Claims
- 1. A method of fabricating a single-mode fiber mainly composed of silica glass comprising, at least, a first core portion, a second core portion formed around an outer periphery of said first core portion, a third core portion formed around an outer periphery of said second core portion, and a cladding portion formed around an outer periphery of said third core portion, said method comprising:a first step of forming a first soot body to be said first and second core portions after vitrification around an outer periphery of a cylindrical glass rod, said first core portion having a mean relative refractive index difference with respect to said cladding portion of a first value Δn1, said second core portion having a mean relative refractive index difference with respect to said cladding portion of a second value Δn2 greater than said first value Δn1; a second step of forming a second soot body to be said third core portion after vitrification around an outer periphery of said first soot body, said third core portion having a mean relative refractive index difference with respect to said cladding portion of a third value Δn3 greater than said second value Δn2; a third step of forming a third soot body to be said cladding portion having a predetermined refractive index after vitrification around an outer periphery of said second soot body; a fourth step of pulling out said glass rod and flowing a halogen gas flow through a hollow part of a tubular soot body composed of said first, second and third soot bodies, while heating said tubular soot body, thereby diffusing germanium contained in an inner surface side of said first soot body so as to reduce the germanium concentration of the inner surface side of said first soot body as compared with that of the second soot body side of said first soot body; a fifth step of heating and collapsing said tubular soot body composed of said first soot body having different germanium concentrations respectively on the inner surface side and second soot body side thereof, second soot body and third soot body thereby obtaining a transparent optical fiber preform; and a sixth step of drawing one end of said optical fiber preform obtained at said fifth step, while heating said one end, so as to yield a single-mode optical fiber having at least said first core portion of an outer diameter a, said second core portion of an outer diameter b and said third core portion of an outer diameter c, wherein said second step includes: a first sub-process of forming an inner soot body to be an inner core of said third core portion after vitrification around the outer periphery of said first soot body, said inner core being positioned around the outer periphery of said second core portion and having a mean relative refractive index difference with respect to said cladding portion of a fourth value Δn3a smaller than the second value Δn2; and a later process of forming an outer soot body to be an outer core of said third core portion after vitrification around an outer periphery of said inner soot body, said outer core being positioned around an outer periphery of said inner core and having a mean relative refractive index difference with respect to said cladding portion of a fifth value Δn3b greater than the fourth value Δn3a and smaller than the second value Δn2, and wherein, in said sixth step, said optical fiber perform obtained at said fifth step is drawn so as to yield a single-mode optical fiber in which said inner and outer cores of said third core portion have outer diameters of ca and c, respectively, and said inner and outer cores satisfy the following relationship: 0.1≦(ca−b)·(Δn3b−Δn3a)/(c·Δn3b)≦0.8 therebetween.
Priority Claims (1)
Number |
Date |
Country |
Kind |
7-257843 |
Oct 1995 |
JP |
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Parent Case Info
This is a division of application Ser. No. 09/054,494, filed Apr. 3, 1998, now U.S. Pat. No. 6,062,046 which is a division of application Ser. No. 08/725,903, filed Oct. 4, 1996, U.S. Pat. No. 5,822,488.
US Referenced Citations (21)
Foreign Referenced Citations (3)
Number |
Date |
Country |
159046 |
Oct 1985 |
EP |
53138354 |
Dec 1978 |
JP |
5546980 |
Nov 1980 |
JP |
Non-Patent Literature Citations (4)
Entry |
Bjarklev, “Relation Between Macrobending Losses and Cutoff Wavelength in Dispersion-Shifted Segmented-Core Fibres”, Electronics Letters, May 22, 1986, vol. 22, No. 11, pp. 574-575. |
Croft et al, “Low-Loss Dispersion-Shifted Single-mode Fiber Manufactured by the OVD Process”, Journal Of Lightwave Technology, vol. LT-3, No. 5, Oct. 1985, pp. 931-934. |
Liu et al, “Large Effective Area Dispersion-Shifted Fibers With Dual-Ring Index Profiles”, OFC '96 Technical Digest, Wednesday Afternoon, pp. 165-166. |
Nouchi et al, “New Dispersion Shifted Fiber With Effective Area Larger Than 90/μm2”, 22nd European Conference On Optical Communication, pp. 1.49-1.52. |