1. Field of the Invention
The present invention relates generally to the field of fiber optical communications, and in particular to optical fiber amplifiers and amplification techniques.
2. Background Art
Few-mode rare-earth-doped fiber amplifiers provide gain to the fundamental (LP01) mode and a relatively small number of higher-order LPm,n modes, and are critical components in space-division-multiplexed optical transmission systems based on few-mode transmission fibers. Such systems have the potential of greatly enhancing transmission capacity and thus have recently attracted a great deal of interest.
A prior-art fiber amplifier for use in single-mode transmission typically has a step refractive-index profile, comprising a core for guiding a fundamental mode (LP01) optical signal. A prior-art amplifier fiber further includes a rare-earth-doped region having a radius that is the same or slightly smaller than the core radius. A suitable pump source is used to provide pump radiation to the rare-earth-doped region.
Transmission of light signals at higher-order modes requires a core that is larger than that of a single-mode fiber amplifier. However, an increase in core size results in significant gain differences among the supported transmission modes. Gain equalization is thus a significant issue to be addressed in the development of few-mode optical fiber amplifiers. In addressing this issue, a few-mode optical fiber amplifier design should also take into consideration the overall complexity and cost of the design.
A first practice of the invention provides a few-mode rare-earth-doped amplifier fiber with equalized gain. The fiber has a raised-index core surrounded by a lower-index cladding. The core has a radius a1 and an index difference Δn1 relative to the surrounding cladding and is configured to support, at a selected signal wavelength, a set of lower-order fiber modes having an optical field with a diameter greater than 2·a1. The fiber further includes an active region, doped with a rare-earth dopant, comprising an inner portion that is coextensive with the core and an outer portion that surrounds the inner portion and extends into the cladding. The active region has an outer radius a2 greater than a1 that encompasses the optical field of the set of lower-order fiber modes at the selected signal wavelength.
In a further practice of the invention, the few-mode rare-earth-doped amplifier fiber is provided with an inner few-mode waveguide for transmitting signals in a number of selected modes, and a multimoded outer waveguide for guiding pump light from a suitable pump source.
Aspects of the recent invention are directed to a few-mode fiber amplifier and amplification techniques that are inherently capable of providing equal gain to all the modes supported by the core, and that allow operation over a wide range of pump powers.
One practice of the invention is directed to a few-mode, rare-earth-doped fiber having (a) a core that supports, at a selected signal wavelength (or a selected range of signal wavelengths), the fundamental LP01 mode and a selected set of higher-order LPm,n modes; and (b) a rare-earth-doped active region that is large enough to encompass the optical field of the supported modes.
As discussed below, in a few-mode amplifier fiber, unequal portions of the respective optical fields of the supported modes extend beyond core radius. In a few-mode amplifier fiber in which the active region is the same size as the core, the modal gains are not equal because of the inequality of the overlap integrals Γ between the active region and the respective intensity profiles of the supported modes.
According to an aspect of the invention, modal gains are equalized in a few-mode rare-earth-doped amplifier fiber by chemically doping the fiber to provide a rare-earth-doped region that is large enough to encompass the optical fields of all of the selected higher-order modes, while at the same time maintaining a core radius that supports transmission in the selected modes. As discussed below, the rare-earth-doped active region encompassing the entire core and an outer portion that surrounds, and extends beyond, the core. Suitable rare-earth dopants for the active region include, for example: erbium (Er), ytterbium (Yb), neodymium (Nd), thulium (Tm), and the like, by themselves, in combination with each other, or in combination with other suitable dopants.
In a further practice of the invention, the above-described few-mode, rare-earth-doped fiber is configured to include a pump light waveguide having a radial extent that encompasses at least the rare-earth-doped active region. According to an aspect of the invention, the pump light is multimoded, and is configured to provide uniform population inversion across the active region so as to equalize gain for different signal transmission modes.
There is now discussed the theoretical foundation of the invention, followed by a description of a number of exemplary practices.
Theoretical Foundation
The small-signal gain, g, per unit length of a gain medium is the gain obtained for an input signal that is small enough to prevent gain saturation. For a conventional erbium-doped fiber having an active region that is uniformly doped with erbium, wherein the active region has a radius R that is less than the fiber radius, the small-signal gain, g, can be expressed by the following Equation (1):
g=(N2σse−N1σsa)Γ Eq. (1)
where:
The overlap factor Γ (also known as the “overlap integral” or “overlap integral factor”), accounts for the proportion of the optical signal power propagating through the rare-earth-doped region, and can be expressed by the following Equation (2):
where:
In a rare-earth-doped fiber having a core that supports a selected few higher-order LPm,n modes, the overlap integral Γ is different for the different modes. This difference in Γ in turn results in modal gain differences that vary as a function of the core radius and the radius of the active region.
Equations (1) and (2) are now discussed with respect to an exemplary few-mode rare-earth-doped fiber.
As shown in
For the purposes of the present discussion, the active region radius a2 is treated as a variable, and the core radius a1 and the optical field radius w0 are constants for a given fiber design at the wavelength of interest. From Equations (1) and (2), discussed above, it will be seen that the respective overlap integrals for each of the supported modes varies as a function of the radius a2 of rare-earth doped region 12.
Graph 21 shows that when the doped region and the core region are of the same size (a2/a1=1), the higher-order modes (i.e., the LP11, LP21, and LP02 modes) exhibit a much smaller overlap integral in comparison with the fundamental mode LP01. Graph 21 further shows that as the radius of the rare-earth-doped region a2 increases relative to the core radius a1, the difference between the respective overlap integrals decreases.
Pump power is another factor to be considered.
As illustrated in graph 22, the gain in the LP02-moded signal can be lower than the gain for the LP01 mode by as much as 5 dB when the erbium dopant is located within the high-index core region, i.e., a2=a1.
Gain-Equalized Few-Mode Fiber Amplifier
An aspect of the invention is directed to a few-mode rare-earth-doped amplifier fiber that, in conjunction with a suitable pump source, equalizes gain for all of the modes supported by the core.
(1) A raised-index core 31, corresponding to central spike 41 in index profile 40, having a radius a1 and a refractive index n1.
(2) A rare-earth-doped active region 32 extending between r=0 and r=a2 (where a2>a1), corresponding to center step 46 in dopant profile 45, and having a rare-earth-dopant concentration of N.
(3) A raised-index inner cladding 33, corresponding to pedestal 43 in index profile 40, having a radius a3 and a refractive index n2.
(4) An undoped outer cladding 34, corresponding to the flat outer portion 44 in index profile 40, having a radius a4 and a refractive index n0.
As discussed below, the fiber regions are created by adding suitable chemical dopants to a substrate fabricated from silica or other suitable material.
For the purposes of the present discussion, the respective refractive index of each of the fiber regions is discussed with respect to its nominal refractive index: core 31 has an index difference Δn1, relative to the refractive index n2 of inner cladding 33 (i.e., Δn1=n1−n2); inner cladding 33 has an index difference Δn2, relative to the index n0 of outer cladding 34 (i.e., Δn2=n2−n0); and outer cladding 34 an index difference Δn0=n0−n0=0. (The index difference of the core 31 relative to the outer cladding 34 is equal to the core refractive index n1 minus the refractive index of the outer cladding n0 or, alternatively, the sum of Δn1 and Δn2. In other words, n1−n2=Δn+Δn2.)
Fiber 30 is configured to provide an inner waveguide and an outer waveguide. The inner waveguide is formed by the boundary between the core 31 and inner cladding 33, and is configured to support the transmission of signal light at a selected wavelength in the fundamental mode LP01 and the higher-order LP11, LP21, and LP02 modes. The outer waveguide is formed by the boundary between the inner cladding 33 and the outer cladding 34, and is configured to guide a multimode pump light that is used to amplify signal light transmitted by the inner waveguide.
As shown in
As further shown in
As discussed below, one way to achieve the above-described configuration is to dope the core 31, which is co-extensive with the rare-earth doped inner region 46a, with an index-raising rare-earth dopant, and to co-dope the outer portion of the rare-earth-doped region 46b with the same rare-earth dopant and an index-lowering dopant, such as fluorine (F). Thus, fiber 30 has an active region 32 that is large enough to encompass the optical field of the supported modes, while maintaining the core radius 31 that is necessary to support the selected transmission modes.
Pump Light
Fiber 30 is configured to provide a highly multimoded outer waveguide for guiding a multimode pump light.
When the intensity of pump field launched into the outer waveguide is sufficiently high, a uniform population inversion can be established entirely over the rare-earth-doped region. For small-signals propagating with LPm,n mode, the gain per unit length that can be expressed as:
where, pm,n (r, φ) is the optical intensity distribution of the LPm,n mode of the signal, such that:
Pm,n is the power of the LPm,n mode.
For a uniform population inversion maintained across the entirety of rare earth doped region, the bracketed term in Eq. (3) becomes independent of the radius, such that the equation can be expressed as:
Equation (4), therefore, indicates that small-signal gain becomes independent of mode type LPm,n.
Exemplary Practice
As set forth in table 50, the exemplary fiber has a core radius of 8 μm (a1=8 μm), a nominal refractive index difference of 0.0081 (NA=0.154) relative to the inner cladding, and a nominal refractive index difference of 0.0181 (NA=0.230) relative to the outer cladding. For a signal in the 1550 nm region, the V-number (2πa·NA/λ) is equal to 5.0, which supports four modes: the fundamental LP01 mode and the higher-order LP11, LP21, and LP02 modes. The rare-earth-doped region has a radius of 16 μm (i.e., a2=16 μm), and encompasses the entire core. The region guiding the pump has a nominal index difference of 0.01 (NA=0.171) and has a radius that is 16 μm or more (i.e., a2≦a3).
In a special case, the fiber is configured to have a pump region with the same size as the doped region, i.e., a2=a3. For a 980 nm pump, the V-number is 17.5 and the number of modes supported by the pump-guiding region is 153. Pump radiation with such a large number of modes can make the field distribution essentially uniform. For a pump-guiding region having a larger diameter, the mode number will vary in proportion to the square of the radius a3.
Numerical Simulation
Numerical simulation techniques can be used to model the performance of fiber 30 using the values setting forth in table 50. The gain and noise figure are calculated numerically from the radial and azimuthal distribution of the upper and lower state population, N2 and N1, which are shown in the following:
The fiber is assumed to have uniform erbium doping with a concentration of (6.89×1024)/m3.
The gain for LP01 and LP02 signal modes have also been calculated for an erbium-doped region with different radii, varying within the range of 8 μm to 16 μm, under the assumption of uniform pump intensity distribution. When the core rare earth doped region has a radius of 8 μm, i.e., the same as the core, the differential in gain is around 3 dB, and decreases with an increase in the size of the rare-earth-doped region. The differential gain can be kept below 1 dB when radius of rare-earth-doped region is increased to 10 μm 16 μm, i.e., 25% to 100% larger than the core size. Gain of the two modes become equal when the active region radius a2 is approximately 11.5 μm.
Moreover, it should be recognized while a uniform doping distribution is desirable, some variations from nominal uniform distribution may exist. These variations may arise, for example, as a result of fabrication difficulties and may also depend upon the particular processes by which the fiber preforms are fabricated.
In the above analyses, the erbium dopant concentration is assumed to be uniform within the erbium-doped region, a2. It is possible to reduce the width of rare-earth doped region by matching the rare-earth dopant distribution with the sum of optical power distributions pm,n in different lower-order modes. For example, one can tailor the rare-earth dopant distribution proportional to the following:
Matching the doping profile with power distribution can minimize population inversion in regions where is no signal, and thereby suppress spontaneous emission noise.
Star-Shaped Outer Waveguide
As in fiber 30, discussed above, the boundary between the inner cladding 103 and the outer cladding 104 provides an outer waveguide for guiding pump radiation. In fiber 100, this boundary is corrugated or star-shaped. The depicted configuration facilitates mode-mixing and in maintaining a uniform pump intensity distribution.
Multicore Fiber
According to a further aspect of the invention, the above-described techniques are applied in the context of a multicore fiber.
MCF 110 comprises a central few-mode core 111a and six outer few-mode cores 111b arranged in a regular hexagonal array around the central core 111a. Each individual core 111a, 111b is provided with a respective rare-earth-doped region 112 having a radius that is sufficiently large to encompass the optical field of all of the modes supported by each core. In the depicted example, all seven cores 111a, 111b and their respective active regions 112 are enclosed by a common star-shaped inner cladding 113. The boundary between the inner cladding and the outer cladding 114 provides a pump light waveguide that is shared by all seven cores 111a, 111b.
Fabrication Techniques
In an exemplary practice, a few-mode rare-earth-doped fiber in accordance the invention is fabricated using a modified chemical vapor deposition (MCVD) technique. An aerosol or other vapor phase deposition technique is used to deposit layers of chemical soot onto the interior wall of a silica tube that is subsequently sintered and collapsed to form a cylindrical preform. The preform is then loaded into a draw tower and drawn into fiber.
In one practice of the invention, the core region has the following respective index difference values Δn for the core and inner cladding relative to the outer cladding:
(These values are also set forth in table 50, shown in
General Technique
121: Configure an optical fiber to have a raised-index core surrounded by a lower index cladding, wherein the raised-index core has a radius a1 and an index difference Δn1 relative to the cladding that are configured to provide a waveguide to support, at a selected signal wavelength, a set of lower-order fiber modes having an optical field with a diameter greater than 2·a1.
122: Configure the fiber to have a rare-earth doped active region with an outer radius a2, comprising an inner portion that is coextensive with the core and an outer portion that surrounds the inner portion and extends into the cladding, wherein the outer portion of the active region has a refractive index equal to that of the cladding surrounding the core.
123: Configure the outer portion of the active region to have an outer radius a2, greater than a1, that encompasses the optical field of the set of lower-order fiber modes at the selected signal wavelength.
As discussed above, according to an aspect of the invention, the fiber may be configured to have a cladding that includes an inner cladding surrounding the core and an outer cladding surrounding the inner cladding, wherein the inner cladding and the outer cladding are configured to have an index difference Δn2 therebetween so as to provide a pump waveguide that supports a multimode pump light, and wherein the inner cladding has an outer radius a3, greater than or equal to the radius of the active region a2.
According to further aspects of the invention discussed above, the fiber may be configured to have a star-shaped outer waveguide, or to have a plurality of few-moded signal cores.
While the foregoing description includes details that will enable those skilled in the art to practice the invention, it should be recognized that the description is illustrative in nature and that many modifications and variations thereof will be apparent to those skilled in the art having the benefit of these teachings. It is accordingly intended that the invention herein be defined solely by the claims appended hereto and that the claims be interpreted as broadly as permitted by the prior art.
The present application claims the priority benefit of U.S. Provisional Patent Application No. 61/879,329, filed on Sep. 18, 2013, which is owned by the assignee of the present application.
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