Optical parametric amplifier

The optical parametric amplifier addresses limitations in conversion efficiency and spectral bandwidth by using a multipass geometry with a mirror array and a short amplifier crystal, achieving high gain and power scalability with improved efficiency and reduced costs.

DE102023130602A1Pending Publication Date: 2025-05-08SI STUTTGART INSTRUMENTS GMBH
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Patent Information

Application Number
DE102023130602
Authority / Receiving Office
DE · DE
Patent Type
Applications
Current Assignee / Owner
Filing Date
2023-11-06
Publication Date
2025-05-08

AI Technical Summary

Technical Problem

Existing optical parametric amplifiers face limitations in conversion efficiency, gain, and spectral bandwidth due to the need for phase matching and the use of long amplifier crystals, which also increase system costs and complexity.

Method used

The optical parametric amplifier employs a multipass geometry using a mirror array to repeatedly guide pump light through a short amplifier crystal, achieving high conversion efficiency and wide amplification bandwidth without the need for long crystals or complex phase matching.

Benefits of technology

This design achieves high gain and power scalability with a gain factor of up to 1000, while maintaining a wide amplification bandwidth and improving conversion efficiency, all while reducing the complexity and cost of the optical parametric amplifier.

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Abstract

Optical parametric amplifier with an amplifier crystal and a mirror arrangement with a plurality of mirrors, wherein the mirror arrangement has an input mirror and an output mirror, wherein pump light is coupled into the mirror arrangement via the input mirror, wherein signal light and idler light are generated in the amplifier crystal by means of the pump light, wherein the signal light leaves the mirror arrangement via the output mirror, wherein in the mirror arrangement the pump light is guided multiple times through the amplifier crystal, and wherein pump light and signal light are guided collinearly in the mirror arrangement.
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Description

[0001] The present invention relates to an optical parametric amplifier, in particular for generating and amplifying laser radiation in variable wavelength ranges.

[0002] There are various approaches to generating tunable laser radiation, such as optical parametric sources, quantum cascade lasers (QCLs), external cavity diode lasers (ECDLs), or solid-state lasers (e.g., based on titanium:sapphire or Cr:ZnSe). All approaches have a limited tuning range, whereby the nature of this limitation can be divided into two groups.

[0003] The first group (“laser-based”) is intrinsically linked to the ability of the laser-active medium to amplify light through stimulated emission. The examples mentioned are the broadest-bandwidth representatives of their type, achieving maximum tunability of approximately + / - 20% relative to the central wavelength. No laser medium has yet been found that can amplify an octave (e.g., 500–1000 nm or 750–1500 nm).

[0004] The second group consists of optical parametric sources. Since there is no energy exchange with the gain medium and no electronic, vibratory, or rotational transitions are excited, there is no fundamental limitation in the tuning range. Optical parametric amplifiers can therefore theoretically convert any frequency into one another, but they are dependent on phase matching and limited by the transparency range of the amplifier medium. This essentially makes a wavelength range spanning one or more octaves (e.g., 1.5 - 4.5 µm) accessible.

[0005] Even with a given material transparency, the need for phase matching results in two limitations: On the one hand, tunable sources always require multiple elements to be moved (almost always mechanically) to cover a wide spectral range. This places high technical demands on the optical design, the control automation, and the system user, and is associated with wear and tear. At the same time, a very expensive technology is required for the manufacturing of the amplifier crystal, which is mastered by only a few suppliers worldwide. This significantly impacts system costs and thus hinders economic scaling.

[0006] On the other hand, phase matching also fundamentally limits the product of gain and spectral bandwidth. In practice, short pulses (< 50 fs) are therefore often difficult to amplified, or only under specific conditions (e.g., certain pump-signal wavelength pairs in certain crystals). This limitation is fundamental in nature and can be broken down into the following principle: Short crystals enable broadband amplification, but with decreasing efficiency. Long crystals enable good efficiency, but only in a narrow wavelength range.

[0007] The limited bandwidth and efficiency can be broken down into two main factors: (1) Optical parametric amplification is reversible (so that instead of converting the pump light into signal light and idler light, signal light and idler light are consumed and pump light is generated). The direction of the energy flow is determined solely by the relative optical phase of the three waves involved. This phase usually changes as they pass through the crystal. It can be adjusted for a precise wavelength triplet ("phase matching"). With increasing spectral distance from this operating point, the process dephases. Above a certain propagation / crystal length, the reconversion occurs. The longer the propagation distance through the crystal, the smaller the permissible spectral distance from the ideal operating point before this effect sets in. (2) Temporal "walk-off" between the laser pulses to be converted, so that energy conversion is no longer possible due to temporal separation. This effect is caused by a different group velocity or dispersion of the individual laser pulses due to the different wavelengths of the pump light and the signal light (and also idler light).

[0008] The object of the present invention is to provide an optical parametric amplifier with an improved conversion efficiency of the pump light into signal light, an improved gain and an improved gain bandwidth.

[0009] The object of the invention is achieved by an optical parametric amplifier according to claim 1.

[0010] The optical parametric amplifier according to the present invention comprises an amplifier crystal and a mirror arrangement with a plurality of mirrors. Furthermore, the mirror arrangement comprises an input mirror and an output mirror, with the input mirror coupling pump light into the mirror arrangement. The pump light generates signal light and idler light in the amplifier crystal, with the signal light, together with any remaining pump light, leaving the mirror arrangement via the output mirror. In particular, unamplified signal light can be coupled into the mirror arrangement as seed together with the pump light, with the coupled, unamplified signal light then being amplified in the amplifier crystal. The input mirror and output mirror can be provided as separate optical elements.Alternatively, the input and / or output mirrors are mirrors of the mirror array that redirect pump light and signal light within the mirror array. In particular, the input and output mirrors can be the same mirror.

[0011] Here and throughout the following description, the optical parametric amplifier according to the invention is described in terms of amplifying the signal light. Signal light can refer, in particular, to the shorter-wavelength / higher-energy light that arises during the conversion process in which pump light is converted into signal light and idler light. Alternatively, signal light and idler light can be interchanged, so that signal light refers to the longer-wavelength / lower-energy light that arises from the pump light during the conversion process.

[0012] Due to the mirror arrangement, the pump light is guided through the amplifier crystal several times in several revolutions within the mirror arrangement, creating a multi-pass geometry. One revolution is defined as the path of the pump light through the entire mirror arrangement until the pump light returns to the output mirror. Thus, the pump light, originating from the output mirror, can be guided back to the output mirror by at least one or more reflections from each mirror in the mirror arrangement (possibly also from the output mirror itself, provided the pump light is reflected more than once from the output mirror in one revolution), which corresponds exactly to one revolution.

[0013] According to the invention, the pump light and signal light are guided collinearly in the mirror arrangement. Pump light and signal light thus follow an identical path through the mirror arrangement. Since the pump light circulates multiple times within the mirror arrangement, the signal light generated in the amplifier crystal is also guided in multiple revolutions through the mirror arrangement. The multi-pass geometry ensures repeated generation of the signal light, which amplifies the signal light that reaches the output mirror. In particular, this makes it possible to achieve almost linear amplification of the signal light with the number of revolutions of the pump light and the signal light in the mirror arrangement. This enables high amplification and power scaling with an amplification factor of up to 1000 or more compared to conventional optical parametric amplifiers, particularly with a single pass through the amplifier crystal.Furthermore, such amplification does not require the use of a particularly long amplifier crystal, which would simultaneously limit the possible gain bandwidth, as discussed above. Thus, a short amplifier crystal can be used, enabling high conversion efficiency and a wide gain bandwidth. Furthermore, simple-to-manufacture crystals can be used, yet still achieve large tuning ranges. "Simple" here refers to the fact that, for example, the complex step of periodic poling is not absolutely necessary.

[0014] Preferably, the optical parametric amplifier is designed to be passed through bidirectionally, so that light can pass through the amplifier and in particular the mirror arrangement on an identical but opposite path.

[0015] Preferably, the pump light passes through the mirror array only once. The optical parametric amplifier is thus designed as an OPA (optical parametric amplifier), whereby, as explained above, the pump light passes through several circuits within the mirror array in the multi-pass geometry of the mirror array.

[0016] Alternatively, the mirror array is arranged in a resonator, so that the pump light and / or signal light oscillate within the resonator. In particular, the resonator is a fiber-feedback resonator. The optical parametric amplifier is thus designed as an OPO (optical parametric oscillator).

[0017] Preferably, the amplifier crystal is located at a focal point of the mirror array. The focal point is a common point through which the pump light and signal light pass during each of their revolutions. This easily ensures that the amplifier crystal also passes through the amplifier crystal during each revolution of the pump light through the mirror array, generating signal light and idler light.

[0018] Preferably, the pump light impinges multiple times on one or multiple times on several of the mirrors of the mirror array. In particular, the pump light impinges multiple times on each of the mirrors of the mirror array, so that the pump light is guided multiple times through the amplifier crystal. This allows the number of required mirrors and thus the number of optical components of the optical parametric amplifier to be kept small. This reduces construction costs and complexity. As described above, one or more of these mirrors can also serve as input mirrors and / or output mirrors.

[0019] Preferably, the pump light passes through the amplifier crystal exactly once, in particular exactly twice and preferably more than twice, during one orbit through the mirror arrangement.

[0020] Preferably, the pump light passes through the amplifier crystal more than 4 times in total during one pass through the mirror arrangement, and in particular more than 10 times in total. In other words, the mirror arrangement is designed to guide pump light in more than 2 revolutions, in particular more than 4 revolutions, preferably more than 5 revolutions, and particularly preferably more than 10 revolutions within the mirror arrangement (depending on whether the amplifier crystal is passed through once or twice per revolution).

[0021] Preferably, the signal light and the pump light traverse the mirror arrangement in a planar geometry. In other words, the signal light and the pump light lie in a common plane during one orbit through the mirror arrangement. This simply ensures that the polarization is maintained during one orbit. Alternatively, the signal light and the pump light can traverse the mirror arrangement in a 3D geometry, which allows more orbits to be achieved with the same mirror size. However, this may result in the loss of polarization. With a 3D geometry, it is precisely not possible to find a uniform plane in which all rays of pump light and signal light lie within the mirror arrangement.

[0022] Preferably, one or more mirrors of the mirror arrangement are at least partially transparent to the idler light. Back conversion from idler light and signal light into pump light can only occur if the idler light and signal light come together in the amplifier crystal. Since one or more mirrors of the mirror arrangement are at least partially transparent to the idler light, the idler light is not reflected to the mirror but is coupled out of the mirror arrangement and is therefore not available for back conversion. Thus, one or more mirrors are absorptive or transmissive for the wavelength of the idler light. In particular, the one or more mirrors have a reflectivity of 50% or less, preferably 10% or less, and particularly preferably 2% or less for the idler light, so that 50% or less, preferably 10% or less, and particularly preferably 2% or less of the idler light is reflected by one or more mirrors.

[0023] In particular, all mirrors of the mirror arrangement have a reflectivity of 95% or more, preferably 99% or more and particularly preferably 99.9% or more for the pump light and / or the signal light, so that 95% or more, preferably 99% or more and particularly preferably 99.9% or more of the pump light and / or the signal light are reflected by the mirrors of the mirror arrangement.

[0024] Preferably, the amplifier crystal has a length equal to or shorter than the (temporal) walk-off length between the signal light and the pump light. The walk-off length refers to the length by which the signal light and the pump light overlap in time due to the different group velocities within the mirror arrangement and the amplifier crystal. This ensures that the pump light is efficiently converted into signal light within the amplifier crystal and, in particular, that no back conversion occurs if the walk-off length is exceeded. Thus, the use of a short crystal improves conversion efficiency.

[0025] Preferably, the pump light is reflected on one or more of the mirrors at different locations on the respective mirror surface of the mirror. Pump light (and, due to the collinear guidance, also signal light and idler light) thus impinge on the mirror surface of the mirror at different locations and are reflected. Thus, a multi-pass geometry can be achieved with relatively few optical elements, since the mirror surface of a mirror is used multiple times to reflect the signal light, pump light, and / or idler light. In particular, when the signal light and the pump light pass through the mirror arrangement in a planar geometry, the locations on the mirror surface are arranged along a straight line, with this line representing the intersection line between the common plane of the planar geometry and the mirror surface.

[0026] Preferably, at least one mirror of the mirror arrangement is designed as a focusing mirror for generating a focal point at which the amplifier crystal is arranged. The focusing mirror can be a curved mirror, with the mirror surface being particularly convex and particularly preferably a spherical mirror or parabolic mirror.

[0027] Preferably, one or more mirrors and in particular all mirrors of the mirror arrangement are designed as dichroic mirrors.

[0028] Preferably, the dispersion of the mirrors of the mirror arrangement is designed to substantially compensate for the dispersion of signal light and pump light per revolution. Thus, a group velocity delay and, in particular, a group velocity dispersion are compensated by the mirrors of the mirror arrangement. This ensures that no dephasing of pump light and signal light occurs within the mirror arrangement, which would reduce the conversion efficiency. Dispersion compensation is achieved, in particular, over a bandwidth of 10 nm or more, preferably 100 nm or more, and particularly preferably 1000 nm or more. For example, compensation can be achieved in the wavelength range between 1500 nm and 1900 nm.

[0029] The photon conversion efficiency is preferably more than 60%, more preferably more than 70%, and most preferably more than 80%. Thus, more than 60% of the pump light is converted into signal light and idler light. Photon conversion efficiency refers to the efficiency with which pump photons are converted into signal photons and idler photons.

[0030] Preferably, the pump light is pulsed with a pulse length of less than 250 fs, and in particular less than 150 fs. In particular, the signal light is pulsed with a pulse length of less than 10 ps, ​​and in particular less than 500 fs. In particular, the pulse duration of the signal pulses is essentially stable and independent of the amplification. In particular, it is possible to directly amplify pulses with pulse lengths of up to 25 fs, preferably up to 10 fs.

[0031] The amplifier crystal preferably has a length of 10 mm or less, preferably 5 mm or less, and particularly preferably 1 mm or less. Especially for pulse lengths of 500 fs or less, and especially 25 fs or less, short amplifier crystals are required to achieve sufficient bandwidth.

[0032] Alternatively, the amplifier crystal has a length of 25 mm or more. Long amplifier crystals can be used to improve efficiency, particularly when amplifying long pulses with pulse lengths of more than 1 ps, especially more than 1 ns, or continuous wave amplification.

[0033] Preferably, a seed is used to initiate the conversion process. The amplifier crystal is illuminated with laser light so that a mode of the amplifier crystal is favored, which is then used for the conversion process. The wavelength of the seed essentially matches the wavelength of the signal light or the idler light. In particular, it is a continuous wave (CW) seed. Alternatively, the seed can also be pulsed and preferably has a pulse length that essentially corresponds to the pulse length of the pump light.

[0034] Preferably, the mirror arrangement has fewer than 10 mirrors, preferably 6 or fewer mirrors, and particularly preferably 4 or fewer mirrors. In particular, the mirror arrangement has exactly 4 mirrors. Alternatively, the mirror arrangement has exactly 6 mirrors.

[0035] Preferably, the mirror arrangement comprises a first mirror, a focusing mirror, a second mirror, and a crystal mirror, wherein one circuit comprises: a first reflection on the first mirror to the focusing mirror, a second reflection on the focusing mirror to the crystal mirror, a third reflection on the crystal mirror to the focusing mirror, a fourth reflection on the focusing mirror to the second mirror, and a fifth reflection on the second mirror to the first mirror, wherein the pump light and signal light undergo multiple circuits. Thus, the first mirror, the focusing mirror, the second mirror, and the crystal mirror create a multi-pass geometry in which the pump light and signal light undergo multiple circuits and pass through the amplifier crystal multiple times.

[0036] Preferably, the amplifier crystal is traversed between the focusing mirror and the crystal mirror. The crystal mirror can be integral / one-piece / monolithic with the amplifier crystal or directly connected to it. Alternatively, the crystal mirror is embodied as a separate component and spaced apart from the amplifier crystal. In particular, the amplifier crystal is traversed exactly twice per revolution: once from the focusing mirror to the crystal mirror and once from the crystal mirror to the focusing mirror.

[0037] Preferably, the amplifier crystal is traversed between the second mirror and the first mirror, with the amplifier crystal being traversed in particular at different locations. Thus, the amplifier crystal is traversed during the transition from the first traversal to the second traversal and each subsequent traversal.

[0038] Preferably, different signal and idler wavelength pairs are amplified at different pass-through positions of the amplifier crystal. This can be achieved, for example, by varying the length or changing the periodic polarity of the crystal.

[0039] Preferably, the mirror arrangement comprises a first mirror, a first focusing mirror, a second mirror, a third mirror, a second focusing mirror and a fourth mirror, wherein the first focusing mirror and the second focusing mirror have a common focal point at which the amplifier crystal is arranged.

[0040] Preferably, one round trip comprises: a first reflection at the first mirror to the first focusing mirror, a second reflection at the first focusing mirror to the second focusing mirror, a third reflection at the second focusing mirror to the second mirror, a fourth reflection at the second mirror to the third mirror, a fifth reflection at the third mirror to the second focusing mirror, a sixth reflection at the second focusing mirror to the first focusing mirror, a seventh reflection at the first focusing mirror to the fourth mirror, and an eighth reflection at the fourth mirror to the first mirror, wherein pump light and signal light make multiple round trips.

[0041] Preferably, the pump light hits one of the respective mirrors exactly once per revolution and one of the respective focusing mirrors exactly twice.

[0042] The amplifier crystal is preferably lithium tantalate, lithium niobate, PPLN (periodically poled LiNbO3), KTP (KTiOPO4), or BBO (Ba(BO2)2).

[0043] Preferably, the crystal is not periodically poled. This significantly simplifies the manufacturing process for the amplifier crystal, thus reducing costs and increasing availability.

[0044] Preferably, at least one mirror and the amplifier crystal are monolithic. In this case, a side surface of the amplifier crystal can have a suitable coating to generate reflectivity for at least the pump light and the signal light. Alternatively, two mirrors and the amplifier crystal are monolithic. This can, in particular, be the first mirror and the second mirror of the arrangement described above and / or the third mirror and the fourth mirror.

[0045] Preferably, all mirrors of the mirror array and the amplifier crystal are monolithic. The mirrors of the mirror array are formed, in particular, on the side surfaces of the amplifier crystal. This results in long crystal lengths, which can be advantageous, especially for long pulse lengths of more than 1 ps, more than 1 ns, and especially for continuous wave operation.

[0046] This creates an optical parametric amplifier with very high conversion efficiency due to the use of short crystals to suppress back conversion. This also results in a wide gain bandwidth due to the use of short amplifier crystals. Furthermore, a very high small-signal gain is achieved due to the multiple amplification. At the same time, the optical parametric amplifier exhibits good power scalability due to the multipass geometry. The multipass geometry is achieved by a mirror arrangement with only a small number of mirrors. For example, four mirrors are sufficient to create a suitable mirror arrangement.

[0047] The invention is explained in more detail below using preferred embodiments with reference to the attached figures. Fig. 1A shows an embodiment of the optical parametric amplifier according to the invention, Fig. 1B shows a further embodiment of the optical parametric amplifier according to the invention, Fig. 1C shows a further embodiment of the optical parametric amplifier according to the invention, Fig. 1D shows a further embodiment of the optical parametric amplifier according to the invention, Fig. 2 a dispersion diagram of the mirror arrangement, Fig. 3 shows another embodiment of the optical parametric amplifier according to the present invention and Fig. 4 Characterization of the optical parametric amplifier according to Fig. 1.

[0048] Fig. 1A shows an optical parametric amplifier according to the present invention. The optical parametric amplifier has a mirror arrangement 10 with a first mirror 18A, a second mirror 18B, a focusing mirror 19, and a crystal mirror combined with an amplifier crystal. The crystal mirror 16 can be applied directly to one side of the amplifier crystal or, for example, can be directly adjacent to the amplifier crystal. In particular, the crystal mirror 16 and the amplifier crystal are monolithic. At least the first mirror 18A, the second mirror 18B, and the focusing mirror 19 are dichroic mirrors. In particular, all mirrors are dichroic mirrors. The amplifier crystal is arranged at the focal point of the focusing mirror 19. Pump light 12 enters the mirror arrangement 10 via a coupling mirror.Likewise, unamplified signal light can be coupled into the mirror arrangement 10 via the coupling mirror and then amplified in the amplifier crystal. In the example of the . Fig. 1A, the second mirror 18B also serves as an input mirror. The pump light 12 is reflected by the second mirror 18B to the focusing mirror 19 and then guided to the amplifier crystal. Subsequently, signal light 14 and idler light are generated from the pump light 12 in the amplifier crystal. Pump light 12, signal light 14, and idler light are guided collinearly within the mirror arrangement 10, and are thus represented uniformly as a single light beam 22 in the figures. Signal light 14 and pump light 12 are then reflected at the crystal mirror 16 through the amplifier crystal to the focusing mirror 19 and from there to the first mirror 18A. Pump light 12 and signal light 14 are then reflected from the first mirror 18A to the second mirror 18B, whereupon another circuit begins. The pump light 12 and at least also the signal light 14 are guided along several circuits within the mirror arrangement 10 through the amplifier crystal.In this case, the pump light 12 is converted into signal light 14 and idler light each time. The mirrors 18A, 18B, 19 and / or the crystal mirror 16 of the mirror arrangement 10 are at least partially transparent to the idler light, as shown in FIG. Fig. 1A. Idler light 20, 20' thus leaves the mirror arrangement 10 and is no longer available in a subsequent cycle, for example for a reconversion, i.e. the recombination of signal light 14 and idler light to pump light 12. After several cycles, the signal light 14 leaves the mirror arrangement 10. Here, the first mirror 18A also serves as an output mirror for the signal light 14. Here, the remaining pump light 12 is also led out of the amplifier arrangement 10. The pump light 12 passes through the Fig. 1A, the mirror arrangement 10 completes five revolutions per revolution. During each of these revolutions, the crystal is traversed twice, so that the pump light 12 is guided through the amplifier crystal a total of 10 times by the mirror arrangement.

[0049] In particular, each of the mirror arrangements 10 in the figures can be traversed bidirectionally, so that the mirror arrangement 10 can be operated in a resonator. Pump light is then coupled in via the first mirror 18A, with the generated signal light leaving the mirror arrangement 10 via the second mirror 18B. The arrows in the figures for pump light 12 and signal light 14 are to be interchanged.

[0050] By using the multi-pass geometry of the mirror arrangement 10, good power scaling can be achieved and, in particular, it is possible to use only a short amplifier crystal. By using a short amplifier crystal, back conversion can be suppressed while simultaneously ensuring a high gain bandwidth. Thus, an optical parametric amplifier is created with high gain, a wide gain bandwidth, and high conversion efficiency. In particular, the photon conversion efficiency is more than 60%, in particular more than 70%, and preferably more than 80%. The wide amplifier bandwidth can be used to directly amplify pulses with a pulse length of less than 1 ps, in particular less than 500 fs, and preferably up to a pulse length of 10 fs.

[0051] As in Fig. As shown in Figure 1A, the optical parametric amplifier requires a small number of optical elements, keeping costs and adjustment effort to a minimum. At the same time, costs can be reduced by using small crystals. In particular, the complex step of periodic poling is no longer necessary, allowing the use of a more cost-effective amplifier crystal.

[0052] Fig. 1B to 1D show alternative embodiments. In particular, the arrangement of the amplifier crystal 17 is changed. Fig. 1B, the amplifier crystal is arranged in the beam path between the first mirror 18A and the second mirror 18B. Pump light 12, together with the signal light 14, passes through the amplifier crystal 17 at different locations. This allows a large interaction distance between the amplifier crystal 17 and the pump light 12 to be achieved for amplifying the signal light. This can be particularly advantageous when using long amplifier crystals with lengths of more than 25 mm and especially when amplifying long pulse lengths of more than 1 ps, 1 ns, or in continuous wave operation.

[0053] Fig. 1C shows an alternative embodiment, wherein the first mirror 18A, the second mirror 18B, and the amplifier crystal 17 are formed monolithically. In particular, the mirrors 18A and 18B are integrated into the side surfaces of the amplifier crystal 17, for example, by a suitable coating of the side surfaces to form a dichroic mirror. In particular, the crystal mirror 16 can also be formed monolithically with the amplifier crystal 17.

[0054] In the embodiment of the Fig. 1D, the focusing mirror 19 is also formed monolithically with the amplifier crystal 17, so that the entire mirror arrangement 10 is formed together with the amplifier crystal 17.

[0055] Fig. Figure 2 shows the group velocity dispersion of mirrors 18A, 18B, and 19. Group velocity compensation is achieved in a range of approximately 1450 nm to 1900 nm, which just compensates for the dispersion of the pump light and the signal light. It can be seen that the mirrors provide sufficient dispersion compensation in a range of approximately 1450 nm to 1900 nm.

[0056] Reference is made to Fig. 3. The design of the Fig. 3 of the optical parametric amplifier shows a mirror arrangement 10', in which, compared to the mirror arrangement 10 of the Fig. 1A to 1D, the crystal mirror 16 was removed and a symmetrical mirror arrangement was arranged below the amplifier crystal 17. The same or similar components are used in Fig. 3 are marked with identical reference symbols.

[0057] Thus, the mirror arrangement 10' of the Fig. 3, a first mirror 18A, a second mirror 18B, a third mirror 18C, and a fourth mirror 18D. Furthermore, the mirror arrangement 10 has a first focusing mirror 19A and a second focusing mirror 19B. Focusing mirror 19A and focusing mirror 19B are arranged such that they have a common focal point. The amplifier crystal 17 is arranged at this common focal point.

[0058] Pump light 12 and signal light 14 are thus reflected in one circuit, beginning at the first mirror 18A, to the second mirror 18B. From the second mirror 18B, pump light 12 and signal light 14 are reflected to the first focusing mirror 19A and then focused onto the amplifier crystal 17. The pump light 12 passes through the amplifier crystal 17, and signal light 14 and idler light are generated. Signal light, idler light, and pump light reach the second focusing mirror 19B. At least pump light 12 and signal light 14 are reflected here to the third mirror 18C, and from there onto the fourth mirror 18D. From the fourth mirror 18D, pump light 12 and signal light 14 return to the second focusing mirror 19B, are refocused onto the amplifier crystal 17, and return to the first focusing mirror 19A, from which they are reflected onto the first mirror 18A. Pump light 12 and signal light 14 complete several cycles.Idler light 20 is not reflected, or at least partially reflected, by one of the mirrors 18A, 18B, 18C, 18D, for example. Likewise, the first focusing mirror 19A or the second focusing mirror 19B cannot reflect idler light 20, or only partially reflects it. Idler light 20 is thus transmitted to the mirror or absorbed and is no longer available for a reconversion process in the amplifier crystal 17. After completing several revolutions, the signal light 14 is then coupled out via an output mirror provided by the first mirror 18A. Remaining pump light 12 is also coupled out. The embodiment of the . Fig. 3 is particularly suitable for high power levels, since no mirror needs to be provided in the focus area, i.e. in the area of ​​high power density.

[0059] Fig. Figure 4 shows a characterization of the optical parametric amplifier according to the Fig. 1. In this case, Fig. 4a for different pump powers and the resulting signal power (“multipass”). For comparison, the simple passage through a 1 mm long crystal and a 5 mm long crystal is shown. As clearly evident from the Fig. 4a shows a good scalability of the optical parametric amplifier according to the present invention.

[0060] Fig. Figure 4b shows the conversion efficiency. It can be seen that 81% of the pump light is converted into signal light and / or idler light. This is also shown in the Fig. 4c for different pump powers, where it can be seen that the conversion efficiency is significantly higher than the single passes through a 5 mm long crystal or a 1 mm long crystal shown as a comparison.

[0061] This creates an optical parametric amplifier with very high conversion efficiency and good performance scalability.

Claims

[1] Optical parametric amplifier with an amplifier crystal and a mirror arrangement with a large number of mirrors, wherein the mirror arrangement comprises an input coupling mirror and an output coupling mirror, wherein pump light is coupled into the mirror arrangement via the input coupling mirror, wherein signal light and idler light are generated in the amplifier crystal by means of the pump light, wherein the signal light leaves the mirror arrangement via the output coupling mirror, wherein in the mirror arrangement the pump light is guided several times through the amplifier crystal in several revolutions in the mirror arrangement, and where pump light and signal light are guided collinearly in the mirror arrangement. [2] Optical parametric amplifier according to claim 1, characterized by that the pump light passes through the mirror arrangement only once. [3] Optical parametric amplifier according to claim 1, characterized bythat the mirror arrangement is arranged in a resonator, in particular a fiber feedback resonator. [4] Optical parametric amplifier according to one of claims 1 to 3, characterized by that the amplifier crystal is arranged at a focal point of the mirror arrangement. [5] Optical parametric amplifier according to one of claims 1 to 4, characterized by the pump light and / or the signal light hits one or more mirrors of the mirror arrangement several times. [6] Optical parametric amplifier according to one of claims 1 to 5, characterized by that one or more of the mirrors of the mirror arrangement are at least partially transparent to the idler light. [7] Optical parametric amplifier according to one of claims 1 to 6, characterized by that the amplifier crystal has a length that is equal to or less than the walk-off length between signal light and pump light. [8] Optical parametric amplifier according to one of claims 1 to 7, characterized by that the pump light is reflected on one or more of the mirrors at different locations on a mirror surface of the mirror. [9] Optical parametric amplifier according to one of claims 1 to 8, characterized by that the dispersion of the mirrors of the mirror array compensates the dispersion of signal light and pump light per revolution. [10] Optical parametric amplifier according to one of claims 1 to 9, characterized by that the photon conversion efficiency is greater than 60%, preferably greater than 70% and particularly preferably greater than 80%. [11] Optical parametric amplifier according to one of claims 1 to 10, characterized byin that the mirror arrangement comprises a first mirror, a focusing mirror, a second mirror and a crystal mirror, wherein one circuit comprises: a first reflection on the first mirror to the focusing mirror, a second reflection on the focusing mirror to the crystal mirror, a third reflection on the crystal mirror to the focusing mirror, a fourth reflection on the focusing mirror to the second mirror and a fifth reflection on the second mirror to the first mirror, wherein pump light and signal light undergo several circuits. [12] Optical parametric amplifier according to claim 11, characterized by that the amplifier crystal is passed through between the focusing mirror and the crystal mirror. [13] Optical parametric amplifier according to claim 11, characterized bythat the amplifier crystal is passed through between the second mirror and the first mirror, wherein the amplifier crystal is passed through in particular at different locations. [14] Optical parametric amplifier according to one of claims 1 to 12, characterized by in that the mirror arrangement comprises a first mirror, a first focusing mirror, a second mirror, a third mirror, a second focusing mirror and a fourth mirror, wherein the first focusing mirror and the second focusing mirror have a common focal point at which the amplifier crystal is arranged. [15] Optical parametric amplifier according to claim 13, characterized bythat has one circuit: a first reflection at the first mirror to the first focusing mirror, a second reflection at the first focusing mirror to the second focusing mirror, a third reflection at the second focusing mirror to the second mirror, a fourth reflection at the second mirror to the third mirror, a fifth reflection at the third mirror to the second focusing mirror, a sixth reflection at the second focusing mirror to the first focusing mirror, a seventh reflection at the first focusing mirror to the fourth mirror and an eighth reflection at the fourth mirror to the first mirror, wherein pump light and signal light undergo several circuits.

Citation Information

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