Liste Elastizitätsmodul (E) in GPa der Elemente

# [|] Stoffname [|] Formel [|] Wert / Einheit [|] Bemerkungen

056 Barium Ba 13 GPa [1]
004 Beryllium Be 287 GPa [1]
020 Calcium Ca 20 GPa [1]
058 Cer, γ-Modifikation Ce 33.6 GPa [2]
027 Cobalt Co 223 GPa [3]
066 Dysprosium, α-Modifikation Dy 61.4 GPa [2]
026 Eisen Fe 210 GPa [4]
068 Erbium Er 69.9 GPa [2]
063 Europium Eu 18.2 GPa [2]
064 Gadolinium, α-Modifikation Gd 54.8 GPa [2]
067 Holmium Ho 64.8 GPa [2]
029 Kupfer Cu 130 GPa [5]
057 Lanthan La 36.6 GPa [2]
003 Lithium Li 7.82 GPa [6]
071 Lutetium Lu 68.6 GPa [2]
012 Magnesium Mg 45 GPa [1]
060 Neodym, α-Modifikation Nd 41.4 GPa [2]
028 Nickel Ni 208 GPa [7] 208±9.4 GPa
046 Palladium Pd 123 GPa [5]
059 Praseodym, α-Modifikation Pr 37.3 GPa [2]
061 Promethium, α-Modifikation Pm 46 GPa [2] Wert ist fraglich
062 Samarium, α-Modifikation Sm 49.7 GPa [2]
021 Scandium Sc 74.4 GPa [2]
047 Silber Ag 80 GPa [5]
014 Silicium Si 169 GPa [8] E(x,y-Richtung) = 169 GPa, E(z-Richtung) = 130 GPa
038 Strontium Sr 15.7 GPa [1]
065 Terbium, α-Modifikation Tb 55.7 GPa [2]
069 Thulium Tm 74 GPa [2]
070 Ytterbium, β-Modifikation Yb 23.9 GPa [2]
039 Yttrium Y 63.5 GPa [2]

Tabelle 1: Eigenschaftsliste (Elastizitätsmodul) für alle Elemente in der Datenbank.

Quellen: [1] Ropp, R. C. (2013). Encyclopedia of the alkaline earth compounds. Elsevier.
[2] Lide, D. R. (2005). Physical properties of the rare earth elements, in: CRC Handbook of Chemistry and Physics, Internet Version 2005. CRC Press Boca Raton.
[3] Karimpoor, A. A., & Erb, U. (2006). Mechanical properties of nanocrystalline cobalt. physica status solidi (a), 203(6), 1265-1270. https://doi.org/10.1002/pssa.200566157
[4] Benito, J. A., Jorba, J., Manero, J. M., & Roca, A. (2005). Change of Young’s modulus of cold-deformed pure iron in a tensile test. Metallurgical and Materials Transactions A, 36(12), 3317-3324. https://doi.org/10.1007/s11661-005-0006-6
[5] Fougere, G. E., Riester, L., Ferber, M., Weertman, J. R., & Siegel, R. W. (1995). Young's modulus of nanocrystalline Fe measured by nanoindentation. Materials Science and Engineering A, 204(1-2), 1-6. https://doi.org/10.1016/0921-5093(95)09927-1
[6] Masias, A., Felten, N., Garcia-Mendez, R., Wolfenstine, J., & Sakamoto, J. (2019). Elastic, plastic, and creep mechanical properties of lithium metal. Journal of materials science, 54(3), 2585-2600. https://doi.org/10.1007/s10853-018-2971-3
[7] Zhou, Y., Erb, U., Aust, K. T., & Palumbo, G. (2022). Young's modulus in nanostructured metals. International Journal of Materials Research, 94(10), 1157-1161. https://doi.org/10.1515/ijmr-2003-0209
[8] Hopcroft, M. A., Nix, W. D., & Kenny, T. W. (2010). What is the Young's Modulus of Silicon?. Journal of microelectromechanical systems, 19(2), 229-238. https://doi.org/10.1109/JMEMS.2009.2039697