Dielectric Spectroscopy Sensor
The dielectric spectroscopy sensor addresses the limitation of fixed opening diameters by incorporating a transmission line, quasi-coaxial structure, and aperture diameter adjustment, enhancing penetration depth and measurement accuracy.
Patent Information
- Application Number
- JP2023572296
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-01-06
- Publication Date
- 2025-05-21
- Estimated Expiration
- 2042-01-06
AI Technical Summary
Existing dielectric spectroscopy sensors are limited by the opening diameter of the substrate, restricting the penetration depth of the electric field and affecting the accuracy of dielectric constant measurement, especially when changes occur deeper than the penetration depth.
A dielectric spectroscopy sensor with a transmission line, quasi-coaxial structure, and aperture diameter adjustment unit that allows for adjustable opening diameters, enabling increased penetration depth and accurate measurement of dielectric constants.
The sensor can measure dielectric constants with high accuracy by adjusting the aperture diameter, ensuring the electric field penetrates to deeper locations, improving measurement sensitivity and accuracy across a wide frequency band.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to a dielectric spectroscopy sensor. [Background technology]
[0002] Testing blood glucose levels and other constituent concentration tests requires the sampling of blood, which places a heavy burden on patients. For this reason, non-invasive constituent concentration measuring devices that do not require blood sampling have been put to practical use.
[0003] As a non-invasive element concentration measurement device, a method using electromagnetic waves in the microwave to millimeter wave band has been proposed. This method has the advantage that there is less scattering in the body and the energy of one photon is low compared to optical methods such as near-infrared light.
[0004] As a method using electromagnetic waves in the microwave to millimeter wave band, a method using a resonant structure disclosed in Non-Patent Document 1 has been proposed. In Non-Patent Document 1, a measurement sample is brought into contact with a device with a high Q value, such as an antenna or a resonator, and frequency characteristics around the resonant frequency are measured. Since the resonant frequency is determined by the complex dielectric constant around the device, the component concentration can be estimated based on the resonant frequency shift by predicting the correlation between the resonant frequency shift and the component concentration in advance.
[0005] As another method using microwave-millimeter wave electromagnetic waves, dielectric spectroscopy has been proposed as disclosed in Patent Document 1. In dielectric spectroscopy, electromagnetic waves are irradiated into the skin of a human or animal, and the electromagnetic waves are absorbed according to the interaction between the blood components to be measured, for example, glucose molecules and water, and the amplitude and phase of the electromagnetic waves are observed. A dielectric relaxation spectrum is calculated from the amplitude and phase of the observed electromagnetic waves relative to the frequency. The dielectric relaxation spectrum is generally expressed as a linear combination of relaxation curves based on the Cole-Cole equation, and a complex dielectric constant is calculated.
[0006] The complex dielectric constant correlates with the amount of blood components such as glucose and cholesterol contained in blood. A calibration model can be constructed by measuring the correlation between the change in complex dielectric constant and the component concentration in advance, and the component concentration can be calibrated based on the change in the measured dielectric relaxation spectrum. Regardless of which method is used, it is expected that the measurement sensitivity will be improved by selecting a frequency band that is highly correlated with the target component, so it is necessary to measure the change in dielectric constant in advance using broadband dielectric spectroscopy.
[0007] Among dielectric spectroscopy, the method using a coaxial probe (open-ended coaxial probe or open-ended coaxial line) as shown in Non-Patent Documents 2, 3 and Patent Document 2 can use easily available samples such as water to calibrate the measuring instrument. In addition, it is possible to measure the dielectric constant of the sample to be measured by contacting the sample to the end of the probe without requiring special processing of the material. For this reason, it is suitable for measuring samples whose electrical properties are to be evaluated without processing, such as living organisms, fruits (sugar content), and soil (water content, conductivity).
[0008] In particular, the substrate-integrated planar coaxial sensor shown in Patent Document 2 can be directly integrated onto a PCB substrate that integrates a dielectric spectroscopy system using discrete ICs or ASICs, and is therefore suitable for building small systems such as wearable devices.
[0009] Furthermore, Non-Patent Document 4 discloses that the depth to which the electric field penetrates into the object to be measured varies depending on the aperture diameter of the coaxial probe. [Prior art documents] [Patent documents]
[0010] [Patent Document 1] JP 2013-32933 A [Patent Document 2] Patent No. 6771372 [Non-patent literature]
[0011] [Non-Patent Document 1] M. Hofmann, G. Fischer, R. Weigel, and D. Kissinger, “Microwave-Based Noninvasive Concentration Measurements for Biomedical Applications”, IEEE Trans. Microwave Theory and Techniques, Vol.61, No.5, pp. 2195-2203,2013 [Non-Patent Document 2] J P. Grant, R N. Clarke, G T. SYymm and N M. Spyrou, “A critical study of the open-ended coaxial line sensor technique for RF and microwave complex permittivity measurements”, J. Phys.E: Sci. Instrum,Vol.22, pp. 757-770,1989 [Non-Patent Document 3] TP Marsland, and S. Evans“Dielectric measurements with an open-ended coaxial probe”, IEE Proceedings, Vol. 134, No.4,1987 [Non-Patent Document 4] P.-M. Meaney, A.-P.Gregory, J. Sepp?l? and T. Lahtinen, “Open-Ended Coaxial Dielectric Probe Effective Penetration Depth Determination”, IEEE Trans.Microwave Theory and Techniques, Vol.64,No.3, pp. 915-923,2016 Summary of the Invention [Problem to be solved by the invention]
[0012] However, since the substrate thickness is usually specified for substrate integrated dielectric spectroscopy sensors, it is necessary to design the transmission line according to the substrate thickness of the dielectric spectroscopy sensor. This limits the diameter of the opening provided in the substrate integrated dielectric spectroscopy sensor, and it is not possible to obtain a desired opening diameter. As a result, the penetration depth that the electric field can penetrate into the inside of the measurement object is limited. If a change in the dielectric constant occurs at a location deeper than the penetration depth, the reflection coefficient (S11 parameter) detected by the dielectric spectroscopy sensor does not change. This results in a problem that the dielectric constant cannot be measured with high accuracy.
[0013] The present invention has been made in consideration of the above-mentioned circumstances, and an object of the present invention is to provide a dielectric spectroscopy sensor that is not limited by the opening diameter of the substrate opening and can measure the dielectric constant of an object to be measured with high accuracy by increasing the penetration depth of the electric field into the object to be measured. [Means for solving the problem]
[0014] The dielectric spectroscopy sensor of the present invention is a dielectric spectroscopy sensor connected to a dielectric spectroscopy system, and comprises: a transmission line having a predetermined characteristic impedance that matches the dielectric spectroscopy system; a quasi-coaxial structure connected to the transmission line and having a first opening with a first opening diameter; and an aperture diameter adjustment unit connected to the quasi-coaxial structure, one end of which has the predetermined characteristic impedance and the other end of which is a second opening with a second opening diameter different from the first opening diameter. Effect of the Invention
[0015] According to the present invention, it is possible to measure the dielectric constant of a measurement object with high accuracy. [Brief description of the drawings]
[0016] [Figure 1] FIG. 1 is a block diagram showing a configuration of a dielectric spectroscopy sensor according to an embodiment. [Diagram 2]FIG. 2 is a perspective view showing the configuration of a dielectric spectroscopy sensor having a planar coaxial sensor structure. [Figure 3A] FIG. 3A is an explanatory diagram showing the upper surface of the second substrate. [Figure 3B] FIG. 3B is an explanatory diagram showing the lower surface of the second substrate. [Figure 4A] FIG. 4A is an explanatory diagram showing the upper surface of the first substrate. [Figure 4B] FIG. 4B is an explanatory diagram showing the lower surface of the first substrate. [Figure 5A] FIG. 5A is a cross-sectional view showing the configuration of the opening diameter adjusting portion, and shows an example in which the inner diameter of the outer conductor 53a is constant from the upper surface to the lower surface. [Figure 5B] FIG. 5B is a cross-sectional view showing the configuration of the opening diameter adjusting portion, and shows an example in which the inner diameter of the outer conductor 53b increases stepwise from the upper surface to the lower surface. [Figure 5C] FIG. 5C is a cross-sectional view showing the configuration of the opening diameter adjusting portion, and shows an example in which the inner diameter of the outer conductor 53c becomes smaller in stages from the upper surface to the lower surface. [Figure 5D] FIG. 5D is a cross-sectional view showing the configuration of the opening diameter adjusting portion, and shows an example in which the inner diameter of the outer conductor 53d gradually decreases from the upper surface to the lower surface. [Figure 6] FIG. 6 is an explanatory diagram showing an example in which the opening diameter adjusting portion is configured in a quasi-coaxial shape. [Figure 7] FIG. 7 is a graph showing the relationship between the distance (penetration depth) from the end face of the opening diameter adjusting portion and the electric field intensity. [Figure 8] FIG. 8 is a graph showing the change in the S21 parameter with respect to the change in frequency when aperture diameter adjusting units having aperture diameters of various sizes are used. [Figure 9] FIG. 9 is a graph showing the relationship between the distance (penetration depth) from the end face of the opening diameter adjusting portion and the electric field intensity. [Figure 10] FIG. 10 is a graph showing the change in the S21 parameter with respect to the change in frequency when the aperture diameter adjusting section 13 is not used. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0017] Hereinafter, an embodiment of the present invention will be described with reference to the drawings. FIG. 1 is a block diagram showing the configuration of a dielectric spectroscopic sensor according to an embodiment of the present invention and its peripheral devices. As shown in FIG. 1, a dielectric spectroscopic sensor 100 according to this embodiment is connected to a dielectric spectroscopic system 20 and receives a radio frequency (RF) signal output from the dielectric spectroscopic system 20. The dielectric spectroscopic sensor 100 also outputs an electromagnetic wave toward a measurement object M, receives the reflected wave, and transmits it to the dielectric spectroscopic system 20. The measurement object M is, for example, human skin, an animal, fruit, soil, etc.
[0018] The dielectric spectroscopy system 20 can be, for example, a general-purpose computer system equipped with a CPU (Central Processing Unit, processor), memory, storage (HDD: Hard Disk Drive, SSD: Solid State Drive), a communication device, an input device, and an output device.
[0019] 1, the dielectric spectroscopy sensor 100 includes a transmission line 11, a quasi-coaxial structure 12, and an aperture diameter adjustment unit 13. The transmission line 11 and the quasi-coaxial structure 12 are formed on a circuit board 10.
[0020] Fig. 2 is a perspective view of the dielectric spectroscopy sensor 100. As shown in Fig. 2, the dielectric spectroscopy sensor 100 according to this embodiment has a configuration of a planar coaxial sensor in which a first substrate 21 and a second substrate 31 are laminated. The first substrate 21 and the second substrate 31 correspond to the circuit substrate 10 shown in Fig. 1. The first substrate 21 and the second substrate 31 are preferably configured as dielectric substrates.
[0021] 3A is a plan view showing the upper surface of second substrate 31, and FIG. 3B is a plan view showing the lower surface of second substrate 31. The upper surface of second substrate 31 is a surface that contacts first substrate 21, and the lower surface is a surface that contacts opening diameter adjustment portion 13.
[0022] 4A is a plan view showing the upper surface of first substrate 21, and FIG. 4B is a plan view showing the lower surface of first substrate 21. The upper surface of first substrate 21 is the surface on which transmission line 11 is formed, and the lower surface is the surface in contact with second substrate 31.
[0023] Materials that can be used for high frequencies include glass epoxy, Teflon, alumina, quartz, and Si for the first substrate 21 and the second substrate 31. The size of the first substrate 21 and the second substrate 31 is, for example, several centimeters by several centimeters square, and the thickness is, for example, several hundred μm to several mm. The first substrate 21 and the second substrate 31 are dielectric materials with a relative dielectric constant of, for example, 2 to 3.
[0024] 3A and 3B, metal patterns 32 and 35 having circular openings H1 (first openings) are provided on both sides of second substrate 31. The diameter of opening H1 (first opening diameter) is, for example, several hundred μm to several mm. Metal patterns 32 and 35 may be made of a metal used in high frequency substrates, such as Cu or Au.
[0025] A via 33 penetrating the second substrate 31 is provided in the center of the opening H1 of the second substrate 31. In addition, a plurality of vias 34 (eight in the figure) that are electrically connected to the metal pattern 32 and the metal pattern 35 are provided along the circumference of the opening H1. In other words, a plurality of vias 34 are provided in a circle with the via 33 at the center. The vias 33, 34 are filled with a conductor.
[0026] The vias 33 and 34 may be made of a conductive ink, copper paste, silver paste, copper plating, or the like. Alternatively, metal pins having the same diameter as the vias 33 and 34 may be embedded. Due to a quasi-coaxial structure in which the via 33 serves as an inner conductor and the via 34 serves as an outer conductor, electromagnetic waves in the TEM mode propagate in the planar direction of the second substrate 31.
[0027] 4A, metal patterns 11a and 11b constituting a coplanar line are provided on the upper surface of the first substrate 21. The metal pattern 11a serves as a signal line of the coplanar line, and the metal pattern 11b serves as a ground line. That is, the metal patterns 11a and 11b form the transmission line 11. The characteristic impedance of the metal patterns 11a and 11b is set to be the same as the characteristic impedance (predetermined characteristic impedance) at the connection part of the dielectric spectroscopy system 20 shown in FIG.
[0028] The width of the metal pattern 11a and the width of the gap between the metal patterns 11a and 11b are several tens of μm to several mm. Each dimension of the coplanar line is designed to match the characteristic impedance (predetermined characteristic impedance) of the dielectric spectroscopy system 20 connected to the dielectric spectroscopy sensor 100, for example, to 50 Ω or 75 Ω.
[0029] The first substrate 21 is provided with a via 24 and a plurality of vias 25 that constitute a quasi-coaxial structure, corresponding to the positions of the vias 33 and 34 of the second substrate 31. The via 24 is electrically connected to the via 33 and the metal pattern 11a. The via 25 is electrically connected to the via 34 and the metal pattern 11b. With this configuration, the first substrate 21 serves as a coplanar line-quasi-coaxial conversion. The plurality of vias 25 are arranged so as not to come into contact with the metal pattern 11a that serves as a signal line. The second substrate 31 and the first substrate 21 are bonded together, for example, by an adhesive.
[0030] The region consisting of the via 33, the multiple vias 34, and the opening H1 surrounded by each via 34 corresponds to the quasi-coaxial structure 12 shown in FIG. 1 and serves as a connection surface for connecting the opening diameter adjustment unit 13. That is, the quasi-coaxial structure 12 is connected to the transmission line 11 and has a first opening with a first opening diameter. The quasi-coaxial structure 12 includes a metal pattern formed on a dielectric substrate (first substrate 21, second substrate 31). Specifically, the quasi-coaxial structure 12 includes vias 24, 33 (first vias) and vias 25, 34 (second vias) formed on the dielectric substrate.
[0031] The transmission line 11 consisting of the metal patterns 11a and 11b formed on the first substrate 21 can be a transmission line that can be manufactured on a printed circuit board or a semiconductor substrate, such as a microstrip line, a coplanar line, or a coplanar strip. For example, when a microstrip line is used, the characteristic impedance ZMSL is expressed by the following formula (1).
[0032]
number
[0033] In the above formula (1), "εsub" is the substrate dielectric constant of the microstrip line, and "h" is the substrate thickness of the circuit board 10. "W" is the line width, that is, the width of the metal pattern 11a shown in FIG. 4A.
[0034] In equation (1), the substrate permittivity εsub and the substrate thickness h are fixed values that are determined at the stage of selecting the printed circuit board or semiconductor substrate used to fabricate the dielectric spectroscopy sensor 100. Therefore, the line width W for obtaining the desired characteristic impedance ZMSL is uniquely determined.
[0035] For example, to set the characteristic impedance ZMSL to about 50 Ω using a high-frequency substrate with a substrate thickness of 200 μm and a dielectric constant of about 3.5, the line width W is about 400 μm. As shown in the above-mentioned Patent Document 2, the quasi-coaxial structure is a pseudo-coaxial structure that has an inner conductor and an outer conductor in the direction perpendicular to the substrate by providing a via in the substrate, and its characteristics can be considered to be equivalent to those of a coaxial line.
[0036] Here, the characteristic impedance Zcoax of the coaxial line can be expressed by the following equation (2).
[0037]
number
[0038] In equation (2), “εc” is the dielectric constant of the inner dielectric of the coaxial line, “D” is the inner diameter of the outer conductor that constitutes the coaxial line, and “d” is the outer diameter of the inner conductor.
[0039] As is clear from formula (2), when the dielectric constant of the circuit board 10 is determined and the ratio "D / d" of the outer diameter D and the inner diameter d does not change, the characteristic impedance of the coaxial line does not change. In general, the characteristic impedance is designed to be 50 Ω, and when the dielectric constant of the board is about 3.5, the ratio "D / d" is about 0.2.
[0040] When a coaxial probe type dielectric spectroscopy sensor is used, one end face of the coaxial line is an open end that can come into contact with the object to be measured M, an electric field is generated in the object to be measured M that is in contact with the open end, and the S11 parameter is calculated based on the reflected wave caused by this electric field. The dielectric spectroscopy system 20 measures the dielectric constant of the object to be measured based on the change in the S11 parameter. At this time, the depth to which the electric field penetrates into the object to be measured M changes depending on the opening diameter of the open end.
[0041] The "penetration depth" is the depth to which the electric field penetrates into the object to be measured M due to the electromagnetic waves output from the measurement surface of the dielectric spectroscopy sensor 100. If a change in the dielectric constant occurs at a location deeper than the penetration depth, the S11 parameter of the coaxial sensor does not change because the electric field does not reach this location. Therefore, it is necessary to ensure a sufficient penetration depth when measuring thin films and living organisms such as cells.
[0042] Fig. 7 is a graph showing the relationship between the distance (penetration depth) from the end face of the object to be measured M and the normalized electric field intensity when the aperture diameter adjustment unit 13 according to this embodiment is not used. The frequency f is set to 5.0 GHz. Curve q1 shown in Fig. 7 is a graph when the aperture diameter is set to 3 mm, and curve q2 is a graph when the aperture diameter is set to 1.6 mm. It can be seen from curves q1 and q2 that the penetration depth of the electric field is greater when the aperture diameter is set to 3 mm.
[0043] That is, the penetration depth of the electric field is related to the electric field strength distribution from the end face of the coaxial sensor, and the larger the aperture diameter, the less the electric field attenuates and the deeper the electric field reaches. Therefore, when designing a dielectric spectroscopy sensor with a desired penetration depth, the aperture diameter at the end face of the dielectric spectroscopy sensor can be adjusted. In addition, by configuring the aperture diameter adjustment unit 13 with a coaxial line and setting the ratio "D / d", it is possible to match the characteristic impedance of the quasi-coaxial structure unit 12 with the characteristic impedance of the connection surface side of the aperture diameter adjustment unit 13 with the quasi-coaxial structure unit 12.
[0044] In this embodiment, an opening diameter adjustment section 13 having a coaxial structure is provided on the end face of the quasi-coaxial structure section 12 (corresponding to the opening H1 shown in Figs. 3A and 3B), whereby the quasi-coaxial structure section 12 converts the transmission line to a coaxial line, and the opening diameter of the coaxial line is changed by the opening diameter adjustment section 13. This achieves both wideband transmission characteristics and freedom in designing the penetration depth.
[0045] The aperture diameter of the aperture diameter adjustment portion 13 may be wider or narrower than the aperture diameter (diameter of the opening H1) of the quasi-coaxial structure portion 12. In this case, the transmission line 11, the quasi-coaxial structure portion 12, and the aperture diameter adjustment portion 13 are designed to have the same characteristic impedance. The specific configuration of the aperture diameter adjustment portion 13 will be described below.
[0046] 5A to 5D are cross-sectional views showing specific examples of the opening diameter adjustment portion 13. Each of the opening diameter adjustment portions 13a to 13d shown in Fig. 5A to 5D has a cylindrical shape, with an upper end p1 being a surface that contacts the measurement surface of the circuit board 10 and a lower end p2 being a surface that contacts the object M to be measured.
[0047] The aperture diameter adjustment unit 13a shown in FIG. 5A has a coaxial probe structure including an internal conductor 51a, a dielectric 52a formed concentrically around the outer periphery of the internal conductor 51a, and an external conductor 53a formed concentrically around the outer periphery of the dielectric 52a. The internal conductor 51a and the external conductor 53a have the same diameter from the upper end p1 to the lower end p2. That is, in the example shown in FIG. 5A, the aperture diameter of the opening at one end of the aperture diameter adjustment unit 13a is the same as that at the other end. With this configuration, the aperture diameter of the measurement surface in contact with the measurement target M (the inner diameter of the external conductor 53a) can be set to L1 (>H1), which is different from the diameter of the opening H1 shown in FIG. 3A and FIG. 3B.
[0048] The aperture diameter adjusting section 13b shown in FIG. 5B includes an internal conductor 51b, a dielectric 52b formed concentrically around the outer periphery of the internal conductor 51b, and an external conductor 53b formed concentrically around the outer periphery of the dielectric 52b. The internal conductor 51b has a diameter that gradually increases from the upper end p1 to the lower end p2. That is, in the example shown in FIG. 5B, the aperture diameter adjusting section 13b has an aperture diameter at one end different from an aperture diameter at the other end, and the aperture diameter changes so as to gradually increase from one end to the other end. With this configuration, the aperture diameter of the measurement surface in contact with the measurement target M can be set to L2 (>H1), which is different from the diameter of the aperture H1.
[0049] The aperture diameter adjustment section 13c shown in FIG. 5C includes an internal conductor 51c, a dielectric 52c formed concentrically around the outer periphery of the internal conductor 51c, and an external conductor 53c formed concentrically around the outer periphery of the dielectric 52c. The internal conductor 51c has a diameter that decreases stepwise from the upper end p1 to the lower end p2. That is, in the example shown in FIG. 5C, the aperture diameter adjustment section 13c has an aperture diameter at one end that is different from the aperture diameter at the other end, and the aperture diameter changes so as to narrow stepwise from one end to the other end. With this configuration, the aperture diameter of the measurement surface in contact with the measurement object M is adjusted to L3 (
[0050] The aperture diameter adjustment section 13d shown in FIG. 5D includes an internal conductor 51d, a dielectric 52d formed concentrically around the outer periphery of the internal conductor 51d, and an external conductor 53d formed concentrically around the outer periphery of the dielectric 52d. The internal conductor 51d has a diameter that decreases continuously from the upper end p1 to the lower end p2. That is, in the example shown in FIG. 5D, the aperture diameter adjustment section 13d has an aperture diameter at one end that is different from the aperture diameter at the other end, and the aperture diameter gradually changes from one end to the other end. With this configuration, the aperture diameter of the measurement surface in contact with the measurement object M can be adjusted to L4(
[0051] FIG. 6 is an explanatory diagram showing an example in which the aperture diameter adjustment section 13 is formed in a quasi-coaxial shape. The aperture diameter adjustment section 13e shown in FIG. 6 has a cylindrical shape, an inner conductor 61 is formed in the center, and a plurality of outer conductors 62 (eight in the figure) are provided on a circle centered on the inner conductor 61. The inner conductor 61 is provided corresponding to the position of the via 33 shown in FIGS. 3A and 3B. The outer conductor 62 is provided at a position that is outside or inside the position of the via 34 shown in FIGS. 3A and 3B. With this configuration, the aperture diameter of the measurement surface in contact with the measurement object M can be adjusted to L5 (
[0052] That is, the opening diameter adjustment portion 13 is connected to the quasi-coaxial structure portion 12, one end (upper end p1) has a predetermined characteristic impedance, and the other end (lower end p2) is a second opening having an opening diameter L1 to L5 (second opening diameter) different from the opening diameter (first opening diameter) of the opening H1.
[0053] Fig. 8 is a graph showing the change in the S21 parameter with respect to the change in frequency when a high-frequency substrate with a thickness of 200 μm and a dielectric constant of about 3.5 is used, the aperture diameter of the quasi-coaxial structure 12 is set to 2 mm, and the straight structure shown in Fig. 5A is used as the aperture diameter adjustment portion 13. The "S21 parameter" is a parameter that indicates the passing characteristics from one arbitrarily set point to another point.
[0054] Curve q12 is a graph when the opening of the quasi-coaxial structure is 2 mm, curve q11 is a graph when the opening diameter of the opening diameter adjustment part 13 is 1 mm, which is 1 / 2 times the opening of the quasi-coaxial structure, and curve q13 is a graph when the opening diameter of the opening diameter adjustment part 13 is 5 mm, which is 2.5 times the opening of the quasi-coaxial structure.
[0055] 10 is a graph showing the change in the S21 parameter with respect to the change in frequency when the aperture diameter of the aperture of the planar coaxial sensor is set to 2 mm and 5 mm without using the aperture diameter adjustment unit 13. In FIG. 10, in the curve q31 where the aperture diameter is 2 mm, the S12 parameter does not change significantly with respect to the change in frequency. However, in the curve q32 where the aperture diameter is 5 mm, the S21 parameter decreases significantly as the frequency increases.
[0056] In contrast, in the graph shown in Figure 8, it can be seen that the electromagnetic wave is efficiently transmitted to the probe end face of the coaxial probe structure in both curves q11 and q13. By efficiently transmitting the electromagnetic wave to the probe end face, the effect of loss due to reflection points is reduced, and the measurement sensitivity of the reflection characteristics can be improved.
[0057] Fig. 9 is a graph showing the electric field intensity distribution from the end face of the aperture diameter adjusting portion 13 in the same design as Fig. 8. Curve q21 in Fig. 9 shows the case where the aperture diameter is 1 mm, curve q22 shows the case where the aperture diameter is 2 mm, and curve q23 shows the case where the aperture diameter is 5 mm. It can be seen from each of the curves q21, q22, and q23 that the larger the aperture diameter is, the deeper the penetration depth is obtained.
[0058] The dielectric spectroscopy sensor 100 according to this embodiment can set the penetration depth of the electric field into the object M to a desired penetration depth and can measure the reflection characteristics of the object M with high accuracy over a wide frequency band. Based on the measured reflection characteristics, the dielectric constant of the object M is calculated as follows.
[0059] A calibration standard and a measurement object M are placed on the end face of the aperture diameter adjustment part 13 having a coaxial probe structure, and the reflected waves when an electromagnetic wave is output for each are measured, and the dielectric constant of the measurement object M is calculated using the following equations (3) and (4).
[0060]
number
[0061]
number
[0062] In equations (3) and (4), "ρ" is the corrected reflection coefficient S11, "y" is the linear mapping of admittance, "ε" is the dielectric constant of the measurement object M, "G0" is the conductance of the coaxial probe in vacuum, and "C0" is the capacitance of the coaxial probe in vacuum. The subscripts "1" to "4" indicate the calibration standards, and "m" indicates the measurement object.
[0063] The measured dielectric constant can be used for material evaluation, time series characteristic changes of the measurement object M, quantification of biological component concentration, etc. The ratio of "D / d" may be changed by using a material with a dielectric constant different from that of the circuit board 10.
[0064] In the conventional method described in the above-mentioned Patent Document 2, the dielectric spectroscopy sensor does not include the aperture diameter adjustment unit 13, which is a characteristic feature of this embodiment, and is composed of only the connection transmission line and the quasi-coaxial structure. Therefore, in order to change the penetration depth of the electric field, it is necessary to increase the aperture diameter of the quasi-coaxial structure.
[0065] In this case, the TEM mode electromagnetic waves transmitted through the microstrip wiring or coplanar wiring pass through a gap of the order of 100 μm. Therefore, if the opening diameter of the quasi-coaxial structure is extremely large, the quasi-coaxial structure will exhibit characteristics close to those of an open end, and the electromagnetic waves will be reflected at the interface between the transmission line and the quasi-coaxial structure.
[0066] For example, when a microstrip wiring with a line width of 400 μm is used for the transmission line, the microstrip wiring side is the first port, and the end face of the quasi-coaxial structure part is the second port, the transmission characteristics of the electromagnetic waves deteriorate significantly when the opening diameter is large, as shown in Figure 10.
[0067] In contrast, in this embodiment, in addition to the transmission line 11 and the quasi-coaxial structure portion 12, an aperture diameter adjusting portion 13 is provided, and the characteristic impedance of the end face of the coaxial probe structure in the aperture diameter adjusting portion 13 is designed to match the characteristic impedance of the transmission line 11, thereby making it possible to reduce reflection at each interface.
[0068] Thus, the dielectric spectroscopy sensor 100 of this embodiment is a dielectric spectroscopy sensor 100 connected to a dielectric spectroscopy system 20, and comprises a transmission line 11 having a predetermined characteristic impedance that matches the dielectric spectroscopy system 20, a quasi-coaxial structure 12 connected to the transmission line 11 and having a first opening with a first opening diameter, and an aperture diameter adjustment section 13 connected to the quasi-coaxial structure 12, one end of which has a predetermined characteristic impedance and the other end of which is a second opening with a second opening diameter different from the first opening diameter.
[0069] In the dielectric spectroscopy sensor 100 according to this embodiment, the aperture diameter adjustment unit 13 is provided, so that the aperture diameter of the opening in contact with the measurement object M can be set arbitrarily. As a result, the penetration depth of the electric field can be increased, and even if the dielectric constant of the measurement object M changes at a deeper portion, the change in the dielectric constant can be detected with high accuracy.
[0070] Furthermore, since the transmission line 11 and the quasi-coaxial structure 12 are constructed of metal patterns formed on the first substrate 21 and the second substrate 31, which are dielectric substrates, the dielectric spectroscopy sensor 100 can be made smaller and thinner.
[0071] The quasi-coaxial structure 12 includes a first via (vias 24, 33) formed at the center of a circular opening formed in the first substrate 21 and the second substrate 31 (dielectric substrate), and a plurality of second vias (vias 25, 34) formed along the circumference of the opening H1. This allows the quasi-coaxial structure 12 to be easily constructed and the dielectric substrate to be made smaller.
[0072] In this embodiment, as shown in Fig. 5A, the aperture diameter adjustment unit 13 has an aperture diameter at one end that is the same as the aperture diameter at the other end. Therefore, the aperture diameter L1 shown in Fig. 5A is different from the aperture diameter H1 shown in Figs. 3A and 3B. Therefore, the aperture diameter of the aperture diameter adjustment unit 13 can be set to any aperture diameter, and the penetration depth of the electric field can be increased. As a result, the measurement accuracy of the dielectric spectroscopy sensor 100 can be improved.
[0073] In this embodiment, as shown in Figures 5B and 5C, the aperture diameter of the aperture diameter adjusting unit 13 changes stepwise from one end to the other end. Therefore, the aperture diameter of the aperture diameter adjusting unit 13 can be set to any aperture diameter, and the penetration depth of the electric field can be increased. As a result, the measurement accuracy of the dielectric spectroscopy sensor 100 can be improved.
[0074] In this embodiment, as shown in Fig. 5D, the aperture diameter of the aperture diameter adjusting unit 13 gradually changes from one end to the other end. Therefore, the aperture diameter of the aperture diameter adjusting unit 13 can be set to any aperture diameter, and the penetration depth of the electric field can be increased. As a result, the measurement accuracy of the dielectric spectroscopy sensor 100 can be improved.
[0075] In this embodiment, as shown in Fig. 6, the aperture diameter adjustment unit 13 having a quasi-coaxial cable shape is used. Therefore, the aperture diameter of the aperture diameter adjustment unit 13 can be set to any aperture diameter, and the penetration depth of the electric field can be increased. As a result, the measurement accuracy of the dielectric spectroscopy sensor 100 can be improved.
[0076] In this embodiment, by mounting an aperture diameter adjustment section 13 having a coaxial probe structure with a wide band and any penetration depth suitable for measuring thin-layer substrates, cells, biological samples, etc. on a dielectric substrate whose substrate thickness and dielectric constant are specified, it becomes possible to measure the dielectric constant of the measurement object M with high accuracy.
[0077] The present invention is not limited to the above-described embodiment, and various modifications are possible within the scope of the present invention. [Explanation of symbols]
[0078] 10 Circuit Board 11 Transmission Lines 11a, 11b Metal pattern 12 Quasi-coaxial structure 13, 13a~13e Opening diameter adjustment part 20 Dielectric Spectroscopy System 21 First board 24, 33 vias (first vias) 25, 34 vias (second vias) 31 Second board 32, 35 Metal pattern 51a, 51b, 51c, 51d Inner conductor 52a, 52b, 52c, 52d Dielectric 53a, 53b, 53c, 53d Outer conductor 61 Inner conductor 62 Outer conductor 100 Dielectric Spectroscopy Sensor M Measurement object
Claims
1. 1. A dielectric spectroscopy sensor for connection to a dielectric spectroscopy system, comprising: a transmission line having a predetermined characteristic impedance that matches the dielectric spectroscopy system; a quasi-coaxial structure connected to the transmission line and having a first opening with a first opening diameter; an aperture diameter adjusting section connected to the quasi-coaxial structure section, one end of which is set to the predetermined characteristic impedance and the other end of which is set to a second aperture having a second aperture diameter different from the first aperture diameter; The diameter of the second opening is set so that the electric field generated at the second opening reaches a desired penetration depth for measuring the dielectric constant from an end face of the measurement object. Dielectric spectroscopy sensor.
2. The transmission line and the quasi-coaxial structure include a metal pattern formed on a dielectric substrate. The dielectric spectroscopy sensor of claim 1 .
3. The quasi-coaxial structure includes a first via formed at the center of a circular opening formed in the dielectric substrate; a plurality of second vias formed around a circumference of the opening. The dielectric spectroscopy sensor according to claim 2 .
4. The opening diameter adjustment portion has an opening diameter at the one end equal to an opening diameter at the other end. The dielectric spectroscopic sensor according to any one of claims 1 to 3.
5. The opening diameter adjustment portion has an opening diameter at the one end different from an opening diameter at the other end, and the opening diameter gradually changes from the one end toward the other end. The dielectric spectroscopic sensor according to any one of claims 1 to 3.
6. The opening diameter adjustment portion has an opening diameter at the one end different from an opening diameter at the other end, and the opening diameter changes stepwise from the one end to the other end. The dielectric spectroscopic sensor according to any one of claims 1 to 3.
7. The opening diameter adjustment portion includes an inner conductor arranged at a position corresponding to the first via, and an outer conductor arranged at a position corresponding to the outside or inside of the second via. The dielectric spectroscopy sensor according to claim 3 .
Citation Information
Patent Citations
Method for measuring concentration distribution of water
JP1996320297A
Swelling evaluation method
JP1998137193A
Multiprobe for dielectric relaxation measurement
JP1998142169A
Probe for dielectric relaxation measurement
JP1998142170A
Complex dielectric constant measuring probe
JP2005069779A