Calamitic ligand design for quantum dot assembly

S Samia I. Liba (Department of Physics, University of California 1 , Merced, 5200 N. Lake Road, Merced, California 95343,) A Alauna C. Wheeler (Department of Physics, University of California 1 , Merced, 5200 N. Lake Road, Merced, California 95343,) J Jocelyn Ochoa (Department of Chemistry & Biochemistry, University of California 2 , Merced, 5200 N. Lake Road, Merced, California 95343,) N Nicholas Javier C. Licauco (Department of Chemistry & Biochemistry, Santa Clara University 3 , 500 El Camino Real, Santa Clara, California 95053,) I Isabella C. Reyes (Department of Chemistry & Biochemistry, Santa Clara University 3 , 500 El Camino Real, Santa Clara, California 95053,) B Benjamin J. Stokes (Department of Chemistry & Biochemistry, Santa Clara University 3 , 500 El Camino Real, Santa Clara, California 95053,) T Timothy J. Atherton (Department of Physics, Tufts University) L Linda S. Hirst (Department of Physics, University of California 1 , Merced, 5200 N. Lake Road, Merced, California 95343,)

Abstract

We report the design and use of calamitic ligands for quantum dot surface modification and nanoparticle assembly. Ligands incorporating a rigid aromatic rod-like core have previously been shown to facilitate the formation of porous nanoparticle-based structures, such as solid-walled capsules and multi-compartment quantum dot foams and networks via liquid crystal phase transition templating—a process in which the host phase is quenched through the isotropic-nematic phase transition. The effect of the calamitic ligand structure on particle dispersion, transport, and subsequent assembly, however, requires further investigation, particularly in the case of anisotropic liquid crystal solvents. In this report, we vary the structure of six new calamitic ligands and characterize quantum dot size and packing into superstructures when modified with each ligand. Dynamic light scattering is used to measure the effective nanoparticle size for each ligand in dilute toluene solution. Transmission electron microscopy reveals nanoparticle distribution in dense drop-cast films for each ligand, and small-angle x-ray scattering is used to measure interparticle separations in the assembled porous structures. Together, these methods provide a full picture of particle packing for each ligand. Notably, our findings demonstrate that while longer, more rigid aromatic cores promote a closer packing structure in drop-cast films (a slow quasi-equilibrium process)—such effects are not evident using a rapid quenching method. This study highlights the fact that when nanoparticles are formed into macroscopic assemblies, both ligand design and the particular method of assembly can contribute significantly to the final packing structure.

Article Details

Volume / Issue Vol. 137, Issue 24
Published June 28, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (8)

S

Samia I. Liba

Department of Physics, University of California 1 , Merced, 5200 N. Lake Road, Merced, California 95343,

A

Alauna C. Wheeler

Department of Physics, University of California 1 , Merced, 5200 N. Lake Road, Merced, California 95343,

J

Jocelyn Ochoa

Department of Chemistry & Biochemistry, University of California 2 , Merced, 5200 N. Lake Road, Merced, California 95343,

N

Nicholas Javier C. Licauco

Department of Chemistry & Biochemistry, Santa Clara University 3 , 500 El Camino Real, Santa Clara, California 95053,

I

Isabella C. Reyes

Department of Chemistry & Biochemistry, Santa Clara University 3 , 500 El Camino Real, Santa Clara, California 95053,

B

Benjamin J. Stokes

Department of Chemistry & Biochemistry, Santa Clara University 3 , 500 El Camino Real, Santa Clara, California 95053,

T

Timothy J. Atherton

Department of Physics, Tufts University

L

Linda S. Hirst

Department of Physics, University of California 1 , Merced, 5200 N. Lake Road, Merced, California 95343,