Topological dissipation in a time-multiplexed photonic resonator network

C Leefmans, A Dutt, J Williams, L Yuan, M Parto… - Nature Physics, 2022 - nature.com
Nature Physics, 2022nature.com
Topological phases feature robust edge states that are protected against the effects of
defects and disorder. These phases have largely been studied in conservatively coupled
systems, in which non-trivial topological invariants arise in the energy or frequency bands of
a system. Here we show that, in dissipatively coupled systems, non-trivial topological
invariants can emerge purely in a system's dissipation. Using a highly scalable and easily
reconfigurable time-multiplexed photonic resonator network, we experimentally demonstrate …
Abstract
Topological phases feature robust edge states that are protected against the effects of defects and disorder. These phases have largely been studied in conservatively coupled systems, in which non-trivial topological invariants arise in the energy or frequency bands of a system. Here we show that, in dissipatively coupled systems, non-trivial topological invariants can emerge purely in a system’s dissipation. Using a highly scalable and easily reconfigurable time-multiplexed photonic resonator network, we experimentally demonstrate one- and two-dimensional lattices that host robust topological edge states with isolated dissipation rates, measure a dissipation spectrum that possesses a non-trivial topological invariant, and demonst rate topological protection of the network’s quality factor. The topologically non-trivial dissipation of our system exposes new opportunities to engineer dissipation in both classical and quantum systems. Moreover, our experimental platform’s straightforward scaling to higher dimensions and its ability to implement inhomogeneous, non-reciprocal and long range couplings may enable future work in the study of synthetic dimensions.
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