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Local Circular Dichroism and Polarization Coupling in Phthalocyanine Molecular Assemblies Revealed by Photoinduced Force Microscopy

Optics 2026-05-21 v1 Applied Physics

Abstract

Photoinduced force microscopy (PiFM) enables nanoscale visualization of optical responses by directly detecting photoinduced forces without relying on luminescence. In molecular assemblies, intermolecular polarization coupling can generate collective excitation modes and chiral optical responses that are absent in isolated molecules. In this study, we theoretically investigate PiFM images of ZnPc molecular assemblies using the discrete dipole approximation combined with nonlocal molecular susceptibilities. Under linearly polarized illumination, bonding and antibonding polarization-coupling modes are found to produce characteristic spatial distributions in both the optical force spectra and PiFM images of molecular dimers and tetramers. Furthermore, under circularly polarized illumination, intermolecular coupling and asymmetric molecular packing generate enhanced local circular dichroism distributions characterized by large asymmetric factors and spatially varying chiral contrasts. These results demonstrate that PiFM can spatially resolve collective polarization modes and local chiral optical responses in molecular assemblies, providing insight into nanoscale intermolecular optical interactions.

Keywords

Cite

@article{arxiv.2605.20855,
  title  = {Local Circular Dichroism and Polarization Coupling in Phthalocyanine Molecular Assemblies Revealed by Photoinduced Force Microscopy},
  author = {Masayoshi Fujii and Mamoru Tamura and Hidemasa Yamane and Hajime Ishihara},
  journal= {arXiv preprint arXiv:2605.20855},
  year   = {2026}
}

Comments

19 pages, 5 figures