English

Defect migration in supercrystalline nanocomposites

Materials Science 2025-07-29 v1

Abstract

Supercrystalline nanocomposites (SCNCs) are nanostructured hybrid materials with unique emergent functional properties. Given their periodically arranged building blocks, they also offer interesting parallelisms with crystalline materials. They can be processed in multiple forms and at different scales, and crosslinking their organic ligands via heat treatment leads to a remarkable boost of their mechanical properties. This study shows, via X-ray and in-situ scanning transmission (STEM) electron microscopy analyses, how each of these processing steps plays a distinct role in the generation, migration, interaction and healing of supercrystalline defects. Pressing of SCNCs into bulk pellets leads to a distortion of the otherwise fcc superlattice, while emulsion-templated self-assembly yields supraparticles (SPs) with stacking faults and size-dependent symmetries. Interestingly, heat treatment at the same temperatures as those applied for the organic crosslinking has significant effects on planar defects. Stacking faults migrate and get healed, as also confirmed via molecular dynamics simulations, and inter-supercrystalline 'grain' boundaries undergo structural changes. These rearrangements of defects at the supercrystalline scale (tens of nm) in nanocomposites with such remarkable mechanical properties (compressive strength of 100-500 MPa) provide new insights into the formation and evolution of ordered assemblies of functionalized nanoparticles.

Keywords

Cite

@article{arxiv.2507.20826,
  title  = {Defect migration in supercrystalline nanocomposites},
  author = {Dmitry Lapkin and Cong Yan and Emre Gürsoy and Hadas Sternlicht and Alexander Plunkett and Büsra Bor and Young Yong Kim and Dameli Assalauova and Fabian Westermeier and Michael Sprung and Tobias Krekeler and Surya Snata Rout and Martin Ritter and Satishkumar Kulkarni and Thomas F. Keller and Gerold A. Schneider and Gregor B. Vonbun-Feldbauer and Robert H. Meissner and Andreas Stierle and Ivan A. Vartanyants and Diletta Giuntini},
  journal= {arXiv preprint arXiv:2507.20826},
  year   = {2025}
}
R2 v1 2026-07-01T04:22:06.828Z