IP Library Granted Patent US 11,048,040
Granted Patent B2
US 11,048,040 · App. 16/849,449 · Granted Jun 29, 2021

Optical fiber

Inventors: Hirotaka Sakuma (Osaka, JP); Yoshiaki Tamura (Osaka, JP); Keisei Morita (Osaka, JP); Yuki Kawaguchi (Osaka, JP)
Assignee: SUMITOMO ELECTRIC INDUSTRIES, LTD.
G02B6/036C03B37/014C03B37/01446C03C3/06C03C13/04C03C13/045C03C13/046G02B6/02G02B6/02009G02B6/0281G02B6/02266G02B6/03694
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,048,040
App. No.
16/849,449
Granted
Jun 29, 2021
Kind
B2
Abstract

The optical fiber offered is capable of not only restraining the attenuation due to glass defects, but also reducing the increase of manufacturing cost. The optical fiber is made of silica glass and includes a core and a cladding. The cladding encloses the core and has a refractive index smaller than that of the core. When the core is divided into inner core and outer core at half of the radius of the core, the average chlorine concentration of the inner core is larger than that of the outer core. The core includes any of the alkali metal group.

Claims (47)

1. An optical fiber made of silica glass and comprising:

a core containing an alkali metal or an alkaline-earth-metal element and having a radius of r 0 ; and

a cladding enclosing the core and having a refractive index smaller than that of the core, wherein the core includes an inner core having a radius of r 0 /2 and an outer core having an inside radius of r 0 /2 and an outside radius of r 0 , and the average chlorine concentration of the inner core is larger than that of the outer core,

wherein the rate of change of chlorine concentration in the radial direction of the core is not more than 10 ppm by mass per 1 μm.

2. An optical fiber as set forth in claim 1 ,

wherein the average chlorine concentration of the inner core is from 100 ppm by mass to 2000 ppm by mass.

3. An optical fiber as set forth in claim 1 ,

wherein the average chlorine concentration of the outer core is from 100 ppm by mass to 2000 ppm by mass.

4. An optical fiber as set forth in claim 1 ,

wherein the ratio A/B of the average chlorine concentration A of the inner core to the average chlorine concentration B of the outer core is larger than 2.

5. An optical fiber as set forth in claim 1 ,

wherein the core contains fluorine.

6. An optical fiber as set forth in claim 1 ,

wherein the core contains one or more elements selected from a group consisting of sodium, potassium, rubidium, cesium, and calcium.

7. An optical fiber as set forth in claim 1 ,

wherein the number of propagation mode at the wavelength of 1550 nm is one.

8. An optical fiber as set forth in claim 1 ,

wherein the number of propagation mode at the wavelength of 1550 nm is two or more.

9. An optical fiber made of silica glass and comprising:

a core containing an alkali metal or an alkaline-earth-metal element and having a radius of r 0 ; and

a cladding enclosing the core and having a refractive index smaller than that of the core, wherein the core includes an inner core having a radius of r 0 /2 and an outer core having an inside radius of r 0 /2 and an outside radius of r 0 , and the average chlorine concentration of the inner core is larger than that of the outer core,

wherein the average chlorine concentration of the inner core is from 100 ppm by mass to 2000 ppm by mass, and

wherein the ratio A/B of the average chlorine concentration A of the inner core to the average chlorine concentration B of the outer core is larger than 2.

10. An optical fiber as set forth in claim 9 ,

wherein the average chlorine concentration of the outer core is from 100 ppm by mass to 2000 ppm by mass.

11. An optical fiber as set forth in claim 9 ,

wherein the core contains fluorine.

12. An optical fiber as set forth in claim 9 ,

wherein the core contains one or more elements selected from a group consisting of sodium, potassium, rubidium, cesium, and calcium.

13. An optical fiber as set forth in claim 9 ,

wherein the number of propagation mode at the wavelength of 1550 nm is one.

14. An optical fiber as set forth in claim 9 ,

wherein the number of propagation mode at the wavelength of 1550 nm is two or more.

15. An optical fiber made of silica glass and comprising:

a core containing an alkali metal or an alkaline-earth-metal element and having a radius of r 0 ; and

a cladding enclosing the core and having a refractive index smaller than that of the core,

wherein the core includes an inner core having a radius of r 0 /2 and an outer core having an inside radius of r 0 /2 and an outside radius of r 0 , and the average chlorine concentration of the inner core is larger than that of the outer core,

wherein the average chlorine concentration of the outer core is from 100 ppm by mass to 2000 ppm by mass, and

wherein the ratio A/B of the average chlorine concentration A of the inner core to the average chlorine concentration B of the outer core is larger than 2.

16. An optical fiber as set forth in claim 15 ,

wherein the core contains fluorine.

17. An optical fiber as set forth in claim 15 ,

wherein the core contains one or more elements selected from a group consisting of sodium, potassium, rubidium, cesium, and calcium.

18. An optical fiber as set forth in claim 15 ,

wherein the number of propagation mode at the wavelength of 1550 nm is one.

19. An optical fiber as set forth in claim 15 ,

wherein the number of propagation mode at the wavelength of 1550 nm is two or more.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2020
From: SAKUMA, HIROTAKA; TAMURA, YOSHIAKI; MORITA, KEISEI; KAWAGUCHI, YUKI
To: SUMITOMO ELECTRIC INDUSTRIES, LTD.
Reel/Frame 052409/0546 →
Priority Claims (1)
JP JP2018-081479 · Apr 20, 2018 · national
Continuity (2)
Continuation 16386534 · Apr 17, 2019
Related Publication 20200249393A1 · Aug 6, 2020