This U.S. non-provisional patent application claims priority under 35 U.S.C. §119 of Korean Patent Application No. 10-2013-0008671, filed on Jan. 25, 2013, and Korean Patent Application No. 10-2013-0104205, filed on Aug. 30, 2013, the entire contents of which are hereby incorporated by reference.
The present invention disclosed herein relates to a technology for output a light from an optical source and more particularly, to a light output apparatus and method for increasing an instant output of an optical source.
Typically, a high power optical source is necessary for a photo-acoustic imaging device, a medical device, or an industrial laser.
In order to increase an output of an optical source, an ultrashort pulse output amplification technique, such as a multistage amplification technique or a chirped pulse amplification (CPA) scheme, is well known in the field. However, there is limitation in increasing an intensity of an instant output or an intensity of an optical pulse output.
The present invention provides a light output apparatus and method capable of increasing an output of an optical source.
Embodiments of the present invention provide light output apparatuses including: a pulse generator generating a plurality of optical pulses; a pulse distributor dispersing the optical pulses generated from the pulse generator in time domain; an optical coupler allowing the dispersed optical pulses to travel along one path; an optical amplifier amplifying output intensities of optical pulses output from the optical coupler; a pulse separator separating the optical pulses amplified by the optical amplifier for each corresponding wavelength; a time delaying unit individually delaying each of the optical pulses separated for each wavelength to be reached a combination point at an identical time; and a pulse combiner combining the optical pulses arrived at the combination point at the identical time.
In other embodiments of the present invention, light output apparatuses include: a wideband pulse generator generating optical pulses by driving a wideband optical source with a pulse; a wavelength divider dividing the optical pulses for each wavelength; a dispersion time delay individually time-delaying of the wavelength divided optical pulses to allow the optical pulses to be dispersed in time domain; an optical multiplexer allowing the dispersed optical pulses to travel along one path; an optical amplifier amplifying output intensities of optical pulses output from the optical coupler; a pulse separator separating the optical pulses amplified by the optical amplifier for each corresponding wavelength; a time delaying unit delaying the optical pulses separated respectively for each wavelength and allowing the optical pulses to reach a combination point at an identical time; and a pulse combiner combining the optical pulses arrived at the combination point at the identical time.
In still other embodiments of the present invention, light output methods include: dispersing generated optical pulses in time domain and allowing the dispersed optical pulses to travel along one path; amplifying output intensities of the optical pulses traveled along one path and separating the optical pulses for each corresponding wavelength; delaying individually the optical pulses separated for each wavelength and allowing the delayed optical pulses to reach a combination point at an identical time; and combining the optical pulses arrived at the combination point at the identical time and outputting a light having an output thereof increased.
In even other embodiments of the present invention, light output methods include: generating optical pulses by driving a wideband optical source as a pulse; dividing the generated optical pulses for each wavelength, individually time-delaying the divided optical pulses to allow the optical pulses to be dispersed in time domain; allowing the distributed optical pulses to travel along one path and amplifying output intensities of the optical pulses; separating the amplified optical pulses for each corresponding wavelength, individually delaying the separated optical pulses and allowing the delayed optical pulses to reach at a combination point at an identical time; and combining the optical pulses arrived at the combination point at the identical time to output a light having an output thereof increased.
The accompanying drawings are included to provide a further understanding of the present invention, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the present invention and, together with the description, serve to explain principles of the present invention. In the drawings:
Preferred embodiments of the present invention will be described below in more detail with reference to the accompanying drawings. The present invention may, however, be embodied in different forms and should not be constructed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the present invention to those skilled in the art.
It will be understood that when elements and lines are referred to as being “connected to” or “coupled to” a target element block, it may be directly connected or coupled to the target element block or indirectly connected or coupled to the target element block through intervening elements.
Also, the same or similar reference numerals provided in each drawing denote the same or similar components. In some drawings, connection relations between devices and lines are merely shown for efficient description of the technical spirit, and therefore other devices or circuit blocks may be further provided.
Exemplary embodiments set forth herein may include complementary embodiments thereof, and it will be noted that a general operation and detailed description of material property of an optical source system may be omitted so as not to obscure the essential point of the invention.
Generally, an optical amplifier is widely used as a typical method of increasing an output of an optical source.
Referring to
At this time, in order to increase an output intensity, the pumping is performed with high optical energy, and a pulse type optical source rather than a continuous wave optical source is favorable to obtain a high instant output in terms of the output intensity.
However, even for the instant output, there is a limitation in the high optical pumping energy. Also, since a pulse having a very high instant output causes a nonlinear phenomenon in a gain medium region of an optical amplifier, there is a limit to increase the intensity of the instant output.
Accordingly, it is efficient to lower an intensity of an optical output inside the optical amplifier for increasing the instant output.
Referring to
The CPA scheme of
The CPA scheme is very efficient to increase an instant output intensity of a very short pulse having a psec or smaller pulse width output from an optical source, but is not proper to increase an output intensity of an optical pulse having a nsec (10−9 second) or greater pulse width and a very narrow linewidth
Accordingly, a technique is necessary which is easily implemented and can increase an optical output intensity.
At this time, since each optical pulse is dispersed in the time domain, input power for the optical amplifier is low. Accordingly, gain coefficient characteristics in the optical amplifier become improved. Also, since a nonlinear effect inside a gain medium is reduced, an output intensity of the optical pulse may be increased.
Referring to
The pulse generator 100 generates a plurality of optical pulses, and the pulse distributor 110 disperses the optical pulses generated by the pulse generator 100 in time domain.
The optical multiplexer 115 allows the dispersed optical pulses to travel along one path, and the optical amplifier 120 amplifies output intensities of the optical pulses output from the optical coupler 115.
The pulse separator 130 separates the optical pulses amplified by the optical amplifier 120 for each corresponding wavelength.
The time delaying unit 140 individually delays each of the separated optical pulses to allow them to reach a combination point at an identical time.
The pulse combiner 150 combines the optical pulses arrived at the combination point at the identical time.
In a light output apparatus of
The dispersed optical pulses are applied to the optical amplifier 120 and individually amplified. The amplified optical pulses are separated for each pulse or wavelength through the pulse separator 130.
The separated optical pulses are applied to a corresponding time delay line in the time delaying unit 140 and delayed by different times for each pulse. The optical pulses delayed by different times simultaneously arrived at an input end of the pulse combiner 150. The simultaneously arrived optical pulses are combined to increase an output intensity of the combined optical pulse.
Finally, the instant output is increased by spreading limited output characteristics of an optical amplifier for amplifying an output in the time domain.
Like this, an optical signal having a high output may be obtained by properly dispersing the optical signal in the time domain. Accordingly, an optical system having better characteristics may be obtained by efficiently configuring the light output apparatus, and minimization and cost reduction are enabled by a relatively simple configuration.
Referring to
Referring to
Referring to
In
According to
As described above, a cost and a size of the optical amplifier or a high output optical source can be minimized by maximizing an output intensity obtainable from an optical amplifier. Therefore, cost reduction and mobility can be improved for various application devices.
Also, by enhancing output intensity of an existing optical fiber amplifier which has low applicability due to low output intensity thereof, it is expected that applicability of the optical fiber amplifier to an industrial laser or an optoacoustic imaging system becomes very high and economic feasibility can be enhanced due to increase of availability of the optical fiber amplifier.
The photo-acoustic imaging system may be implemented by application of an optical signal amplification technique of the above described light output apparatus.
The above-disclosed subject matter is to be considered illustrative, and not restrictive, and the appended claims are intended to cover all such modifications, enhancements, and other embodiments, which fall within the true spirit and scope of the present invention. Thus, to the maximum extent allowed by law, the scope of the present invention is to be determined by the broadest permissible interpretation of the following claims and their equivalents, and shall not be restricted or limited by the foregoing detailed description.
Number | Date | Country | Kind |
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10-2013-0008671 | Jan 2013 | KR | national |
10-2013-0104205 | Aug 2013 | KR | national |