Work hardening in colloidal crystals.
biomechanical · Level V
Where this comes from
- Record sourced from PubMed, PMID 38811735.
- Also identified by DOI 10.1038/s41586-024-07453-6 and PMC identifier 11186786.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Colloidal crystals exhibit interesting properties<sup>1-4</sup> that are in many ways analogous to their atomic counterparts. They have the same crystal structures<sup>2,5-7</sup>, undergo the same phase transitions<sup>8-10</sup>, and possess the same crystallographic defects<sup>11-14</sup>. In contrast to these structural properties, the mechanical properties of colloidal crystals are quite different from those of atomic systems. For example, unlike in atomic systems, the elasticity of hard-sphere colloidal crystals is purely entropic<sup>15</sup>; as a result, they are so soft that they can be melted just by stirring<sup>16,17</sup>. Moreover, crystalline materials deform plastically when subjected to increasing shear and become stronger because of the ubiquitous process of work hardening<sup>18</sup>; but this has so far never been observed in colloidal crystals, to our knowledge. Here we show that hard-sphere colloidal crystals exhibit work hardening. Moreover, despite their softness, the shear strength of colloidal crystals can increase and approach the theoretical limit for crystals, a value reached in very few other materials so far. We use confocal microscopy to show that the strength of colloidal crystals increases with dislocation density, and ultimately reaches the classic Taylor scaling behaviour for atomic materials<sup>19-21</sup>, although hard-sphere interactions lack the complexity of atomic interactions. We demonstrate that Taylor hardening arises through the formation of dislocation junctions<sup>22</sup>. The Taylor hardening regime, however, is established only after a transient phase, and it ceases when the colloidal crystals become so hard that the strain is localized within a thin boundary layer in which slip results from an unconventional motion of dislocations. The striking resemblance between colloidal and atomic crystals, despite the many orders of magnitude difference in particle size and shear modulus, demonstrates the universality of work hardening.
Medical subject headings
- Colloids
- Crystallization