4.7 Article

Analytical Formulas for Micro-Bending and Surface Scattering Loss Estimation in Tube Lattice Fibers

Related references

Note: Only part of the references are listed.
Article Chemistry, Analytical

Hollow-Core Fiber-Based Biosensor: A Platform for Lab-in-Fiber Optical Biosensors for DNA Detection

Foroogh Khozeymeh et al.

Summary: This paper studies a novel platform for lab-in-fiber-based biosensors. Hollow-core tube lattice fibers (HC-TLFs) are proposed as a label-free biosensor for the detection of DNA molecules. By performing internal chemical functionalization of the fiber and comparing the transmission spectra before and after the flowing, the presence of a specific DNA sequence in the solution can be identified.

SENSORS (2022)

Article Engineering, Electrical & Electronic

Hollow-core photonic crystal fibers for Power-over-Fiber systems

Jonas H. Osorio et al.

Summary: Research achievements in hollow-core photonic crystal fibers technology have identified these fibers as excellent platforms for delivering high-power laser beams with minimal interaction with the fiber microstructure. Here, the utilization of a tubular-lattice hollow-core fiber as a promising platform for Power-over-Fiber systems is demonstrated, which expands the range of hollow-core fiber-based beam delivery applications. The experiments reported here identify hollow-core fibers as eligible candidates for next-generation Power-over-Fiber devices.

OPTICAL FIBER TECHNOLOGY (2022)

Article Optics

Low-loss single-mode hybrid-lattice hollow-core photonic-crystal fibre

Foued Amrani et al.

Summary: The design of hollow-core photonic crystal fibres with hybrid-lattice cladding significantly reduces confinement loss and preserves single-mode operation, showing potential for next-generation optical fibres.

LIGHT-SCIENCE & APPLICATIONS (2021)

Article Optics

High-fidelity, low-latency polarization quantum state transmissions over a hollow-core conjoined-tube fiber at around 800 nm

Xinyu Chen et al.

Summary: Utilizing the polarization degree of freedom, this study demonstrated high-fidelity single-photon transmission and distribution of entangled photons over a 36.4 m hollow-core conjoined-tube fiber. This achievement paves the way for extensive uses of HCF links in versatile photonics-based quantum information processing.

PHOTONICS RESEARCH (2021)

Article Materials Science, Multidisciplinary

Analytical Formulas for Dispersion and Effective Area in Hollow-Core Tube Lattice Fibers

Lorenzo Rosa et al.

Summary: In this work, analytical formulas were proposed for estimating the dispersion properties and effective area of the fundamental mode of hollow-core inhibited coupling fibers with a microstructured cladding. The formulas were based on a model that has been successfully applied to confinement loss estimation, showing good accuracy without requiring parameter tuning. The proposed formulas also provide a good estimation of parameters for other types of Hollow-core inhibited coupling fibers.

FIBERS (2021)

Article Engineering, Electrical & Electronic

Recent Progress in Low-Loss Hollow-Core Anti-Resonant Fibers and Their Applications

Wei Ding et al.

IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS (2020)

Article Optics

Mid IR hollow core fiber gas laser emitting at 4.6 μm

F. B. A. Aghbolagh et al.

OPTICS LETTERS (2019)

Review Materials Science, Multidisciplinary

Hollow-Core Fiber Technology: The Rising of Gas Photonics

Benoit Debord et al.

FIBERS (2019)

Article Optics

Hollow-core fibers for high power pulse delivery

Mattia Michieletto et al.

OPTICS EXPRESS (2016)

Article Optics

Nested antiresonant nodeless hollow core fiber

Francesco Poletti

OPTICS EXPRESS (2014)

Article Optics

Waveguiding mechanism in tube lattice fibers

Luca Vincetti et al.

OPTICS EXPRESS (2010)

Article Optics

Ultimate low loss of hollow-core photonic crystal fibres

PJ Roberts et al.

OPTICS EXPRESS (2005)

Article Optics

Effective area of photonic crystal fibers

NA Mortensen

OPTICS EXPRESS (2002)