1. Field of Invention
The present invention relates to an apparatus for storing electrical energy. More particularly, the present invention relates to a magnetic capacitor for storing electrical energy.
2. Description of Related Art
Energy storage parts play important roles in our daily life since they influence the performance and the working time of electrical devices. Components such as capacitors used in the circuits and batteries used in portable devices are the most common energy storage parts.
The Giant Magnetoresistance Effect (GMR) is a quantum mechanical effect observed in structures with alternating thin magnetic and thin nonmagnetic sections. The GMR effect shows a significant change in electrical resistance from the zero-field high resistance state to the high-field low resistance state according to an applied external field.
Therefore, the GMR effect can be used to as an insulator with good performance. Thus, the apparatus with the GMR effect can be implemented to store electrical energy. A magnetic capacitor is an example of the apparatus with the GMR effect. Magnetic capacitors are formed with magnetic plates. A magnetic plate has a north pole and a south pole, and the north pole and south pole have the strongest magnetic field along the magnetic plate. In reality, the magnetic field strength is summarized and combined with all magnetic dipoles along easy axis. Please refer to
For the foregoing reasons, there is a need to have an apparatus with the GMR effect and large capacitance values to store electrical energy.
It is therefore an objective of the present invention to provide an apparatus for storing electrical energy with large capacitance values.
According to one embodiment of the present invention, the apparatus includes a first magnetic layer, a second magnetic layer, and a dielectric layer. The first magnetic layer includes a first magnetic section and a second magnetic section. The first magnetic section has magnetic dipoles with horizontal directions. The second magnetic section has magnetic dipoles with vertical directions. The second magnetic layer includes a third magnetic section and a fourth magnetic section. The third magnetic section has magnetic dipoles with horizontal directions. The fourth magnetic section has magnetic dipoles with vertical directions. The dielectric layer is configured between the first magnetic layer and the second magnetic layer. The dielectric layer is arranged to store electrical energy. The first magnetic layer and the second magnetic layer are arranged to prevent electrical energy leakage. The vertical magnetic dipoles in the second magnetic section and the fourth magnetic section are designed to increase the capacitance of the apparatus.
According to another embodiment of the present invention, the apparatus includes a first magnetic layer, a second magnetic layer, and a dielectric layer. The first magnetic layer includes a first magnetic section and a second magnetic section. The second magnetic section has magnetic dipoles with vertical directions. The second magnetic layer includes a third magnetic section and a fourth magnetic section. The fourth magnetic section has magnetic dipoles with vertical directions. The dielectric layer is configured between the first magnetic layer and the second magnetic layer. The vertical magnetic dipoles in the second magnetic section and the fourth magnetic section are designed to increase the capacitance of the apparatus.
According to yet another embodiment of the present invention, the apparatus includes a first electrode, a second electrode, and a dielectric layer. The first electrode includes a first conductive section and a second conductive section. The second conductive section has magnetic dipoles with vertical directions. The second electrode includes a third conductive section and a fourth conductive section. The fourth conductive section has magnetic dipoles with vertical directions. The dielectric layer is configured between the first electrode and the second electrode. The vertical magnetic dipoles in the second conductive section and the fourth conductive section are designed to increase the capacitance of the apparatus.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the invention as claimed.
These and other features, aspects, and advantages of the present invention will become better understood with regard to the following description, appended claims, and accompanying drawings where:
Reference will now be made in detail to the present preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
Reference is now made to
The first magnetic layer 210 has a first surface 215 with saw tooth roughness. The second magnetic layer 220 has a second surface 225 with saw tooth roughness as well. The dielectric layer 230 is configured in between the first magnetic layer 210 and the second magnetic layer 220. The dielectric layer 230 is arranged to store electrical energy. The first magnetic layer 210 and the second magnetic layer 220 are arranged to prevent electrical energy leakage. The saw tooth roughness on the first surface 215 and the second surface 225 may increase the surface area of the first surface 215 and the second surface 225, and thus may increase the capacitance of the magnetic capacitor.
Reference is now made to
Namely, when the dipoles of the first magnetic section 212 and the dipoles of the third magnetic section 222 have the same directions, the spin directions of the electrons of the dielectric section 230 point toward one direction. There is no current leakage thereby; thus the energy is stored. It is noted that the symbols are just arranged to represent the dipoles of the magnetic sections, and are not arranged to restrict the dipole directions.
The arrows shown in the first magnetic section 212 and the third magnetic section 222 are parallel to each other. In one aspect of this invention, the arrows shown in the first magnetic section 212 and the third magnetic section 222 are directed along the easy axis. However, tt should be noted that when the apparatus stores electrical energy, the dipole directions of the first magnetic section and the dipole directions of the third magnetic section may be parallel to each other (pointing to the same directions) or anti-parallel to each other (pointing to the opposite directions). On the other hand, when the apparatus stores electrical energy, the magnetic dipoles of the second magnetic section 214 is perpendicular to the magnetic dipoles of the first magnetic section 212, and the magnetic dipoles of the fourth magnetic section 224 is perpendicular to the magnetic dipoles of the third magnetic section 222. In one aspect of this invention, the arrows shown in the second magnetic section 214 and the fourth magnetic section 224 are perpendicular to the easy axis. Even though the arrows shown in the second magnetic section 214 and the fourth magnetic section 224 are anti-parallel to each other. It should be noted that the dipole directions in the second magnetic section and the fourth magnetic section of a magnetic capacitor may be anti-parallel to each other (pointing to the opposite directions) or parallel to each other (pointing to the same directions), as shown in
The first magnetic layer 210 may be the first electrode of a magnetic capacitor. The second magnetic layer 220 may be the second electrode of a magnetic capacitor. The first magnetic section 212, second magnetic section 214, third magnetic section 222, and fourth magnetic section magnetic section 224 are conductive sections.
Reference is now made to
In conclusion, the invention provides an apparatus for storing electrical energy. Due to the nano magneto effect on the capacitor plates, the apparatus for storing electrical energy has large capacitance.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.
This application is a continuation-in-part of U.S. application Ser. No. 12/101,309, filed Apr. 11, 2008, which is herein incorporated by reference.
Number | Date | Country | |
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Parent | 12101309 | Apr 2008 | US |
Child | 12409004 | US |