Resonant Metaphotonics: From Optical Manipulation to Chiral Metasurfaces
Abstract
This thesis develops a resonance-centric framework for metaphotonics and optomechanics, focusing on
how resonant modes govern light–matter interactions at the subwavelength scale. The unifying theme is
that resonances provide a minimal and physically transparent language to describe, predict, and engineer
enhanced forces, torques, nonlinear responses, and chiral effects in both isolated particles and structured
metasurfaces.
Chapters 1 and 2 establishes a theory-first foundation based on Maxwell equations, multipole ex
pansion, eigenmode analysis, resonant state expansion, and temporal coupled-mode theory. Emphasis
is placed on identifying simple models that capture the essential physics of resonant excitation, decay,
and interference, while remaining general across optics and linear acoustics. This framework clarifies
the role of quality factors, radiative and non-radiative losses, and mode symmetry in shaping observable
responses.
Chapter 3 applies this formalism to radiation forces and torques on resonant particles. It is shown
that Mie resonances in high-index dielectric particles lead to strong, spectrally selective enhancement
of optical and acoustic forces, recoil effects, and angular momentum transfer. New regimes of motion
are identified, including resonant hopping, orbiting, super-torque regime, lateral recoil forces, stable lift,
and angular sorting of particles. The analysis includes electric, magnetic, and higher-order multipolar
contributions and reveals how resonance-induced sign changes and interference effects enable force and
torque control beyond the Rayleigh limit.
Chapter 4 addresses resonant metasurfaces, with a focus on chirality and polarization control. A
general strategy for chiral encoding is developed, based on the interplay between lattice symmetry and
resonator geometry. It is demonstrated that strong linear and nonlinear circular dichroism can emerge
from mode coupling and symmetry breaking, even in structures composed of achiral meta-atoms. Res
onances are shown to act as symmetry-selective amplifiers, enabling gradient chirality, maximal optical
chirality, and efficient nonlinear chiral light generation.
Finally, Chapter 5 summarises the key findings, concludes the thesis, and outlines future research
directions.
Overall, the thesis provides a unified resonant perspective on radiation forces and torques and meta
surface design. The results establish general design principles for exploiting resonances to enhance and
control mechanical, polarization, and nonlinear phenomena, with direct relevance to optical trapping,
particle sorting, chiral photonics, and resonant nanophotonic devices
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