Microwave signal amplifier with isolation
The microwave signal amplifier with asymmetric superconducting loops and controlled magnetic flux addresses the issue of reciprocal signal propagation in existing amplifiers, achieving efficient isolation and amplification without additional components, ensuring a compact and efficient design.
Patent Information
- Application Number
- FR2024002255
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-06
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2044-03-06
AI Technical Summary
Existing traveling wave microwave amplifiers are reciprocal, leading to signal and noise propagation from the output to the input, requiring bulky isolators or circulators that cannot be integrated directly in cryogenic enclosures, and suffer from reflections and back-emission.
A microwave signal amplifier using a chain of nonlinear inductive dipole elements with asymmetric superconducting loops and controllable magnetic flux, employing two microwave pumps to achieve isolation and amplification, eliminating the need for additional isolators or circulators.
The amplifier provides significant gain (20 dB) with 30 dB isolation over a bandwidth of several hundred MHz, avoiding the need for bulky components and achieving a regular gain profile without ripples.
Smart Images

Figure 00000000_0000_ABST
Abstract
Description
Title of the invention: Microwave signal amplifier with isolation Technical field - technological background
[0001] The invention falls within the field of amplifiers for very weak electromagnetic signals, in particular but not only for quantum computing.
[0002] In particular, the invention falls within the field of circuits transmitting hyperfrequency waves or microwaves. It is a matter of designing and handling these circuits, ensuring that the signals of interest are amplified, that no parasitic signal is generated, and that the ambient noise and the noise of the components used is kept away from the amplification chain or filtered in it, in the direction of amplification but also in the opposite direction, since it is necessary to avoid exposing the signal source to waves which would reach it through the reading chain - then traveled in the opposite direction - and would disturb it. With regard to avoiding the transfer of waves in the opposite direction, we speak of obtaining isolation of the source, and this constitutes a task in itself.
[0003] The circuits considered may be highly integrated circuits. They are based on components with superconducting properties, called superconducting components, which are placed in cryogenic enclosures to benefit from a temperature of at most a few K (a few Kelvins).
[0004] Typically, the superconducting circuit considered is an amplification circuit intended to amplify a microwave wave coming from a qubit or quantum bit, the state of which is to be known. It can alternatively be intended for reading spin magnetic resonance information (in other words electronic paramagnetic resonance), or for amplifying a radio wave of astronomical origin. In all these situations, a very low power microwave is to be amplified.
[0005] In this context, parametric amplifiers are known, based on a medium with non-linear behavior, which allows wave mixing, namely in particular the transfer of energy from one frequency to another. The non-linear behavior is modified by a regulation of the medium, in order to obtain the phase matching phenomenon at the base of the wave mixing.
[0006] In a parametric amplifier performing four-wave mixing (by Kerr effect), two waves are incident: pump wave with pulsation cop and wave to be amplified or signal wave with pulsation cos. The amplifier transfers energy from pump wave to signal wave which is therefore amplified, and also creates a complementary wave with a pulsation coc to keep the energy unchanged.
[0007] Superconducting elements such as Josephson junctions constitute the material support in which the non-linearity occurs, which is the basis of the parametric amplification of the waves that circulate there. This is called a Josephson parametric amplifier (JPA). These JPA amplifiers are effective in the microwave range.
[0008] To obtain significant gains, standing wave amplifiers have been proposed, built around a resonant cavity, as in Planat, 2018, Phys. Rev. Applied 11, 034014 -2019. The bandwidth is of the order of 45 MHz. It can be multiplied by 10 by performing impedance matching.
[0009] Traveling wave parametric amplifiers or TWPAs (traveling wave amplifiers in English) have also been proposed, for example US8878626B2. In these structures, numerous non-linear elements connected in a chain form a transmission line for signal propagation. Phase matching can be achieved by the presence of resonators on the line, as in Macklin, Science, 2015, 350, 6258, 307, or by modulation of the line dimension, as in US8878626B2.
[0010] In US2018 / 0034425A1, the chain-connected elements are assemblies of Josephson junctions mounted in loops. The loops are coupled asymmetrically, and each by four poles. The regulation is carried out by adjusting the intensity of a magnetic flux which is arranged to pass through the loops.
[0011] Amplification in TWPAs is achieved through a wave mixing process resulting from the coupling between propagation modes in the nonlinear medium: the medium is excited with a strong pump wave, at frequency cop, causing the amplification of a weaker signal, at frequency cos, and the creation of a complementary wave, at frequency coc. The bandwidth of a TWPA can be a few GHz. In practice, a distortion in the dispersion relation is generated by opening a photonic gap in the dispersion relation by periodically modulating the transmission line or by creating a band gap by introducing resonant elements in the transmission line. Nevertheless, significant ripples are observed in the gain profile. And the amplification band is fixed by design.
[0012] Known traveling wave microwave amplifiers or TWPAs pass the signal from the amplifier input to the amplifier output but also the existing noise from the output to the input. They are therefore said to be reciprocal.
[0013] Such reciprocal traveling wave microwave amplifiers require, due to their reciprocal nature, to be used in conjunction with an additional microwave component called an isolator, which makes it possible to achieve the isolation mentioned in the introduction. This component placed between the source mi low-power waves that we want to amplify and the traveling wave amplifier (and therefore generally in a very low temperature enclosure) makes it possible to filter, in the direction from the playback devices and towards the source, the parasitic signals generated by the traveling wave amplifier itself or by the components or the environment existing on the other side of the amplifier, such as for example an additional amplifier in HEMT technology (high electron mobility transistor). But these microwave isolators have a significant physical footprint (and use magnetic fields: they are components containing permanent magnets, whose magnetic fields can affect qubits and superconducting amplifiers) and cannot be integrated directly on a chip.It is therefore difficult or uneconomical to place such an amplifier in a very low temperature enclosure, in which one also wishes to multiplex many signals. Alternatively or in conjunction with isolators, circulators could be used, but these components also have a large footprint.
[0014] Lecoq et al., Phys. Rev. Applied 7, 024028 2017 and Lecoq et al., Phys. Rev Lett. 126, 020502, 2020 discuss the use of a Josephson junction parametric amplifier with a loop in frequency space. These authors argue that this amplifier protects the readout cavity and the qubit on which they implement it. The system is a standing wave system requiring four microwave sources, and its bandwidth - about 10 MHz wide - is narrow.
[0015] Ranzani et al., Physs Rev. Applied 8, 054035, 2017, presented a transmission line based on Josephson junctions, in groups of five with a total of 740 junctions, inserted between 50 Q transmission line segments. A cop pump tone (or wave) modulates the line inductance and allows frequency conversion of a signal propagating together with the pump.
[0016] Frattini et al., Appl. Phys. Lett. 110, 222603, 2017, presented a dipole called SNAIL, a superconducting nonlinear asymmetric inductive element, consisting of four Josephson junctions distributed over two branches, including three large junctions (tunnel energy Ej) on one branch and one small junction (tunnel energy aEj) on the other branch. This element allows three-wave mixing. Then Frattini et al. Phys. Rev. Applied 10, 054020, 2018 disclosed a chain of 20 SNAIL dipole elements (consisting of 3 large junctions Lj and one small junction Lj / a) in series subjected to an identical magnetic flux for all elements, varied from 0 to 0.5 flux quantum. The authors discuss the optimization of amplification by three-wave mixing, and the minimization of four-wave mixing.
[0017] Perelshtein et al. 2022, Physical Review Applied 18, 024063 uses SNAILs, numbering 1632, comprising only three Josephson junctions: a small junction, aEJ, on one branch and two large junctions, EJ, on the other branch with the same dipole orientation over the entire chain. For zero flux quantum, the line impedance is less than 50Q and there is no 3-wave mixing. At a flux quantum of 0.4, these authors observe 3-wave mixing, and some 4-wave mixing.
[0018] Ranadive et al., Nature Communications, 2022, 13, 1737 proposed to place SNAILs in an inverted manner relative to each other with respect to the field, in an alternating manner, to suppress three-wave mixing processes (SNAILs are placed with alternating magnetic flux polarity, i.e., they are physically oriented so that the magnetic flux polarization between two adjacent SNAIL cells is reversed, taking advantage of the fact that the 2nd order nonlinearity factor g3 quantifying the three-wave mixing phenomenon is an odd function of the external flux). The system comprises, at 20 mK, 700 cells spanning 6 mm each cell containing a superconducting loop with three large Josephson junctions (critical current 10) and one small one (low critical current, rIO) in two arms.The ratio of the critical current of the small and large Josephson junction (r) is chosen such that the amplitudes of the second-order nonlinearity (g3) and the third-order nonlinearity (g4) are anti-correlated. These authors found a significant amplification for a flux quantum of 0.5, with reference to the unit magnetic flux quantum ¢0. These authors thus present a broadband transmission line with a strong third-order nonlinearity - which therefore allows four-wave mixing - the factor g4 which can be adjusted to positive or negative values. The reported phenomenon is called reverse Kerr phase matching. The combined bandwidth is announced at 3 GHz, without gaps in the transmission. Summary of the invention
[0019] In addition to being reciprocal, TWPAs suffer from reflections at the junction with transmission lines, and from back-emission.
[0020] The present invention solves the problem of isolation, because the proposed principles break the reciprocity of existing amplifiers and therefore do not allow the propagation of signals or noise from the amplifier output to its input and therefore to the device under test.
[0021] For this purpose, a microwave signal amplifier is proposed comprising a chain of nonlinear inductive dipole elements each forming an asymmetric superconducting loop with Josephson junctions, said chain being arranged between an input of the chain for applying a signal to be amplified of known frequency and an output of the chain at which an output signal is developed, the amplifier further comprising a controllable magnetic flux generation system for circulating a current in said loops, the amplifier further comprising a first microwave pump and means for coupling said input of the chain to the first pump, the first pump generating through the first coupling means a wave in the chain in the direction from the input to the output of frequency adjusted to transfer power to the microwaves propagating in a band around the frequency of the signal to be amplified.
[0022] The amplifier further comprises a second microwave pump and a second means for coupling said output of the chain to said second pump, the second pump generating through the second coupling means a wave in the chain in the direction from the output to the input, at a frequency different from that of the first pump and so as to attenuate in said direction from the output to the input the microwaves propagating in a band (generally different from the previous band mentioned for amplification) around the frequency of the signal to be amplified. This attenuation can take place by a frequency conversion mechanism.
[0023] The principles thus stated make it possible to obtain a traveling wave parametric amplifier which is also a powerful isolator in the reverse direction, over a bandwidth of several hundred MHz (typically 800 MHz) and which can be adjusted over several GHz, with a central frequency of typically 6 GHz. With such a device, additional bulky and magnetic microwave isolators, or circulators, are avoided: it is possible to have a connection without an intermediate isolator between the microwave source to be amplified and the parametric amplifier. The footprint of the elements to be installed in the cryogenic enclosure is therefore controlled. Amplification can be obtained with a gain of 20 dB while obtaining an isolation of 30 dB in the other direction.
[0024] Remarkably, these principles require only two microwave pumps, not three or four like some prior art devices. This is remarkable from the perspective of scaling up.
[0025] With these principles, moreover, the gain profile is regular, without abrupt ripples as in devices in which phase matching is obtained by modulation of the line width based on simple Josephson junctions, which present impedance mismatches.
[0026] According to advantageous and optional characteristics:
[0027] - the dipolar elements of the chain can be identical, and that the flux ma genetic is, related to the quantum of flux of the loops, set to be non-zero modulo 0.5, and preferably between 0.05 and 0.35, and preferably between 0.1 and 0.3.
[0028] - nonlinear asymmetric inductive elements of the chain may comprise between their two poles a first and a second branch connected in parallel from each other, the first branch consisting of an array of at least two Josephson junctions in series, the second branch consisting of a single Josephson junction or a second array of Josephson junctions in series, a number of Josephson junctions in the second array being less than a number of Josephson junctions in the first array;
[0029] - the dipole elements and the magnetic flux generation system can be configured so that the asymmetric loops of successive dipole elements along the chain are subjected to a magnetic flux of similar intensity but whose direction is opposite from an asymmetric loop to a following loop in the chain, and preferably, from an asymmetric loop to the immediately following loop in the chain;
[0030] - the nonlinear asymmetric inductive elements may comprise between their two poles one branch comprising one or more identical small Josephson junctions and one branch comprising one or more identical large Josephson junctions, a critical current ratio r between small junction and large junction being between 0.01 and 0.25, and preferably between 0.05 and 0.20.
[0031] - superconducting nonlinear asymmetric inductive elements can include between their two poles a branch comprising a single Josephson junction called a small junction and a branch comprising three identical Josephson junctions called large junctions, in series.
[0032] - the nonlinear asymmetric inductive elements may comprise small and large Josephson junctions, small Josephson junctions having an inductance between 1300 and 2500 pH, preferably between 1600 and 2200 pH or large Josephson junctions having an inductance between 100 and 300 pH, preferably between 140 and 260 pH.
[0033] - the magnetic flux generation system may consist of an electromagnet unique developing a uniform magnetic field over the entire chain.
[0034] - the chain can comprise between 500 and 1300 non-inductive dipole elements linear, and preferably between 600 and 850.
[0035] - the first pump can emit a microwave at a frequency between 5.2 and 10.5 GHz, preferably between 6.0 and 10 GHz.
[0036] - the second pump can emit a microwave at a frequency between 8.4 and 13.5 GHz, preferably between 9.7 and 13.5 GHz.
[0037] - a difference in frequencies between the microwaves emitted by the first pump and the second pump can be between 2 and 6 GHz, with the second pump transmitting at a higher or lower frequency than the first.
[0038] - the signal to be amplified may be present at a frequency of the order of between 5.0 and 7.8 GHz, preferably between 6.0 and 6.4 GHz. Typically, this is a signal from a qubit.
[0039] - the first coupling means may be a diplexer applying a high-pass filter to the microwaves of the first pump and directing them to the chain, and applying a low-pass filter to the microwaves of the signal to be amplified and also directing them to the chain.
[0040] - the second coupling means may be a diplexer applying a pass-filter high to the microwaves from the second pump and directing them to the chain, and applying a low-pass filter to the microwaves from the chain and directing them to a reading chain. List of figures
[0041] Figures 1 and 2 show a circuit according to one embodiment of the invention.
[0042] [Fig.3] is a graph of the numerical values of the attenuation obtained.
[0043] [Fig.4] is a view of the evolution of the gain values, as a function of the flow and the frequency.
[0044] [Fig.5] is a view of the numerical gain values in one direction and in the opposite direction. Detailed description
[0045] [Fig.l] As shown in [Fig.l], a chain of superconducting asymmetric non-linear inductive elements (SNAIL) is inserted in the center of a transmission line section, indicated in the figure as 50 Q transmission line - an impedance value used in a standard manner, for example coaxial, and advantageously differential between two conductive lines.
[0046] The device consists of several hundred dipole cells connected in series extending in total over a few millimeters in length, each cell containing a superconducting loop with three large Josephson junctions (high critical current 10 or inductance L) and one small one (low critical current rIO with r <l ou inductance L / a avec a<l) dans respectivement un bras et l’autre bras de la boucle.
[0047] The SNAIL chain - 700 SNAILs typically, but other values are possible - is fabricated on a silicon substrate using evaporation and deposition techniques. It connects a conductive line upstream of the chain to a conductive line downstream. The second conductive lines upstream and downstream are connected directly by a conductor. A dielectric layer, for example alumina, placed between the SNAIL chain and the copper line provides the ground capacitance required to match the impedance of the transmission line to a standard 50 Ω environment.
[0048] Within each SNAIL the junctions are all coplanar and the SNAILs in the chain are all coplanar. A current-carrying coil of a few centimeters in diameter to polarize the device, with low field asymmetry across the SNAIL loop chain.
[0049] In one embodiment, the SNAILs are constructed with an alternation whereby, moving from one end of the chain to the other end of the chain, for every second SNAIL, the branch with large Josephson junctions is on the left and the one with small Josephson junctions is on the right, then for the next SNAIL, the branch with large Josephson junctions is on the right and the one with small Josephson junctions is on the left. This has already been presented in Ranadive et al., Nature Communications, 2022, 13, 1737. The SNAILs are thus placed with alternating magnetic flux polarity, being physically oriented so as to reverse the magnetic flux polarization for two adjacent SNAIL cells. In another embodiment, the alternation is not done at every SNAIL, but every two SNAILs, or every N SNAILs, where N is an integer.
[0050] From the left of the figure to the right, the signal to be amplified with a cos pulse (around 6 GHz, but without this being essential, other values can be used) which is of low intensity, as well as a pump pulse of controlled intensity, significant in its intensity, with a cop pulse not far from cos but for example higher than it, are introduced into the transmission line, which constitutes a wave mixing amplification chain.
[0051] By a wave mixing phenomenon, which is estimated, without wishing to be bound by this explanation, to be based mainly on a four-wave mixing - noted in figure 4WM for four wave mixing - the signal at the cos pulsation develops amplified by wave mixing at the end of the amplification chain, on the right of the figure. At this end is of course present the pump signal cop which has traveled through the chain. There also exists at this end one or more complementary waves or idlers, not shown because not amplified.
[0052] From the right of the figure to the left, the cos pulse signal that has reached the end of the chain or beyond, and has been amplified, is very partially reflected in the transmission line due to any impedance change, even modest. Noise in the frequency range of the cos signal may also be present and travel along the amplification line, from the output and in the direction of the source of the signal to be amplified.
[0053] A pump tone, of controlled intensity, significant in power, of cop' pulsation, for example a little further from cos than cop (therefore cop' > cop) is introduced into the chain by the output, cop' depends on the method of manufacturing the Josephson junctions.
[0054] By a phenomenon of wave mixing, which is estimated, without wishing to be bound by this explanation, to be based mainly on a three-wave mixture - noted on the Figure 3WM for three wave mixing - the signal at the cos frequency and the noise at this frequency and at neighboring frequencies are attenuated as they travel, in the opposite direction to the intended amplification direction, through the amplification chain, from the output to the input.
[0055] At this input end, of course, the pump signal cop' that has traveled through the chain since the output is then present, as well as a wave of shifted frequency cos+p', of much higher frequency. They are both outside frequencies likely to disturb the source of the signal to be amplified (typically a qubit), because they are far from cos.
[0056] [Fig.2] As shown in [Fig.2], the emissions of the DUT (device under test) 10 and a pump microwave source 20 are, in a 20 mK cryostat chamber, directed respectively towards the two channels of a diplexer 30, the pump being processed by a high-pass filter in one of the channels, and the signal of the object to be tested by a low-pass filter in the other channel. The two waves are directed by the diplexer 30 via its common port then serving as output to the parametric amplifier 40 according to the invention also in the 20 mK cryostat chamber, and the signal to be amplified emerges as explained in connection with [Fig.l]. It is directed towards the common gate of a diplexer 50, which is connected by its channel gates to respectively a microwave source 60, and an isolator 70 followed by a low-noise amplifier LNA 80 located in a higher temperature stage, for example 4 K, which gives the amplified signal to a reading chain 90.The waves from the microwave source 60 are filtered by a high-pass filter before being transmitted to the output of the parametric amplifier 40. The waves leaving the parametric amplifier 40 are processed by a low-pass filter before being transferred to the isolator 70. The LNA amplifier 80 produces noise which propagates in the transmission line in the direction of the diplexer 50 but is blocked by the isolator 70. Conversely, no isolator is present on the transmission line between the object to be tested DUT 10 and the parametric amplifier 40, nor between the parametric amplifier 40 and the diplexer 50. This is a considerable advantage, when one knows the size and the disadvantages of the presence of such an isolator in a cryostat chamber, typically close to a qubit or another device to be tested.The diplexer 30 optionally filters by the low-pass filter which it interfaces between the parametric amplifier 40 and the object to be tested DUT 10 the pump tone cop' which has traveled through the chain from the output, as well as the frequency-shifted wave cos+p'.
[0057] [Fig.3] [Fig.3] shows the isolation obtained in the opposite direction to the amplification, with the system according to the invention. The microwave source 60 provides a pump tone at 10.2 GHz, and this creates a 1 GHz wide isolation band and 20 dB of attenuation gain, which is remarkable.
[0058] [Fig.4] [Fig.4] shows the gain of the system in one direction or the other, for a pump tone frequency of 10.17 GHz, as a function of the flux applied to the parametric amplifier, on the abscissa and as a function of the frequency to be amplified or attenuated, on the ordinate. The darker the shade, the more the signal is attenuated, the lighter the shade, the more it is amplified. We observe a periodicity along the abscissa axis, with a period of one flux quantum of the loops of the parametric amplifier. We also observe symmetries with respect to the abscissas 0 flux quantum, 0.5 flux quantum and 1 flux quantum. Attenuation zones are very visible from 0 to 0.5 flux quantum and from 0.5 flux quantum to 1 flux quantum, moving in frequency as a function of the flux value, width in frequency and flux decreasing until becoming zero as we approach 0 and 0.5 flux quantum, values where this attenuation is no longer observed.Thus, as soon as the flux quantum value deviates from 0 and 0.5 flux quantum, it is possible to implement attenuation.
[0059] [Fig.5] [Fig.5] shows the implementation of an embodiment of the invention, with a pump tone for 9 GHz amplification and a pump tone for 12 GHz isolation. For a bandwidth of 250 MHz, an isolation of 20 dB in the direction to be isolated and a gain of 20 dB in the direction to be amplified is obtained.
[0060] Regarding the construction of SNAILs, if we denote by ni the number of Josephson junctions on one arm (the small junctions), and n2 the number of Josephson junctions on the other arm (the large junctions), then we prefer that ni be different from n2 (ni n2). In particular, if there is a single small junction, at least two large Josephson junctions are required. We can choose large junctions at 200 pH and small junctions at 1500 pH.
[0061] The ratio of critical currents between the junctions in each arm (small and large junctions), as well as the number of junctions in each arm are parameters for adjusting the presence of attenuation triggered by a pump of a given frequency, and amplification triggered by a pump of another frequency.
Claims
Claims
1. A microwave signal amplifier comprising a chain (40) of nonlinear inductive dipole elements each forming an asymmetric superconducting Josephson junction loop, said chain being arranged between an input of the chain for applying a signal to be amplified of known frequency (10) and an output of the chain at which an output signal develops, the amplifier further comprising a controllable magnetic flux generation system for circulating a current in said loops, the amplifier further comprising a first microwave pump (20) and a first coupling means (30), the first coupling means coupling said input of the chain to the first pump (20),the first pump (20) generating through the first coupling means (30) a wave in the chain (40) in the direction from input to output and of frequency adjusted to transfer power to microwaves propagating in a band around the frequency of the signal to be amplified, the amplifier being further characterized in that it further comprises a second microwave pump (60) and a second coupling means (50), the second coupling means (50) coupling said output of the chain to said second pump (60), the second pump (60) generating through the second coupling means (50) a wave in the chain (40) in the direction from output to input, at a frequency different from that of the first pump (20) and so as to attenuate in said direction from output to input microwaves also propagating in a band around the frequency of the signal to be amplified.,
2. Microwave signal amplifier according to claim 1, characterized in that the dipole elements of the chain are identical, and that the magnetic flux is, relative to the quantum of flux of the loops, adjusted to be non-zero modulo 0.5, and preferably between 0.05 and 0.35, and preferably between 0.1 and 0.
3.
3. A microwave signal amplifier according to claim 1 or claim 2, characterized in that nonlinear asymmetrical inductive elements of the chain comprise between their two poles a first and a second branch connected in parallel to each other, the first branch consisting of a network of at least two Josephson junctions in series, the second branch consisting of a single Josephson junction or a second network of junctions Josephson in series, a number of Josephson junctions in the second network being less than a number of Josephson junctions in the first network.
4. Microwave signal amplifier according to one of claims 1 to 3, characterized in that the dipole elements and the magnetic flux generation system are configured in such a way that the asymmetric loops of the successive dipole elements along the chain are subjected to a magnetic flux of similar intensity but whose direction is opposite from an asymmetric loop to a following loop in the chain, and preferably, from an asymmetric loop to the immediately following loop in the chain.
5. Microwave signal amplifier according to one of claims 1 to 4, characterized in that the non-linear asymmetrical inductive elements comprise between their two poles a branch comprising one or more identical small Josephson junctions and a branch comprising one or more identical large Josephson junctions, a critical current ratio r between small junction and large junction being between 0.01 and 0.25, and preferably between 0.05 and 0.
20.
6. Microwave signal amplifier according to one of claims 1 to 5, characterized in that the superconducting non-linear asymmetric inductive elements comprise between their two poles a branch comprising a single Josephson junction called a small junction and a branch comprising three identical Josephson junctions called large junctions, in series.
7. Microwave signal amplifier according to one of claims 1 to 6, characterized in that the non-linear asymmetrical inductive elements comprise small and large Josephson junctions, the small Josephson junctions having an inductance of between 1300 and 2500 pH, preferably between 1600 and 2200 pH or the large Josephson junctions having an inductance of between 100 and 300 pH, preferably between 140 and 260 pH.
8. Microwave signal amplifier according to one of claims 1 to 7, characterized in that the magnetic flux generation system consists of a single electromagnet developing a uniform magnetic field over the entire chain.
9. Microwave signal amplifier according to one of claims 1 to 8, characterized in that the chain comprises between 500 and 1300 nonlinear inductive dipole elements, and preferably between 600 and 850.
10. Microwave signal amplifier according to one of claims 1 to 9, characterized in that the first pump emits a microwave at a frequency between 5.2 and 10.5 GHz, preferably between 6.0 and 10 GHz.
11. Microwave signal amplifier according to one of claims 1 to 10, characterized in that the second pump emits a microwave at a frequency between 8.4 and 13.5 GHz, preferably between 9.7 and 13.5 GHz.
12. Microwave signal amplifier according to one of claims 1 to 11, characterized in that a frequency difference between the microwaves emitted by the first pump and the second pump is between 2 and 6 GHz, the second pump emitting at a higher frequency than the first.
13. Microwave signal amplifier according to one of claims 1 to 12, characterized in that the signal to be amplified is present at a frequency of the order of between 5.0 and 7.8 GHz, preferably between 6.0 and 6.4 GHz.
14. Microwave signal amplifier according to one of claims 1 to 13, characterized in that the first coupling means is a diplexer applying a high-pass filter to the microwaves of the first pump and directing them towards the chain, and applying a low-pass filter to the microwaves of the signal to be amplified and also directing them towards the chain.
15. Microwave signal amplifier according to one of claims 1 to 14, characterized in that the second coupling means is a diplexer applying a high-pass filter to the microwaves from the second pump and directing them towards the chain, and applying a low-pass filter to the microwaves coming from the chain and directing them towards a reading chain.
Citation Information
Patent Citations
Squid-based traveling wave parametric amplifier
US20180034425A1
Dispersion-engineered traveling wave kinetic inductance parametric amplifier
US8878626B2