Oliver, W.C.; Pharr, G.M. An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments. J. Mater. Res. 1992, 7(6), 1564–1583.
Oliver, W.C. and Pharr, G.M. Measurement of hardness and elastic modulus by instrumented indentation: Advances in understanding and refinements to methodology. J. Mater. Sci. 2004, 19, 3-20.
Siu, K.W.; Ngan, A.H.W. Oscillation-induced softening in copper and molybdenum form nano- to micro-length scales. Mater. Sci. Eng. A 2013, 572, 56–64.
Leitner, A.; Maier-Kiener, V.; Kiener, D. Dynamic nanoindentation testing: is there an influence on a material’s hardness? Mat. Res. Lett. 2017, 5:7, 486–493.
Merle, B.; Maier-Kiener, V.; Pharr, G.M. Influence of modulus-to-hardness ratio and harmonic parameters on continuous stiffness measurement during nanoindentation. Acta Materialia. 2017, 134, 167–176.
Hou, X.; Jennett, N.M. Application of a modified slip-distance theory to the indentation of single-crystal and polycrystalline copper to model the interactions between indentation size and structure size effects. Acta Materialia. 2012, 60, 4128–4135.
Hou, X.D.; Bushby, A.J.; Jennett, N.M. Study of the interaction between the indentation size effect and Hall- Petch effect with spherical indenters on annealed polycrystalline copper. J. Phys. D Appl. Phys. 2008, 41, 074006.
Zhao, M.; Slaughter, W.S.; Li, M.; Mao, S.X. Material-length-scale-controlled nanoindentation size effects due to strain-gradient plasticity. Acta Mater. 2003, 51, 4461–4469.
Swadener, J.G.; Misra, A.; Hoagland, R.G.; Nastasi, M. A mechanistic description of combined hardening and size effects. Scripta Materialia. 2002, 47, 343–348.
Yuan, Z.; Li, F.; Chen, B.; Xue, F. The correlation between indentation hardness and material properties with considering size effect. J. Mater. Res. 2014, 29(2), 1317–1325.
Voyiadjis, G.Z.; Yaghoobi, M. Review of nanoindentation size effect: Experiments and atomistic simulation. Crystals 2017, 7(10), 321.
Ruiz-Moreno, A.; Hähner, P. Indentation size effects of ferritic/martensitic steels: A comparative experimental and modelling study. Materials and Design. 2018, 145, 168–180.
Durst, K.; Backes, B.; Franke, O.; Göken, M. Indentation size effect in metallic materials: Modeling strength from pop-in to macroscopic hardness using geometrically necessary dislocations. Acta Mater. 2006, 54, 2547–2555.
Pharr, G.M.; Herbert, E.G.; Gao, Y. The indentation size effect: a critical examination of experimental observations and mechanistic interpretations. Annu. Rev. Mater. Res. 2010, 40, 271–292.
Gale, J.D.; Achuthan, A. The effect of work-hardening and pile-up on nanoindentation measurements. J. Mater. Sci 2014, 49, 5066–5075.
Joslin, D.L.; Oliver, W.C. A new method for analyzing data from continuous depth-sensing microindentation tests. J. Mater. Res. 1990, 5(1), 123–126.
Aldrich Smith, G.; Jennett, N.M.; Hangen, U. Direct measurement of nanoindentation area function by metrological AFM. Zeitschrift Fur Metallkunde 2005, 96 (11), 1267–1271.
Menčík, J. (October 17th 2012). Uncertainties and Errors in Nanoindentation, Nanoindentation in Materials Science. IntechOpen, DOI: 10.5772/50002.
Moharrami, N.; Bull, S.J. A comparison of nanoindentation pile-up in bulk materials and thin films. Thin Solid Films 2014, 572, 189–199.
Hosemann, P.; Shin, C.; Kiener, D. Small scale mechanical testing of irradiated materials. J. Mater. Res. 2015, 30, 1–15.
Hardie, C.D.; Roberts, S.G.; Bushby, A.J. Understanding the effects of ion irradiation using nanoindentation techniques. J. Nucl. Mater. 2015, 462, 391–401.
Heintze, C.; Bergner, F.; Akhmadaliev, S.; Alstadt, E. Ion irradiation combined with nanoindentation as a screening test procedure for irradiation hardening. J. Nucl. Mater. 2016, 472, 196–205.
Chang, C.; Garrido, M.A.; Ruiz-Hervias, J.; Rodriguez, J. On the possibility of reducing the pile-up effect on the Berkovich instrumented indentation tests. Int. J. Mech. Sci. 2017, 121, 181–186.
Beck, C.E.; Hofman, F.; Eliason, J.K.; Maznev, A.A.; Nelson, K.A.; Armstrong, D.E.J. Correcting for contact area changes in nanoindentation using surface acoustic waves. Scr. Mater. 2017, 128, 83–86.
Hou, X.D.; Jennett, N.M. A method to separate and quantify the effects of indentation size, residual stress and plastic damage when mapping properties using instrumented indentation. Journal of Physics D: Applied Physics 2017, 50 (45), 455304
Fischer Cripps, A.C. Nanoindentation, 3rd ed., Mechanical Engineering Series. Springer New York, New York, USA, 2004; pp. 50-51.
Chudoba, T.; Jennett, N.M. Higher accuracy analysis of instrumented indentation data obtained with pointed indenters. J. Phys. D Appl. Phys. 2008, 41, 215407.
Hall, E.O. The deformation and ageing of mild steel: III Discussion of results. Proc. Phys. Soc. B 1951, 64 (9), 747-53.
Petch, N.J. The cleavage strength of polycrystals. J. Iron Steel Inst. 1953, 174, 25–28.
Nix, W.D.; Gao, H. Indentation size effects in crystalline materials: a law for strain gradient plasticity. J. Mech. Phys. Solids 1998, 46, 411–425.