3D-printed terahertz subwavelength dual-core fibers with dense channel-integration
Haiyuan Ge, Haisu Li, Lu Jie, Jianshuai Wang, Yang Cao, Shaghik, Atakaramians, Yandong Gong, Guobin Ren, Li Pei

TL;DR
This paper introduces a cost-effective, densely integrated 3D-printed THz dual-core fiber system with high channel isolation, suitable for high-capacity space-division-multiplexing communication, demonstrated through experiments and simulations.
Contribution
It presents a novel 3D-printed dual-core THz fiber with dense integration, mode compatibility with WR5.1 ports, and experimental validation of high channel isolation.
Findings
Supports dual-channel propagation with >15 dB isolation
Mode excitation efficiency up to 62.8%
Compatible with WR5.1 flange port
Abstract
Terahertz (THz) fiber that provides high-speed connections is an essential component in THz communication systems. The emerging space-division-multiplexing technology is expected to increase the transmission capacity of THz communications. A promising candidate to achieve that is integrating multiple channels in a compact THz multi-core fiber system. Here, we propose and experimentally demonstrate a THz subwavelength rectangular dielectric dual-core fiber structure, where two identical cores can be densely integrated, thanks to the polarization-maintaining feature of the rectangular fiber. Different configurations, including the placements, core-spacings, and polarization states of two fiber cores, are comprehensively investigated to improve channel isolation. Numerical simulations show that the fractional power in core of fiber mode has a dominant effect on inter-core coupling…
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Taxonomy
TopicsPhotonic and Optical Devices · Semiconductor Lasers and Optical Devices · Spectroscopy and Laser Applications
