Nature builds hierarchically ordered materials, such as seashells, wood, and bones, through spatially and temporally regulated growth. Mimicking such a level of control in synthetic systems remains challenging, particularly in achieving multiscale organizations with prescribed nanoscale arrangements and desired material morphologies. In this study, we introduce a DNA‐based self‐assembly strategy for constructing diverse multi‐shell mesoscale morphologies from nanoscale lattices, enabling prescribed structural, and compositional 3D material patterns. Using DNA origami frames as modular monomers, we direct anisotropic epitaxial growth through addressable DNA frame binding motifs and encapsulate nanoparticles (NPs) in desired 3D patterns. Sequential monomer addition under thermodynamically favorable conditions enables shell growth through heterogeneous nucleation while minimizing unwanted homogeneous nucleation. We demonstrate that DNA‐encoded addressability enables epitaxial shell growth along specific lattice directions, yielding crystals with multilayered mesoscale organization, including tube‐like (sushi roll) and plate‐like (macaron) morphologies. Shell‐specific NP configurations and compositions are achieved through addressable and differentiated placement of NPs within each shell, as validated by small‐angle x‐ray scattering and cross‐sectional scanning transmission electron microscopy. We further demonstrate addressable NP release and reveal that shells modulate release kinetics. Together, these findings establish a platform for fabricating DNA origami crystals with programmable mesoscale morphologies, nanoscale structure, composition, and transport properties.
A multilayer core–shell architecture capable of selectively capturing distinct nanomaterials into a predetermined layer is anticipated to facilitate multifunctional isolation or cascade processes at the microscale. However, fabricating single‐crystal architectures featuring numerous shells with intricate distribution p...
Yifan Yu, Hang Xu, X. Yan et al.· Advances in Materials· 0 citations
Precise control of surface patterns in assembled nanostructures remains a significant challenge in materials science. Here, we introduce a scalable bottom-up strategy utilizing living crystallization-driven self-assembly (CDSA) to fabricate tunable 3D surface patterns on polymer platelets. Inspired by biological grow...
Laihui Xiao, Tianlai Xia, A. P. Dove et al.· Nature Communications· 0 citations
Biominerals comprise composite crystals in which organic constituents are spatially organized within mineral matrices with exquisite precision, giving rise to hierarchically ordered architectures. Despite extensive efforts, achieving precise control over organic–inorganic interactions to construct biomimetic composite...
Wen-Ting Chen, Z. Hugh Fan, Pei Liu et al.· Nature Communications· 0 citations
Stripe patterns provide profound insights into physicochemical properties governed by the structural characteristics of their constituent building blocks. However, simultaneously controlling the geometric shape, crystallographic features, and spatial arrangement of these building blocks remains challenging. Herein, we...
Zi-Hao Cheng, Shuang Ma, Chaoqun Ma et al.· Advanced Functional Material...· 0 citations
Crystallization‐driven self‐assembly (CDSA) provides a versatile route to low‐curvature polymer nanostructures with controlled dimensions and hierarchical organization. 2D platelets represent a particularly important class of CDSA assemblies, combining ordered crystalline cores, accessible surfaces, and chemically prog...