2018
DOI: 10.1364/ao.57.003953
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3D-printed polymer antiresonant waveguides for short-reach terahertz applications

Abstract: In this work, we present a 3D-printed waveguide that provides effective electromagnetic guidance in the THz regime. The waveguide is printed using low-cost polycarbonate and a conventional fused deposition modeling printer. Light guidance in the hollow core is achieved through antiresonance, and it improves the energy effectively transported to the receiver compared to free space propagation. Our demonstration adds to the field of 3D-printed terahertz components, providing a low-cost way of guiding terahertz r… Show more

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Cited by 72 publications
(43 citation statements)
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“…Moreover, an average minimum loss of 0.03 dB/cm was measured at 0.265 THz. Another 3D‐printed waveguide based on antiresonance effect was FDM‐printed out with low‐cost polycarbonate material, showing an improved energy efficiency when compared with that in free space …”
Section: D‐printed Waveguides and Fibersmentioning
confidence: 99%
“…Moreover, an average minimum loss of 0.03 dB/cm was measured at 0.265 THz. Another 3D‐printed waveguide based on antiresonance effect was FDM‐printed out with low‐cost polycarbonate material, showing an improved energy efficiency when compared with that in free space …”
Section: D‐printed Waveguides and Fibersmentioning
confidence: 99%
“…This fiber, built with ABS, was able to guide with low-loss in the transmission windows between 0.10-0.21, 0.30-0.40, and 0.5-1.1 THz [67]. The fiber whose cross section is shown in Figure 1e was fabricated using PC via the FDM technique and guides terahertz radiation with losses around 10's dB/cm over a 150 to 600 GHz range [68]. The last group of fibers ( Figure 1f-h) is based on the Bragg reflection.…”
Section: Terahertz 3d Printed Waveguidesmentioning
confidence: 99%
“…The authors reached single mode propagation and Figure 1. (a) Porous polymer terahertz fiber design [38] (b) First all-dielectric 3D printed terahertz waveguide [64]; (c) 3D printed terahertz waveguide based on Kagome photonic crystal structure [65]; (d) Hollow-core with negative curvature [67]; (e) 3D-printed polymer antiresonant waveguide [68]; (f) 3D printed terahertz Bragg [69]; (g) Bragg waveguide with defect layers [70]; (h) Single-mode Bragg waveguide [71].…”
Section: Terahertz 3d Printed Waveguidesmentioning
confidence: 99%
“…These fibers had a total diameter of ~ 12 mm with estimated losses of ~ 0.1 cm −1 within the THz transmission window. Another category of hollow-core THz fibers is based on antiresonance 23,24 : light can be confined to the central air-core because of the antiresonant reflection of the guided wave at the membranes surrounding the core which behaves effectively as a Fabry-Perot cavity. A simple stacking technique was used to fabricate negative curvature antiresonant fibers 25,26 .…”
mentioning
confidence: 99%