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Updated: Jun 30, 2025

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Utilization of Plasmonic and Photonic Crystal Nanostructures for Enhanced Micro- and Nanoparticle Manipulation
Published on: September 27, 2011
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Prismatic Confinement Induces Tunable Orientation in Plasmonic Supercrystals.
Wajdi Chaâbani1, Jieli Lyu1, Jules Marcone1
1Université Paris-Saclay, CNRS, Laboratoire de Physique des Solides, 91405 Orsay, France.
ACS Nano
|March 20, 2024
Summary
Scientists used prismatic confinement to guide nanoparticle self-assembly into complex supercrystals. Flat mold interfaces orient crystal growth, controlling defects for advanced materials.
Area of Science:
- Materials Science
- Nanotechnology
- Crystallography
Background:
- Nature-inspired self-assembly of complex structures is a long-standing scientific goal.
- Synthetic supercrystal formation is challenging due to nanoparticle (NP) symmetry.
- Previous studies explored NP self-assembly within spherical or cylindrical confinement.
Purpose of the Study:
- Investigate the self-assembly of supercrystals using anisotropic NPs in prismatic confinement.
- Understand the role of mold interfaces in directing supercrystal domain growth and texture.
- Explore the influence of confinement geometry on supercrystal formation.
Main Methods:
- Utilized anisotropic nanoparticles and prismatic confinement cavities.
- Employed multiscale characterization for local and ensemble-level analysis.
- Conducted computer simulations to study effects of increased confinement.
Main Results:
- Prismatic confinement, guided by mold interfaces, directs the formation of distinct crystal domains.
- Grain boundaries form where different crystal domains meet.
- Flat interfaces in prismatic confinement are crucial for orienting supercrystal growth, unlike cylindrical confinement.
Conclusions:
- Demonstrated a method to induce orientation and control textural defects in plasmonic supercrystals.
- Findings offer insights into designing functional metasurfaces and hierarchical devices.
- Highlights the importance of anisotropic shapes and specific confinement geometries for advanced material fabrication.

