Other objects, features and advantages of the present invention will become more apparent from the following detailed description when read in conjunction with the accompanying drawings, in which:
A description will now be given, with reference to the accompanying drawings, of embodiments of the present invention.
As shown in
The base substrate 12 is made of a conductive material having low moisture permeability. The base substrate 12 is, for example, made of a metal such as copper, aluminum, SPC steel, cobalt steel or stainless steel, or a ceramics having a metal layer plated on the surface thereof. It is preferable that the base substrate 12 is made of a material to be soldered easily. The base substrate 12 may be, for example, made of SPC steel having electroless nickel and electrolytic gold coated on a surface thereof. An insulating layer (not shown) may be coated on an inner face of the metal cap 11, because an electrical short is restrained between the capacitor element 200 and the metal cap 11.
The solid electrolytic capacitor 100 in accordance with the embodiment has a high humidity resistance, because the capacitor element 200 is sealed with the metal cap 11 and the base substrate 12 that have high sealing performance and have high shielding against external environment. It is therefore possible to restrain characteristics degradation of the solid electrolytic capacitor 100.
As shown in
The insulating member 32 is, for example, made of a glass such as a hard glass or a soft glass, or a rubber. The insulating member 32 is, preferably, made of a soft glass, in a case where the base substrate 12 is made of a material such as SPC steel having relatively high thermal expansion coefficient. On the other hand, the insulating member 32 is, preferably, made of a hard glass, in a case where the base substrate 12 is made of a material such as cobalt steel having relatively low thermal expansion coefficient. In these cases, it is possible to improve sealing performance of the case 10. And it is preferable that the insulating member 32 is made of the soft glass from a viewpoint of cost.
As shown in
Here, the sealing property at the extractor terminal 31 is degraded, in a case where the extractor terminal 31 is made of a material having a thermal expansion coefficient higher than that of the insulating member 32. For example, the sealing property of the solid electrolytic capacitor 100 is degraded because of a differential of the thermal expansion coefficient when the insulating member 32 made of glass is melted and hardened. This results in reduction of the humidity resistance of the solid electrolytic capacitor 100. Here, there is a case where the extractor terminal 31 is made of a material having the thermal expansion coefficient lower than that of the insulating member 32. The electrical resistance of the extractor terminal 31 is, however, increased, because a general conductive material does not have both low thermal expansion coefficient and high electrical conductivity. As a result, ESR of the solid electrolytic capacitor 100 is increased.
However, with the structure in accordance with the embodiment, it is possible to reduce the electrical resistance of the extractor terminal 31, because the core member 31a is made of the material having the electrical conductivity higher than that of the cover member 31b. It is therefore possible to reduce the ESR of the solid electrolytic capacitor 100. Further, it is possible to keep the sealing property at the extractor terminal 31, because the thermal expansion coefficient of the cover member 31b is lower than that of the insulating member 32. It is therefore possible to restrain the reduction of the humidity resistance of the solid electrolytic capacitor 100. Accordingly, the solid electrolytic capacitor 100 has both low ESR and high humidity resistance.
Table 1 shows combinations of a material to be used as the core member 31a, a material to be used as the cover member 31b, and a material to be used as the insulating member 32. With the combination shown in Table 1, it is possible to reduce the ESR in a frequency range at 100 kHz. And, Table 2 shows another material to be used as the core member 31a. It is preferable to use pure copper, copper alloy or aluminum as the core member 31a, because gold and silver is relatively expensive.
Adhesiveness is increased between the cover member 31b and the insulating member 32 in a case where kovar is used as the cover member 31b and a hard glass is used as the insulating member 32, because adhesiveness between the kovar and the hard glass is high. It is preferable that the core member 31a is jointed to the cover member 31b. For example, it is preferable that the core member 31a is jointed to the cover member 31b with a cold jointing, a diffusion jointing or the like, because contact resistance is reduced between the core member 31a and the cover member 31b.
It is preferable that the core member 31a is jointed to the cover member 31b metallurgically. It is possible to joint the core member 31a to the cover member 31b metallurgically with a melting process of the material composing the core member 31a and the material composing the cover member 31b and a hot jointing process of each material. In this case, it is possible to further reduce the contact resistance between the core member 31a and the cover member 31b. It is preferable that the extractor terminal 31 is can be soldered easily. It is therefore preferable that the surface of the extractor terminal 31 is coated with electroless nickel and electrolytic gold.
The base substrate 12 has a plurality of convex portions 12a on a bottom face thereof. Each of the convex portions 12a acts as a cathode terminal, as mentioned later. It is therefore possible to form wiring pattern under the base substrate 12. And it is possible to prevent displacement of the solid electrolytic capacitor 100 when mounted, because a plurality of the convex portions 12a are provided. Mountability of the solid electrolytic capacitor 100 is therefore improved. The convex portion 12a may be provided only at a necessary position, because a part of the bottom face of the base substrate 12 is not used as the cathode terminal. It is therefore possible to reduce the weight of the base substrate 12.
The base substrate 12 has a convex portion 12b on a side of the capacitor element 200. The convex portion 12b is a plane-shaped region where the capacitor element 200 is to be mounted. It is possible to adhere the capacitor element 200 to the base substrate 12 with adhesive agent, because the region where the capacitor element 200 is to be mounted has a plane shape.
Next, a description will be given of the capacitor element 200, with reference to
The adhesive agent 25 is made of a conductive material such as silver. The unit element 20 has a structure in which a solid electrolyte layer 22, a carbon paste layer 23 and an extractor cathode layer 24 are stacked on whole of the anode foil 21 in order. The anode foil 21 is made of a valve metal having a dielectric oxide layer formed on a surface thereof. The valve metal used for the anode foil 21 is a metal such as aluminum. It is possible to form the dielectric oxide layer by subjecting the surface of the valve metal to an etching treatment and a chemical conversion treatment.
It is possible to form the anode foil 21 by cutting a valve metal having a dielectric oxide layer formed on a surface thereof into a given shape. In the cutting process, the valve metal at the end face of the anode foil 21 is exposed, and a defect is formed in the dielectric oxide layer. It is therefore necessary to form a dielectric oxide layer on the exposed valve metal. It is possible to form the dielectric oxide layer on the exposed valve metal by carrying out a chemical conversion treatment and a thermal treatment few times after the cutting. The chemical conversion treatment is carried out at a voltage near a formation voltage of the dielectric oxide layer, using chemical liquid mainly containing 0.5 wt % to 2 wt % ammonium adipate. The thermal treatment is, for example, carried out in a temperature range of 200 degrees C. to 400 degrees C.
The solid electrolyte layer 22 is made of functional polymer and is formed on a surface of the anode foil 21. The functional polymer solid electrolyte is made of 3,4-polyethylene dioxythiophene (PEDT) or the like. It is possible to form the functional polymer solid electrolyte by impregnating polymerizable monomers and an oxidizer into the anode foil. A description will be given of a forming method of the solid electrolyte.
A compound liquid including a monomer to be the solid electrolyte and an oxidizer is impregnated into the anode foil 21. The monomer is a compound solvent including a volatile solvent. Concentration of the monomer in the compound solvent is within a range 1 wt % to 50 wt %. The concentration is, preferably, within a range 10 wt % to 35 wt %. The oxidizer is contained in an alcohol solvent by 40 wt % to 60 wt %. In the embodiment, a solvent containing 60 wt % oxidizer is used. Next, the compound liquid impregnated into the anode foil is subjected to a heat polymerization, and the solid electrolyte layer 22 is formed.
In addition, an insulating layer 26 is formed on an exposed area of the solid electrolyte layer 22 as shown in
The extractor cathode layer 24 is, for example, made of silver paste. In the embodiment, the extractor cathode layer 24 of the unit element 20 at lower side is electrically coupled to the base substrate 12 with the adhesive agent 25. And the base substrate 12 and the metal cap 11 act as a cathode. The case 10 therefore acts as a cathode totally. Accordingly, it is possible to reduce ESL of the solid electrolytic capacitor 100.
Each of the anode foils 21 has an anodic lead portion 21a at both ends thereof. The anodic lead portion 21a of each of the unit elements 20 is coupled to each other through a stripe-shaped metal board 27 with a welding. The stripe-shaped metal board of bottom position is coupled to the extractor terminal 31 with a laser welding or the like.
Next, a description will be given of a position and a shape of the extractor terminal 31.
As shown in
In the embodiment, the core member 31a corresponds to the first conductive member, and the cover member 31b corresponds to the second conductive member.
The solid electrolytic capacitor in accordance with the above-mentioned embodiment was fabricated. The characteristics were investigated.
In Example, the solid electrolytic capacitor 100 shown in
The cover member 31b was made of nickel-iron alloy including 50 wt % iron and 50 wt % nickel, and had thermal expansion coefficient and the electrical resistance of 95×10−7 (1/K) and 50×10−8 Ωm respectively. The core member 31a was made of pure copper having electrical resistance of 1.67×10−8 Ωm. The extractor terminal 31 was made with an extracting process of melted copper and melted nickel-iron alloy and a hot-jointing process of the copper and the nickel-iron. Electroless nickel and electrolytic gold were coated on the surface of the cover member 31b. The diameter of the core member 31a was 0.39 mm. The diameter of the extractor terminal 31 was 1 mm.
The metal cap 11 was made of a metal having electrolytic nickel-iron coated on the surface thereof. The metal cap 11 was welded to the base substrate 12 with a projection welding method, and the solid electrolytic capacitor 100 was sealed. In the capacitor element 200 in accordance with Example, four unit elements 20 were stacked. The solid electrolytic capacitor in accordance with Example had capacitance of 2.5 V 1000 μF.
In Comparative example, the above-mentioned nickel-iron alloy was used as an extractor terminal. In comparative example, the extractor terminal did not include a core member made of another material. The other structure was as same as Example. The solid electrolytic capacitor in accordance with Comparative example had capacitance of 2.5 V 1000 μF.
Table 3 shows electrical capacitance, tan δ, leakage current, and the ESR of the solid electrolytic capacitors in accordance with Example and Comparative example. Thirty capacitors in accordance with Example and Comparative example were fabricated, and each value in Table 3 shows average value thereof.
As shown in Table 3, with respect to the solid electrolytic capacitor in accordance with Example, the ESR is reduced considerably, compared to the solid electrolytic capacitor in accordance with Comparative example. This may be because the electrical resistance of the extractor terminal was reduced because of the core member having high conductivity. In addition, with respect to the solid electrolytic capacitor in accordance with Example, the electrical capacitance is large, the tans is low, and the leakage current is small.
The present invention is not limited to the specifically disclosed embodiments, but include other embodiments and variations without departing from the scope of the present invention.
The present application is based on Japanese Patent Application No. 2006-279477 filed on Oct. 13, 2006, the entire disclosure of which is hereby incorporated by reference.
| Number | Date | Country | Kind |
|---|---|---|---|
| 2006-279477 | Oct 2006 | JP | national |