Related Experiment Video
Updated: May 30, 2026

Quantitative Hardness Measurement by Instrumented AFM-indentation
Published on: November 22, 2016
A new approach to local hardness
T Gál1, P Geerlings, F De Proft
1Department of General Chemistry (Member of the QCMM Alliance Ghent-Brussels), Free University of Brussels (VUB), Pleinlaan 2, 1050 Brussel, Belgium. galt@phys.unideb.hu
Abstract:
The applicability of the local hardness as defined by the derivative of the chemical potential with respect to the electron density is undermined by an essential ambiguity arising from this definition. Further, the local quantity defined in this way does not integrate to the (global) hardness-in contrast with the local softness, which integrates to the softness. It has also been shown recently that with the conventional formulae, the largest values of local hardness do not necessarily correspond to the hardest regions of a molecule. Here, in an attempt to fix these drawbacks, we propose a new approach to define and evaluate the local hardness. We define a local chemical potential, utilizing the fact that the chemical potential emerges as the additive constant term in the number-conserving functional derivative of the energy density functional. Then, differentiation of this local chemical potential with respect to the number of electrons leads to a local hardness that integrates to the hardness, and possesses a favourable property; namely, within any given electron system, it is in a local inverse relation with the Fukui function, which is known to be a proper indicator of local softness in the case of soft systems. Numerical tests for a few selected molecules and a detailed analysis, comparing the new definition of local hardness with the previous ones, show promising results.
Related Concept Videos
Toughness and Hardness of Aggregate
Absolute and Local Extreme Values
Weak Base Solutions
Local Anesthetics: Differential Sensitivity of Nerve Fibers
Generalized Hooke's Law
Non-destructive Tests for Concrete Strength

