Perfect energy-feeding into strongly coupled systems and interferometric control of polariton absorption
Simone Zanotto, Francesco P. Mezzapesa, Federica Bianco, Giorgio, Biasiol, Lorenzo Baldacci, Miriam Serena Vitiello, Lucia Sorba, Raffaele, Colombelli, and Alessandro Tredicucci

TL;DR
This paper demonstrates the coexistence of strong coupling and critical coupling in polariton systems, enabling perfect energy transfer into polaritons and introducing the concept of strong critical coupling with experimental verification.
Contribution
It introduces the concept of strong critical coupling in polariton systems and experimentally verifies polaritonic coherent perfect absorption in a semiconductor resonator.
Findings
Strong critical coupling allows complete energy transfer into polaritons.
Experimental verification of polaritonic CPA in a semiconductor resonator.
The phase diagram reveals a special curve corresponding to strong critical coupling.
Abstract
The ability to feed energy into a system, or - equivalently - to drive that system with an external input is a fundamental aspect of light-matter interaction. The key concept in many photonic applications is the "critical coupling" condition: at criticality, all the energy fed to the system via an input channel is dissipated within the system itself. Although this idea was crucial to enhance the efficiency of many devices, it was never considered in the context of systems operating in a non-perturbative regime. In this so-called strong coupling regime, the matter and light degrees of freedom are in fact mixed into dressed states, leading to new eigenstates called polaritons. Here we demonstrate that the strong coupling regime and the critical coupling condition can indeed coexist; in this situation, which we term strong critical coupling, all the incoming energy is converted into…
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