Time-dependent laser cavity perturbation theory: Exploring future nano-structured photonic devices in semi-analytic way

dc.contributor.authorDrong, Mariusz
dc.contributor.authorDems, Maciej
dc.contributor.authorPeřina Jr., Jan
dc.contributor.authorFördös, Tibor
dc.contributor.authorJaffrès, Henri-Yves
dc.contributor.authorPostava, Kamil
dc.contributor.authorDrouhin, Henri-Jean
dc.date.accessioned2022-09-27T13:04:12Z
dc.date.available2022-09-27T13:04:12Z
dc.date.issued2022
dc.description.abstractWe present a theoretical framework, which successfully combines two different fields of photonics: i) the laser rate equations and ii) the cavity perturbation theory, focusing particularly on micro-cavity lasers with optical anisotropies. Our approach is formally analogous to quantum-mechanical time-dependent perturbation theory, in which however the gain medium and permittivity tensor distribution are perturbed instead of the Hamiltonian. Using the general vectorial Maxwell-Bloch equations as a starting point, we derive polarization-resolved coupled-mode equations, in which all relevant geometric and anisotropy-related laser parameters are imprinted in its coefficients. Closed-form coupled-mode equations offer physical insights like rate equations approaches and the precision comparable to brute-force numeric routines, thus being the time-saving alternative to finite-difference time-domain methods. The main advantage is that one calculates numerically the shapes of cold-cavity modes used to derive coupled-mode equations for one set of parameters and the broad landscape of parameters of interest is further studied in a perturbative way. This makes the method particularly interesting for semi-analytic studies of state-of-art devices such as the photonic crystal lasers, the liquid-crystal lasers or specifically spin-lasers, in which the interplay between injected spin and cavity birefrigence creates very promising platform for ultrafast data transfer technologies.cs
dc.description.firstpage4735cs
dc.description.issue14cs
dc.description.lastpage4745cs
dc.description.sourceWeb of Sciencecs
dc.description.volume40cs
dc.identifier.citationJournal of Lightwave Technology. 2022, vol. 40, issue 14, p. 4735-4745.cs
dc.identifier.doi10.1109/JLT.2022.3168231
dc.identifier.issn0733-8724
dc.identifier.issn1558-2213
dc.identifier.urihttp://hdl.handle.net/10084/148651
dc.identifier.wos000824670400011
dc.language.isoencs
dc.publisherIEEEcs
dc.relation.ispartofseriesJournal of Lightwave Technologycs
dc.relation.urihttps://doi.org/10.1109/JLT.2022.3168231cs
dc.rights.accessopenAccesscs
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/cs
dc.subjectanisotropiescs
dc.subjectcavity perturbation theorycs
dc.subjectmicro-cavity laserscs
dc.subjectpolarization dynamicscs
dc.subjectrate equationscs
dc.titleTime-dependent laser cavity perturbation theory: Exploring future nano-structured photonic devices in semi-analytic waycs
dc.typearticlecs
dc.type.statusPeer-reviewedcs
dc.type.versionpublishedVersioncs

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