BullS. J., SandersonL., MoharramiN. and OilaA.: ‘Effect of microstructure on hardness of submicrometre thin films and nanostructured devices’, Mater. Sci. Technol., 2012, 28, (9–10), 1177–1185.
3.
VlassakJ. J. and NixW. D.: ‘Measuring the elastic properties of anisotropic materials by means of indentation experiments’,J. Mech. Phys. Sol., 1994, 42, 1223–1245.
4.
LiT. L., BeiH., MorrisJ. R., GeorgeE. P. and GaoY. F.: ‘Scale effects in convoluted thermal/spatial statistics of plasticity initiation in small stressed volumes during nanoindentation’, Mater. Sci. Technol., 2012, 28, (9–10), 1055–1059.
5.
ArmstrongR. W. and ElbanW. L.: ‘Hardness properties across multiscales of applied loads and material structures’, Mater. Sci. Technol., 2012, 28, (9–10), 1060–1071.
6.
SalehiniaI. and BahrD. F.: ‘Inception of plasticity in copper single crystal in presence of stacking fault tetrahedra’, Mater. Sci. Technol., 2012, 28, (9–10), 1141–1146.
7.
WangJ. and ConradH.: Effect of electric field on solute solubility in Al alloys measured by hardness’, Mater. Sci. Technol., 2012, 28, (9–10), 1198–1201.
AtkinsonC., Martínez-EsnaolaJ. M. and ElizaldeM. R.: ‘Contact mechanics: a review and some applications’, Mater. Sci. Technol., 2012, 28, (9–10), 1079–1091.
12.
MokiosG. and AifantisE. C.: ‘Gradient effects in micro-/nanoindentation’, Mater. Sci. Technol., 2012, 28, (9–10), 1072–1078.
13.
NowakR., ChrobakD., NagaoS., VodnickD. and BergM.: ‘Mystery of current spike: nanoscale plasticity revisited’, Mater. Sci. Technol., 2012, 28, (9–10), 1202–1206.
14.
GouldstoneA., ChollacoopN., DaoM., LiJ., MinorA. M. and ShenY. L.: ‘Indentation across length scales: recent developments in experimentation and modelling’,Acta Mater., 2007, 55, (12), 4015–4039.
15.
ChangH. J., FivelM., RodneyD. and VerdierM.: ‘Multiscale modelling of indentation in fcc metals: from atomic to continuum’,Comptes Rendus Physique, 2010, 11, 285–292.
16.
MinorA. M., MorrisJ. W. and A StachE.: ‘Quantitative in situ nanoindentation in an electron microscope,’Appl. Phys. Lett., 2001, 79, 1625–1627.
17.
MinorA. M., LilleoddenE. T., StachE. A. and MorrisJ. W.: ‘Direct observations of incipient plasticity during nanoindentation of Al’,J. Mater. Res., 2004, 19, 176–182.
MurrL. E.: ‘Correlating impact related residual microstructures through 2D computer simulations and microindentation hardness mapping: a review’, Mater. Sci. Technol., 2012, 28, (9–10), 1108–1126.
20.
CharitidisC. A.: ‘Multiscale approach of hardness in aluminium alloy: consideration of rate dependent behaviour’, Mater. Sci. Technol., 2012, 28, (9–10), 1127–1134.
21.
HaghshenasM., WangL. and KlassenR. J.: ‘Depth dependence and strain rate sensitivity of indentation stress of 6061 aluminium alloy’, Mater. Sci. Technol., 2012, 28, (9–10), 1135–1140.
22.
YeagerJ. D., RamosK. J., SinghS., RutherfordM. E., MajewskiJ. and HooksD. E.: ‘Nanoindentation of explosive polymer composites to simulate deformation and failure’, Mater. Sci. Technol., 2012, 28, (9–10), 1147–1155.