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Published on: August 23, 2012
Lattice and ligand engineering for hierarchical heterogeneous nanocrystals
Rui Wang1,2, Mengxiang Qiao1, Shihui Wen1,3
1Zhejiang Provincial Engineering Research Center for Organelles Diagnostics and Therapy, Eastern Institute of Technology, Ningbo, Zhejiang 315200, P. R. China.
None:
Precise control over the morphology, structure, and composition of nanocrystals is essential for designing advanced functional materials. Herein, we establish a general paradigm for the programmable synthesis of hierarchical heteronanocrystals by synergistically integrating ligand-mediated site-selective epitaxy with lattice mismatch engineering. We demonstrate that the curvature-dependent distribution of surface ligands on hexagonal nanorods enables site-selective epitaxial growth, leading to the formation of secondary satellite nanocrystals at predetermined positions. Strong ligand binding is identified as a key factor governing this ordered epitaxial process. By varying the composition of the epitaxial material across 8 kinds of rare-earth ions (from Yttrium to Cerium), we find the lattice mismatch between substrate and the epitaxial deposit dictates three distinct growth regimes: a mismatch below 2.0% results in uniform coating, a mismatch between 2.0% and 5.1% leads to island formation, and a mismatch exceeding 7.1% induces homogeneous nucleation. Harnessing these principles, we implement a programmable epitaxial strategy to precisely integrate 4 distinct elements onto a heterogeneous nanorod, constructing a complex 3D hierarchical architecture with 14 segments within a 160 nm × 50 nm framework. This work opens avenues for the on-demand fabrication of sophisticated nanostructures.
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