Low Phase Noise Adjustable Signal Source
The adjustable signal source with controllable DC power supplies and a mode-locked laser enhances frequency resolution and flexibility, addressing the limitations of existing systems by enabling non-integer frequency multiplication in a compact and cost-effective manner.
Patent Information
- Application Number
- JP2024534653
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-12-10
- Filing Date
- 2022-12-09
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2042-12-09
AI Technical Summary
Existing signal sources provide only integer multiples of the optical signal frequency, have complex structures, large space requirements, and high costs, limiting frequency resolution and flexibility.
A low phase noise adjustable signal source using a balanced optical microwave phase detector with controllable DC power supplies to bias the intensity modulator, allowing locking to non-integer multiples of the optical pulse repetition rate, and incorporating a mode-locked laser for tunable frequency generation.
Enables a compact, low phase noise design with improved frequency resolution and flexibility, reducing complexity and cost while allowing non-integer frequency multiplication.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a low phase noise adjustable signal source. [Background technology]
[0002] In many areas of electrical engineering, it is necessary to provide signals with low phase noise, and it is particularly desirable if the signal source is tunable over a wide frequency range with high frequency resolution. An exemplary use would be to lock a microwave oscillator to an optical clock signal from such a source. Another use would be to distribute an optical clock signal over low phase noise, low loss fiber. Various techniques are known from the prior art. For example, from the paper [1], by Kwangyun Jung and Jungwon Kim, published in Optics Letters, Vol. 37, no. 14, p. 2958, Jul 2022, https: / / doi.org / 10.1364 / OL.37.002958, a device is known that makes it possible to lock a microwave oscillator to an integer harmonic of the repetition rate of an optical clock generator. Furthermore, a balanced optical microwave phase detector is known from Non-Patent Document 2, a paper published in IEEE Transactions on Microw. Theory Tech, pp. 1-1 (2021) by M. Bahmanian and JC Scheytt. From these papers it is also known that microwave phase detectors with fiber-based Sagnac loop intensity modulators or Mach-Zehnder intensity modulators can be used for this purpose. Common to all approaches known to the inventors so far is that current system designs are only able to provide high frequency signals that are integer multiples of the repetition rate of the optical signal source, i.e., the output frequency is fout=N*frep, where N∈N. In a method known to the inventors to date, a balanced modulator is biased at its odd symmetrical points, i.e., biasing at these points results in equal optical output intensities, and the output current of a balanced optical microwave phase detector then switches signs when the phase difference of all high-frequency amplitudes is zero. A disadvantage of hitherto known approaches is that they are only suitable either for providing precisely determined (fixed) frequencies, or for generating only precisely predetermined integer multiples. Furthermore, it is a disadvantage that some of the structures have very complex structures. Yet another drawback is the relatively large space requirement and high cost, which may be the case, especially in the case of fiber-based Sagnac loop intensity modulators. [Prior art documents] [Non-patent literature]
[0003] [Non-Patent Document 1] Kwangyun Jung, Jungwon Kim, “Subfemtosecond synchronization of microwaVe oscillators with mode-locked Er-fiber lasers”, Optics Letters, Vol. 37, no. 14, p. 2958, Jul 2012, https: / / doi.org / 10.1364 / OL.37.002958 [Non-patent document 2] M. Bahmanian, J.C. Scheytt, “A 2-20-GHz ultralow phase noise signal source using a microwaVe oscillator locked to a mode-locked laser,” IEEE Transactions on Microw.Theory Tech.pp.1-1(2021) Summary of the Invention [Problem to be solved by the invention]
[0004] Against this background, the object of the present invention is to provide an improvement, in particular to provide a less complex and space-saving design, with another aim being to improve the frequency resolution. Brief description of the invention The above problem is solved by a low phase noise adjustable signal source according to claim 1. Further advantageous embodiments of the invention are the subject of the dependent claims, the description and the figures. [Brief explanation of the drawings]
[0005] The present invention will now be described in detail with reference to the drawings, in which: [Figure 1a] 1 is a schematic diagram of a balanced optical microwave phase detector according to the prior art; [Figure 1b] FIG. 1 is a schematic block equivalent circuit diagram for this. [Figure 2] 1 shows a schematic diagram of a balanced optical microwave phase detector according to the present invention; [Figure 3a] 1 is a graph of measured values according to an embodiment of the present invention in relation to theoretical values. [Figure 3b] 1 is a graph of measured values according to an embodiment of the present invention in relation to theoretical values. [Figure 3c] 1 is a graph of measured values according to an embodiment of the present invention in relation to theoretical values. [Figure 3d] 1 is a graph of measured values according to an embodiment of the present invention in relation to theoretical values. Detailed Description of the Invention
[0006] The present invention will now be described in more detail with reference to the figures, where it is noted that different aspects are described which can be used either alone or in combination, i.e., each aspect can be used in different embodiments of the invention, unless expressly indicated as merely alternatives. Furthermore, for simplicity, in the following, reference will generally always be made only to entities. Unless explicitly stated otherwise, the invention may also include several of the respective entities. To that extent, the use of the singular terms "ein", "eine", and "eines" should only be understood to indicate that at least one entity is used in a single embodiment. Insofar as methods are described below, the individual steps of the methods can be arranged and / or combined in any order unless the context explicitly dictates otherwise. Furthermore, unless otherwise stated, these methods can be combined with each other. Information containing numerical values should generally not be understood as exact values but may include a tolerance of + / -1% to + / -10%. References to standards or specifications should be understood as references to the standards or specifications that are / were in force at the time of filing the application and / or to which priority is claimed, i.e. at the time of the priority application, but should not be understood as a general exclusion of applicability to subsequent or superseding standards or specifications.
[0007] The apparatus and method will be described below with reference to the drawings. Before describing the present invention in detail, the theoretical background of "Interharmonic Locking" will be explained. Figure 1a shows the block diagram of an optoelectronic PLL circuit. The output voltage of a tunable oscillator is sampled with the pulses of a mode-locked laser (MLL). For this purpose, an intensity modulator (BIM) is used. This intensity modulator, also known as a balanced intensity modulator (BIM), is an electrical-optical converter.
[0008] In this case, the light pulses emitted by the intensity modulator BIM are converted into electrical currents via two photodiodes PD1 and PD2. The resulting current is then integrated by a loop filter and subsequently fed back to a tunable oscillator, thus closing the controlled system. The output current can be expressed as:
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[0009] Therefore, the optical microwave phase detector BOMPD can be modeled as a nonlinear block and a frequency mixer, where the nonlinear behavior of the optical microwave phase detector BOMPD can be used to lock a microwave oscillator to a harmonic instead of the respective fundamental (Grundton) frequency, i.e., an even multiple of the repetition rate of the optical reference. The frequency components of the various nodes of the optical microwave phase detector BOMPD are shown in Figure 1b), where M is the harmonic index of the repetition rate of the optical reference and N is the harmonic index of the RF voltage. The optoelectronic PLL circuit locks when the frequency at the mixer input satisfies the following equation:
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[0010] In the following, the operation of the optoelectronic PLL circuit is referred to as harmonic locking when N=1 and as N-th order interharmonic locking when N>1. Assuming that the optical pulses of the mode-locked laser MLL are much shorter than the RF signal period, we can approximate each pulse as a Dirac delta function,
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[0011] In the case of N-th order interharmonic locking phase detection, the output power in the above formula has a period of NTref. Therefore, the characteristic function (transfer function) H of the optical microwave phase detector BOMPD is N (φ) can be shown as follows:
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[0012] From this, the characteristic functions (transfer functions) of the first, second and fourth order phase detectors BOMPD (corresponding to harmonic locking, second order interharmonic locking and fourth order interharmonic locking) can be constructed.
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[0013] H N The value of (φ) can be expressed using the Jacobi-Unger expansion as
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[0014] One use of a low-phase-noise tunable signal source is shown in Figure 2. The tunable signal source includes an optical microwave phase detector (BOMPD). This structure is initially presented as in the prior art ("A 2-20-GHz ultralow phase noise signal source using a microwave oscillator locked to a mode-locked laser"). In this case, the microwave phase detector BOMPD first has an intensity modulator BIM that includes an optical signal input, a modulation input I, a first output O1, and a second output O2. The intensity modulator BIM in Figures 1a / 1b and 2 is also called a balanced intensity modulator and is an electro-optical converter. The form of the intensity modulator BIM can be designed in various ways.
[0015] Furthermore, the microwave phase detector BOMPD has a first photodiode PD1 that can emit light at a first output O1 during operation, and a second photodiode PD2 that can emit light at a second output O2 during operation. In this case, unlike the prior art structure, within the scope of the present invention, a first photodiode PD1 and a second photodiode PD2 connected in series are biased during operation, and this series circuit has a structure in which a tap for a tap signal is arranged between the first photodiode PD1 and the second photodiode PD2.
[0016] Furthermore, the microwave phase detector BOMPD has a controllable DC power supply (BOMPD zero cross control) N4; When operating with a DC power supply, The offset current can be adjusted, thereby changing the zero crossing of the transfer function of the BOMPD, which in turn breaks the symmetry of the optical-microwave phase detector during operation, i.e., unlike the prior art, balanced operation of the BOMPD is not intentionally aimed for. In operation, the output of the tap, along with any offset currents that may be present, is routed to a low pass filter, and the low pass filtered tap signal is provided to the tunable oscillator OSZ.
[0017] By adding a DC power supply N4 (BOMPD zero cross control) that can control the offset current, To achieve a sign swap of the output current of the microwave phase detector BOMPD, it becomes possible to lock the microwave phase detector BOMPD to non-even multiples of the optical pulse repetition rate.
[0018] In one embodiment of the present invention, the adjustable signal source further comprises a controllable DC power supply N1 (even / odd interharmonic control) and the intensity modulator BIM DC power supply It has input for N1. DC power supply By providing the intensity modulator BIM dc power electrode can be biased at the same point of symmetry (Gleichpunkt), which also allows the microwave phase detector BOMPD to lock onto a non-even multiple of the optical pulse repetition rate. This is because when the balanced modulator is biased at this point, the intensity of one of the outputs O1, O2 tends to be maximum, while at the same time the other output O2, O1 tends to be minimum. Therefore, in this case, it is possible to ensure that the output frequency
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[0019] In another embodiment of the present invention, the adjustable signal source is a controllable Third DC power source N2, N3 (alternative even / odd interharmonic control), in operation the fed back output signal of the tunable oscillator OSZ is fed to the modulation input I; Third DC power source The DC voltages of N2 and N3 are also supplied to the modulation input I during operation. Controllable Third DC power source (Alternative even / odd interharmonic control) The function of N2, N3 is that the DC component, i.e. the average level, of the signal of oscillator OSZ can be adjusted. This can be achieved, for example, by adding a DC voltage to the signal of oscillator OSZ.
[0020] The change in the DC voltage of the high-frequency electrode of the intensity modulator BIM is
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[0021] In another embodiment of the present invention, the tunable signal source further comprises a mode-locked laser MLL that, in operation, provides an optical input signal to the optical signal input. In another embodiment of the invention, the oscillator OSZ is the output signal It can be adjusted to a non-integer multiple of the optical clock repetition time, i.e., a selectable multiple, in addition to variations that can only provide specific non-even multiples. It is therefore also possible within the scope of the present invention to use a fiber-based Sagnac loop intensity modulator BIM, but in that case operating it with a phase shift in order to bias it accordingly at the symmetrical point of the line.
[0022] The present invention allows for a compact design with low phase noise and little complexity. In addition, the frequency resolution is improved, thereby
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[0023] The characteristic curves according to this theory can be seen in Figures 3a to 3d. In that case, Figs. 3a to 3d are for different RF amplitudes of α=0.8, α=1.2 or α=2.3 a) Harmonic locking when Ψdc=0, b) Second-order interharmonic locking when Ψdc=π / 2, c) Third-order interharmonic locking when Ψdc=0; d) 4th-order interharmonic locking when Ψdc=π / 2 The theoretical (dotted line) and measured BOMPD characteristic curves are shown.
[0024] The amplitude of the oscillator signal can be adjusted using an adjustable amplifier A, which leads to a change in the coefficient α. As can be seen from the characteristic curves in Figures 3a-3d, the characteristic curve depends on α. It can also be seen that not all curves have a zero crossing. Therefore, if the characteristic curve does not have a zero crossing, the control loop cannot lock. This means that by appropriately adjusting the oscillator amplitude VRF, the coefficient α can be adjusted so that the characteristic curve has a zero crossing, thereby enabling interharmonic locking.
[0025] Reference Code List BOPMD Optical Microwave Phase Detector BIM Intensity Modulator I Modulation Input O1, O2 output PD1, PD2 photodiodes N4 Controllable DC Power Supply OSZ Tunable Oscillator N1, N2, N3 controllable DC power supply MLL mode-locked laser A adjustable amplifier
Claims
1. 1. A low phase noise tunable signal source, comprising: an optical microwave phase detector (BOMPD), the optical microwave phase detector comprising: an intensity modulator (BIM) comprising an optical signal input, a modulation input (I), a first output (O1) and a second output (O2); a first photodiode (PD1) capable of emitting light of said first output (O1) in operation; a second photodiode (PD2) capable of emitting light of said second output (O2) in operation; the first photodiode (PD1) and the second photodiode (PD2) are connected in series so as to be biased during operation; a tap for a tap signal is arranged between the first photodiode (PD1) and the second photodiode (PD2); - further comprising a controllable first DC power supply (N4); the first DC power supply (N4) is capable of adjusting an offset current at the tap during operation, whereby the symmetry of the optical microwave phase detector is broken during operation by the offset current; the taps are led to a low-pass filter together with any offset currents present, The low-pass filtered tap signal is provided to an adjustable oscillator (OSZ); Low phase noise adjustable signal source.
2. 2. The adjustable signal source of claim 1, further comprising a controllable second DC power supply (N1), said intensity modulator (BIM) having an input for said second DC power supply (N1).
3. 3. The adjustable signal source according to claim 1 or 2, further comprising a controllable third DC power supply (N2, N3), wherein in operation, a fed-back output signal of the adjustable oscillator (OSZ) is supplied to the modulation input (I), and a DC voltage of the third DC power supply (N2, N3) is also supplied to the modulation input (I) in operation.
4. 10. The adjustable signal source of claim 1, further comprising an amplifier (A), the amplifier (A) configured to adjust the oscillation amplitude (VRF) to enable interharmonic locking.
5. 10. The tunable signal source of claim 1, further comprising a mode-locked laser (MLL) that, in operation, provides an optical input signal to the optical signal input.
6. 2. An adjustable signal source according to claim 1, characterized in that said oscillator (OSZ) is adjustable to adjust its output signal to a non-integer multiple of the optical clock repetition time.
Citation Information
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