IP Library › Granted Patent US 12,591,090
Granted Patent B2
US 12,591,090 · App. 18/473,689 · Granted Mar 31, 2026

Hollow-core photonic crystal fiber based edible oil sensor

Inventors: Khurram Karim Qureshi (Dhahran, SA); Eid M. Al-Mutairi (Dhahran, SA); Sheikh Sharif Iqbal (Dhahran, SA); Md. Ahasan Habib (Rajshahi, BD)
Assignee: KING FAHD UNIVERSITY OF PETROLEUM AND MINERALS
G02B6/02328G01N21/45G02B6/02352G01N21/0303G01N21/3581G01N2021/458
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Quick Facts
Patent No.
US 12,591,090
App. No.
18/473,689
Granted
Mar 31, 2026
Kind
B2
Abstract

A hollow-core photonic crystal fiber for sensing an oil includes a hexagonal core wall, a cladding region, and a circular layer. The hexagonal core wall defines a hollow space, where a core diameter is equal to a distance between two opposing inner vertices of the hexagonal core wall. The cladding region includes a circular cladding segment and up to four cladding arms, where the up to four cladding arms extend from the circular cladding segment to four outer vertices of the hexagonal core wall. An inner wall of the circular cladding segment, the up to four cladding arms and an outer surface of the hexagonal core wall define up to four wedge shaped air gaps. The cladding region has an inner radius with a range from 2.0 up to 2.4 times the core diameter and an outer radius with a range from 2.1 up to 2.6 times the core diameter.

Claims (27)

1 . A hollow-core photonic crystal fiber for sensing an oil, comprising

a hexagonal core wall defining a hollow space wherein a core diameter is equal to a distance between two opposing inner vertices of the hexagonal core wall;

a cladding region comprising a circular cladding segment and up to four cladding arms, wherein the up to four cladding arms extend from the circular cladding segment to four outer vertices of the hexagonal core wall;

wherein an inner wall of the circular cladding segment, the up to four cladding arms and an outer surface of the hexagonal core wall define four wedge shaped air gaps;

wherein the cladding region has an inner radius with a range from 2.0 up to 2.4 times the core diameter and an outer radius with a range from 2.1 up to 2.6 times the core diameter; and

a circular layer circumferentially surrounding the cladding region.

2 . The hollow-core photonic crystal fiber of claim 1 , wherein a width of the hexagonal core wall has a range from 0.12 up to 0.15 times the core diameter.

3 . The hollow-core photonic crystal fiber of claim 1 , wherein two air gaps of the up to four wedge shaped air gaps are pentagonal wedge-shaped air gaps having one arced surface.

4 . The hollow-core photonic crystal fiber of claim 1 , wherein two air gaps of the up to four wedge shaped air gaps are quadrilateral wedge-shaped air gaps having one arced surface.

5 . The hollow-core photonic crystal fiber of claim 1 , wherein the hollow space of the hexagonal core wall is filled with an oil sample.

6 . The hollow-core photonic crystal fiber of claim 1 , wherein the hollow-core photonic crystal fiber is configured to utilize a light source with a wavelength in a range from 0.1 up to 10 terahertz.

7 . The hollow-core photonic crystal fiber of claim 1 , wherein the hexagonal core wall is configured to carry an optical light for sensing oil.

8 . The hollow-core photonic crystal fiber of claim 1 , wherein the circular layer is configured to absorb light at the outer surface of the cladding region.

9 . The hollow-core photonic crystal fiber of claim 1 , wherein a material utilized for the cladding region is a cycle olefin polymer.

10 . The hollow-core photonic crystal fiber of claim 1 , wherein a material utilized for the circular layer is at least one of an anisotropic material and a dispersive material.

11 . The hollow-core photonic crystal fiber of claim 1 , wherein the circular layer is directly adjacent to the circular cladding segment of the cladding region.

12 . The hollow-core photonic crystal fiber of claim 1 , configured as a fiber sensor.

13 . The hollow-core photonic crystal fiber of claim 12 , configured to analyze a refractive index of an oil sample.

14 . A method of sensing an oil using the hollow-core photonic crystal fiber of claim 1 configured as a fiber sensor comprising:

placing an oil sample in the hollow space of the hollow-core photonic crystal fiber;

propagating a light beam from a light source through the hexagonal core wall of the hollow-core photonic crystal fiber, wherein the light source is coupled to an input end of the hollow-core photonic crystal fiber;

receiving an output light beam from the hollow-core photonic crystal fiber at an optical detector, wherein the optical detector is coupled to an output end the hollow-core photonic crystal fiber;

recording a power and an effective refractive index of the received output light beam using a spectrum analyzer; and

processing the power and the effective refractive index to identify a type of the oil sample.

15 . The method of sensing oil of claim 14 , further comprising

absorbing light that seeps from the hexagonal core wall to an outer surface of the cladding region using the circular layer of the hollow-core photonic crystal fiber.

16 . The method of sensing oil of claim 14 , wherein the optical light beam from the light source has a wavelength in a range from 0.1 up to 10 terahertz.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 25, 2023
From: QURESHI, KHURRAM KARIM; AL-MUTAIRI, EID M.; IQBAL, SHEIKH SHARIF; HABIB, MD. AHASAN
To: KING FAHD UNIVERSITY OF PETROLEUM AND MINERALS
Reel/Frame 065011/0037 →
Continuity (1)
Related Publication 20250102730A1 · Mar 27, 2025
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