Collective Effects in Linear Spectroscopy of Dipole-Coupled Molecular Arrays
A.A. Kocherzhenko, J. Dawlaty, B. P. Abolins, F. Herrera, D. B., Abraham, K. B. Whaley

TL;DR
This paper analyzes linear spectroscopy in dipole-coupled molecular arrays, revealing signatures of quantum phase transitions, superradiance, and tunable spectral features across weak and strong coupling regimes.
Contribution
It provides a comprehensive analysis of spectroscopic signatures and superradiant behavior in molecular arrays, highlighting a quantum phase transition and novel spectral phenomena.
Findings
Distinct spectral signatures of weak and strong coupling regimes
Enhanced superradiance with oscillator strength scaling quadratically with system size
Existence of a tunable spectral transition approaching zero energy in large systems
Abstract
We present a consistent analysis of linear spectroscopy for arrays of nearest neighbor dipole-coupled two-level molecules that reveals distinct signatures of weak and strong coupling regimes separated for infinite size arrays by a quantum critical point. In the weak coupling regime, the ground state of the molecular array is disordered, but in the strong coupling regime it has (anti)ferroelectric ordering. We show that multiple molecular excitations (odd/even in weak/strong coupling regime) can be accessed directly from the ground state. We analyze the scaling of absorption and emission with system size and find that the oscillator strengths show enhanced superradiant behavior in both ordered and disordered phases. As the coupling increases, the single excitation oscillator strength rapidly exceeds the well known Heitler-London value. In the strong coupling regime we show the existence…
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