Electro-optic non-reciprocal polarization rotation in lithium niobate

Author:

Örsel Oğulcan E.1ORCID,Bahl Gaurav2ORCID

Affiliation:

1. Department of Electrical and Computer Engineering, University of Illinois at Urbana–Champaign 1 , Urbana Illinois 61801, UVA

2. Department of Mechanical Science and Engineering, University of Illinois at Urbana–Champaign 2 , Urbana, Illinois 61801, USA

Abstract

Polarization is a fundamental degree of freedom for light and is widely leveraged in free space and fiber optics. Non-reciprocal polarization rotation, enabled via the magneto-optic Faraday effect, has been essentially unbeatable for broadband isolators and circulators. For integrated photonics foundries, however, there is still no good path to producing low-loss magneto-optic components, which has prompted a search for alternatives that do not use polarization rotation. Moreover, magneto-optic materials tend to be highly lossy, and while large (10–100 rad/cm) polarization rotation can be achieved, the key figure of merit (rotation-per-loss) is typically <1 rad/dB. Here, we demonstrate that broadband non-reciprocal polarization rotation can be produced using electro-optics in nanophotonic devices. Our demonstration leverages electro-optic inter-polarization scattering around 780 nm in lithium niobate, in which the reciprocity is broken with the help of a radiofrequency stimulus that carries synthetic momentum. While the demonstrated electro-optic polarization rotation rate is ≈1 rad/cm, the exceptionally low loss of lithium niobate enables non-reciprocal polarization rotators with figures of merit that are 1-2 orders of magnitude better than what is possible with magneto-optics. This approach can be replicated on III–V platforms, paving the way for high-performance lasers with co-integrated monolithic non-reciprocal devices.

Funder

Defense Advanced Research Projects Agency

Office of Academic Research, U.S. Naval Academy

Air Force Office of Scientific Research

Publisher

AIP Publishing

Subject

Computer Networks and Communications,Atomic and Molecular Physics, and Optics

Reference56 articles.

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