paper

Valence-free open nanoparticle superlattices

arXiv:2602.13117 · doi:10.1038/s41467-026-68316-4

Abstract

A cornerstone of advanced materials design is establishing a framework for assembling nanoparticle superstructures with tailored symmetries. A longstanding challenge has been assembling diamond-like superstructures for photonic devices. Traditionally, such open superstructures require functionalized nanoparticles with directional or anisotropic interactions, reminiscent of valence bonding in a diamond. Here, we present a robust strategy for assembling valence-free nanoparticles into a broad array of cubic superstructures. By grafting nanoparticles with oppositely charged, end-functionalized water-soluble polymers of adjustable molecular weight, we gain control over electrostatic interactions and conformational constraints. This unified approach yields lattices analogous to rock salt, CsCl, zinc-blende, diamond, and the rare simple cubic phase, with tunable lattice constants. Theoretical models and simulations elucidate the underlying interactions, providing a framework for engineering valence-free nanoparticle superlattices.

The article has 15 pages and 5 figures. Supporting Information uploaded as ancillary files. The article is published at Nature Communications, DOI: doi.org/10.1038/s41467-026-68316-4

Valence-free open nanoparticle superlattices · wovepaper