Non-Hermitian Synthetic Phase Shifter: Topologically-Protected Phase Control via Tunable Losses

Fuente: arXiv
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Main Authors: Zelaya, Kevin, Friedman, Jonathan, Rubio, Hector, Preble, Stefan, Miri, Mohammad-Ali
Format: Preprint
Published: 2026
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author Zelaya, Kevin
Friedman, Jonathan
Rubio, Hector
Preble, Stefan
Miri, Mohammad-Ali
author_facet Zelaya, Kevin
Friedman, Jonathan
Rubio, Hector
Preble, Stefan
Miri, Mohammad-Ali
contents Phase shifters are fundamental reconfigurable components in photonic circuits. In conjunction with passive elements, they control light flow and serve as foundational building blocks for diverse applications, including communication, sensing, analog signal processing, and quantum control. Conventional phase shifters achieve phase control by modulating the refractive index through various physical mechanisms such as thermo-optic or electro-optic effects. However, despite expectations that such index-based approaches would integrate seamlessly, they, in practice, restrict circuit size, bandwidth, and scalability and thus become bottlenecks to large-scale photonic integration. Here, we introduce an alternative phase-control approach based on optical loss modulation. We demonstrate a synthetic phase shifter that uses two independently controlled loss-modulation stages combined with multipath interference to achieve full-cycle phase tunability while maintaining constant amplitude. We develop a theoretical framework based on conserved topological charges to demonstrate how synthetic phase control can be achieved via non-Hermitian effects, enabling robust topologically-protected phase control. By shifting the paradigm from index control to loss modulation, the proposed synthetic phase shifter could pave the way for scalable integrated photonic systems that support applications from communications and sensing to photonic classical and quantum information processing.
format Preprint
id arxiv_https___arxiv_org_abs_2604_24025
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Non-Hermitian Synthetic Phase Shifter: Topologically-Protected Phase Control via Tunable Losses
Zelaya, Kevin
Friedman, Jonathan
Rubio, Hector
Preble, Stefan
Miri, Mohammad-Ali
Optics
Applied Physics
Phase shifters are fundamental reconfigurable components in photonic circuits. In conjunction with passive elements, they control light flow and serve as foundational building blocks for diverse applications, including communication, sensing, analog signal processing, and quantum control. Conventional phase shifters achieve phase control by modulating the refractive index through various physical mechanisms such as thermo-optic or electro-optic effects. However, despite expectations that such index-based approaches would integrate seamlessly, they, in practice, restrict circuit size, bandwidth, and scalability and thus become bottlenecks to large-scale photonic integration. Here, we introduce an alternative phase-control approach based on optical loss modulation. We demonstrate a synthetic phase shifter that uses two independently controlled loss-modulation stages combined with multipath interference to achieve full-cycle phase tunability while maintaining constant amplitude. We develop a theoretical framework based on conserved topological charges to demonstrate how synthetic phase control can be achieved via non-Hermitian effects, enabling robust topologically-protected phase control. By shifting the paradigm from index control to loss modulation, the proposed synthetic phase shifter could pave the way for scalable integrated photonic systems that support applications from communications and sensing to photonic classical and quantum information processing.
title Non-Hermitian Synthetic Phase Shifter: Topologically-Protected Phase Control via Tunable Losses
topic Optics
Applied Physics
url https://arxiv.org/abs/2604.24025