RHEM, Koppelaar H: The ore grade and depth influence on copper energy inputs, Biophys
Econ Resour Qual 1:11, 2016.
[56] Fizaine F, Court V: Renewable electricity producing technologies and metal depletion: a sensitivity
analysis using the EROI, Ecol Econ 110:106–118, 2015.
[57] Page NJ, Creasey SC: Ore grade, metal production, and energy, J Res US Geol Surv 3:9–13, 1975.
[58] Mudd G, Diesendorf M: Sustainability of uranium mining and milling: toward quantifying resources
and eco-efficiency, Environ Sci Technol 42(7):2624–2630, 2008.
[59] Norgate T, Janahashi S: Low grade ores – smelt, leach, or concentrate? Miner Eng 23:65–73, 2010.
[60] Memary R, GiurcoD, Mudd G, Mason L: Life cycle assessment: a time-series analysis of copper,
J Clean Prod 33:97–108, 2012.
[61] IEA. Statistics: energy balance flows, world final consumption 2014. OECD/IEA (IEA); 2017. Available
from: https://www.iea.org/Sankey/#?c=World&s=Final%20consumption
[62] MMTA. Metals information page. Minor Metals Trade Association (MMTA); 2017. Available from:
https://mmta.co.uk/metals
[63] Krausmann F, Wiedenhofer d, lauk C, haas W, Tanikawa h, Fishman T, miatto A, Schandl h, haberl
H: Global socioeconomic material stocks rise 23-fold over the 20th century and require half of an-
nual resource use, Proc Nat Acad Sci, 2017 February.
[64] Fthenakis VM: End-of-life management and recycling of PV modules, Energy Policy 28(14):1051–1058,
2000.
[65] Goe M, Gaustad G: Strengthening the case for recycling photovoltaics: an energy payback analysis,
Appl Energy 120:41–48, 2014.
[66] Ives M: Boom in mining rare earths poses mounting toxic risks, yale Environment 360, yale School of
Forestry and Environmental Studies, 2013 January 28.
[67] Wilt J. Why we need to clean up mining if we want a renewable energy economy. deSmog Canada
(Wilt J); July 20, 2017. Available from: https://www.desmog.ca/print/11963
[68] Sercel J: Optical mining of asteroids, moons, and planets to enable sustainable human exploration and
space industrialization, loura hall, 2017, national Aeronautics and Space Administration, Trans-
Astra Corp (Srcel J); April 6, 2017. Available from: https://www.nasa.gov/directorates/spacetech/
niac/2017_Phase_I_Phase_II/Sustainable_human_Exploration.
[69] Trager R. Countries poised to roll out deep sea mining in new “gold rush.” Chemistry World, news, The
Royal Society of Chemistry (Trager R); March 7, 2017. Available from: https://www.chemistryworld.
com/news/countries-poised-to-roll-out-deep-sea-mining-in-new-gold-rush/2500509.article

