Background of the Invention
1. Field of the Invention
The present invention relates to electronic communication technology and more particularly to fiber optic systems with modulation of the light carriers with microwave frequencies for single-mode fibers.
2. Description of Related Art
Fiber-optic networks demand transmission methods that offer flexibility and the efficient exploitation of bandwidth of existing network assets, such as existing conventional single-mode fiber. Wavelength-division multiplexing (WDM) has been successfully used to transmit multiple optical carriers on a single fiber. Subcarrier multiplexing (SCM) is one of the few techniques that can accommodate the multi-format array of transmission protocols and modulation formats expected to be carried on networks. SCM can be combined with WDM to greatly increase the transmission capacity of a single fiber.
One challenge to the implementation of SCM has been the limitation on transmission distance. Normally, operation with laser light carrier wavelengths of 1550 nm permits the use of erbium-doped fiber amplifiers (EDFAs) to overcome transmission loss, but the dispersion-limited maximum transmission distance of an SCM system is dependent on its total modulation bandwidth.
Another traditional drawback to SCM has been the complexity of demodulation schemes. Hill and Olshansky demonstrated SCM using coherent detection, but this technique is too impractical to use in a telecommunications environment, and downconversion of microwave subcarriers requires phase matching to the transmitter. (P. Hill, et al., "Bandwidth Efficient Transmission of 4 Gb/s on Two Microwave QPSK Subcarriers Over a 48 km Optical Link", IEEE Photonics Technology Letters, vol. 2, no. 7, July 1990, pp. 510-512; and P. Hill, et al., "8 Gb/s Subcarrier Multiplexed Coherent Lightwave System", IEEE Photonics Technology Letters, vol. 3, no. 8, August 1991, pp. 764-766.)
Although numerous experimental high-speed SCM systems have been demonstrated, the technology has not been embraced by the telecommunications industry. Ordinary single-mode fibers have been installed all over the world, and conventional long-haul fiber systems have thus far relied on dispersion-shifted fiber in answer to the dispersion problem that accompanies carrier wavelengths of 1550 nm. Typical SCM systems have receivers that use coherent detection. Greenhalgh, et al., demonstrated an optical pre-filtering technique for subcarrier demultiplexing in a low bandwidth SCM link but did not explain how that could be used to reduce the effects of dispersion. (P. A. Greenhalgh, et al., "Optical prefiltering in subcarrier systems", SPIE, vol. 1790, Analog Photonics (1992), pp. 76-84.)
Summary of the Invention
An object of the present invention is to provide an optical fiber communication system.
A further object of the present invention is to provide a subcarrier multiplexing system for long-haul communication.
Another object of the present invention is to provide a subcarrier multiplexing system for simplified receiver construction.
Briefly, a subcarrier multiplexing system embodiment of the present invention provides for the simultaneous reduction of the concomitant problems of receiver complexity and dispersion penalty and without requiring the use of an expensive, high-bandwidth optical detector. The system provides both a dispersion reduction and a direct detection to the receiver, with microwave mixers and lithium niobate external modulator that produce sidebands that are only separated by a few gigahertz from a principal laser optical carrier. Digital data streams are independently impressed upon these sidebands for transmission over an ordinary single-mode fiber. Independent high-speed data streams are upconverted to microwave frequencies. These subcarriers are then combined with a microwave power combiner and amplified with a microwave amplifier. A solid-state 1550-nm laser carrier is externally modulated by the microwave subcarriers. An erbium-doped fiber amplifier (EDFA) is used just prior to long-distance transmission over ordinary single-mode fiber. The transmitted optical signal may then traverse multiple EDFAs to compensate for long-haul optical fiber losses prior to detection. At a receiving end, the optical signal is split into multiple paths. The subcarrier channels are optically pre-selected using a narrowband optical filter, such as a fiber Fabry-Perot (FFP) filter. An optical detector converts the selected optical signal into a baseband electrical data stream.
An advantage of the present invention is that a subcarrier multiplexing system is provided that is capable of transmitting multiple 2.5 Gbit/s (OC-48) data streams over an estimated 650 km of ordinary single-mode fiber without significant dispersion, and it is estimated that 622 Mbit/s (OC-12) data streams could be transmitted over 10,000 km of fiber.
Another advantage of the present invention is that a subcarrier multiplexing system is provided that does not require the use of an expensive, high-bandwidth optical detector.
A further advantage of the present invention is that a subcarrier multiplexing system is provided that reduces dispersion and allows direct detection at the receiver. Microwave mixers and lithium niobate external modulator are used that produce sidebands that are only separated by a few gigahertz from the principal laser optical carrier.
Brief Description of the Drawings
FIG. 1 is a block diagram of the subcarrier multiplexing system embodiment of the present invention; and
FIG. 2 illustrates various waveforms representing the signals communicated in the system of FIG. 1.
Detailed Description of the Invention
FIG. 1 represents a subcarrier multiplexing (SCM) system for simultaneously reducing the concomitant problems of receiver complexity and dispersion penalty, such embodiment of the present invention is referred to herein by the general reference numeral 10. The SCM 10 accepts a number of digital data streams 11-13 that are independently impressed upon carrier sidebands by a corresponding set of microwave modulators 21-23 driven by respective microwave oscillators 31-33. The independent high-speed data streams 11-13 are upconverted to microwave frequencies. These subcarriers are then combined with a microwave power combiner 40 and amplified with a microwave amplifier 42. A continuous wave laser 44 produces a solid-state 1550-nm laser carrier that is modulated by the microwave subcarriers in an external optical modulator 46. An erbium-doped fiber amplifier (EDFA) 48 is used just prior to long-distance transmission over an ordinary single-mode fiber 50. The transmitted optical signal may then traverse a plurality of EDFAs 52 to compensate for long-haul optical fiber losses caused by additional lengths of ordinary single-mode fiber 54.
At a receiving end, the optical signal is split into multiple paths by an optical splitter 56. The subcarrier channels are optically pre-selected by a plurality narrowband optical filters 61-63, such as a fiber Fabry-Perot (FFP) filter. A set of corresponding optical detectors 71-73 convert the selected optical signals into a respective set of baseband electrical data streams 81-83.
When a tunable filter is used to select a particular subcarrier and associated data sidebands, the passband energy is detected with a photodiode that reproduces the original baseband information. The filter blocks the energy from optical subcarriers such that the photodiodes each appear to be illuminated by a single intensity modulated signal. So the baseband information is directly detected. The photodetector and the later signal processing stages need only to be operable at baseband frequencies, not the carrier frequency.
Each of the microwave subcarriers must be amplified to a level that does not exceed the maximum power handling capability of the external modulator, e.g., to avoid damage. Excessive modulation (beyond V.pi.) can also result in non-linear transmission. Conversely, insufficient amplification of the small signals will provide for such inadequate optical modulation of the subcarriers that the subcarriers will not rise above the noise.
A DC bias must be applied to the optical modulator 46 (e.g., a Mach-Zehnder type) to maintain its quiescent operating point at a null, in order to suppress the main optical carrier. If such null bias is not maintained, the presence of a large optical carrier at the FFP filters 61-63 will prevent the filters' controllers from locking onto the relatively small optical subcarriers.
The modulator 46 preferably has an extinction ratio of 30-40 dB. Null-biased modulators having an extinction ratio less than this can pass significant fractions of the main optical carrier and thus can cause significant crosstalk at the receiving end.
The fiber Fabry-Perot (FFP) filters 61-63 preferably have a full-width half-maximum (FWHM) bandwidth of approximately one and a half times the bit rate. For a 2.5 Gbit/s data stream, a 3.75 GHz FFP filter should be used. Wider bandwidths than this allow too much crosstalk between adjacent subcarriers. Narrower bandwidths can distort the data stream that is passed through the filters. Where necessary, additional crosstalk suppression can be obtained by including additional FFP filters in cascade.
The optical detectors 81-83 preferably have a 3-dB bandwidth of approximately 0.75 times the bit rate. Such bandwidth provides additional suppression of crosstalk from adjacent subcarriers. The Lorentzian response of the FFP filters 61-63 cannot by itself adequately reduce the crosstalk levels of adjacent channels.
FIG. 2 illustrates various waveforms representing the signals communicated in the system of FIG. 1. The top portion represents the collection of optical subcarriers distributed about the optical carrier wavelength of 1550 nanometers, e.g., from optical modulator 46 to optical splitter 56. The middle portion represents a single "desired" subcarrier that has been selected by a filter 61-63, e.g., between filter 61 and detector 71. The bottom portion represents the baseband output of the detectors 71-73, e.g., on digital output 81.
Although particular embodiments of the present invention have been described and illustrated, such is not intended to limit the invention. Modifications and changes will no doubt become apparent to those skilled in the art, and it is intended that the invention only be limited by the scope of the appended claims.