ANTENNA DUPLEXER, AND RF MODULE AND COMMUNICATION APPARATUS USING THE SAME
One of plurality of transmission terminals connected to a transmission filter and a receiving terminal connected to a receiving filter is a balanced type terminal, and another is an unbalanced type terminal. The transmission filter and the receiving filter includes surface acoustic wave resonators or film bulk acoustic resonators. The balanced type terminal is connected to a longitudinal mode coupled surface acoustic wave filter.
The present application is a divisional of U.S. application Ser. No. 12/185,342, filed Aug. 4, 2008, which is a divisional of U.S. application Ser. No. 11/195,820, filed Aug. 3, 2005, which is now U.S. Pat. No. 7,446,629, issued Nov. 4, 2008.
BACKGROUND OF THE INVENTION1. Field of the Invention
The present invention relates to an antenna duplexer, and more specifically to an antenna duplexer including a transmission filter and a receiving filter. The present invention also relates to an RF module and a communication apparatus using such an antenna duplexer.
2. Description of the Related Art
Recently, along with the development of mobile communication, there have been demands for devices used for mobile communication which provide higher performance with smaller sizes. Antenna duplexers, as well as other devices, are being more and more reduced in size by using surface acoustic wave filters (SAW filters) or filters using film bulk acoustic resonators (FBARs). Semiconductor devices such as mixers and low noise amplifiers are being altered to have a balanced structure for the purpose of improving the noise characteristic against inter-device crosstalk and the like. Antenna duplexers to be used in connection with such semiconductor devices need to have a balanced structure.
In the case of, for example, a PCS (Personal Communication System), the transmission filter 14 and the receiving filter 16 are configured such that the high frequency rejection band of the transmission filter 14 overlaps the passband of the receiving filter 16 and such that the low frequency rejection band of the receiving filter 16 overlaps the passband of the transmission filter 14.
In the case of, for example, a PCS (Personal Communication System), the transmission filter 21 and the receiving filter 22 are configured such that the high frequency rejection band of the transmission filter 21 overlaps the passband of the receiving filter 22 and such that the low frequency rejection band of the receiving filter 22 overlaps the passband of the transmission filter 21.
As described above, the conventional antenna duplexers have a ladder circuit including FBARs or SAW resonators. However, the transmission terminal and the receiving terminal in the conventional antenna duplexers are of an unbalanced type. Therefore, a semiconductor device or the like having a balanced type terminal cannot be directly connected to such an antenna duplexer. In addition, the conventional antenna duplexers, which include an unbalanced type terminal, have characteristics which are deteriorated by the influence of noise such as crosstalk and the like.
BRIEF SUMMARY OF THE INVENTIONTherefore, an object of the present invention is to provide an antenna duplexer for allowing a semiconductor device having a balanced type terminal to be directly connected thereto. Another object of the present invention is to provide an RF module and a communication apparatus using such an antenna duplexer.
The present invention has the following features to attain the objects mentioned above. A first aspect of the present invention is directed to: an antenna duplexer comprising an antenna; a transmission terminal; a receiving terminal; a transmission filter connected between the antenna terminal and the transmission terminal; and a receiving filter connected between the antenna terminal and the receiving terminal. Either one of the transmission terminal connected to the transmission filter and the receiving terminal connected to the receiving filter is a balanced type terminal, and the other is an unbalanced type terminal. The transmission filter and the receiving filter includes surface acoustic wave resonators or film bulk acoustic resonators, and the balanced type terminal is connected to a longitudinal mode coupled surface acoustic wave filter.
According to the first aspect of the present invention, either one of the transmission terminal connected to the transmission filter and the receiving terminal connected to the receiving filter is a balanced type terminal, and the other is an unbalanced type terminal. Therefore, an antenna duplexer which can be directly connected to a semiconductor device having a balanced type terminal without using abalun or the like is provided. As a result, an apparatus including such an antenna duplexer is entirely reduced in size. The balanced type terminal is connected to a longitudinal mode coupled surface acoustic wave filter. This realizes an efficient balanced-unbalanced conversion.
Preferably, the transmission filter or the receiving filter which is connected to the unbalanced type terminal is a ladder type filter including the surface acoustic wave resonators or the film bulk acoustic resonators.
By using a ladder type filter as a filter connected to the unbalanced type terminal as described above, a filter characteristic having low loss can be obtained, and thus a desirable frequency response can be obtained.
Preferably, the transmission filter or the receiving filter which is connected to the balanced type terminal includes at least one surface acoustic wave resonator or at least one film bulk acoustic resonator connected in series between the longitudinal mode coupled surface acoustic wave filter and the antenna terminal.
The longitudinal mode coupled surface acoustic wave filter has a filter characteristic achieved by multiple mode coupling. Therefore, as long as at least one surface acoustic wave resonator or at least one film bulk acoustic resonator is connected between the longitudinal mode coupled surface acoustic wave filter and the antenna terminal, a desirable filter characteristic can be obtained.
Preferably, the transmission filter or the receiving filter which is connected to the balanced type terminal includes a ladder type filter, including the surface acoustic wave resonators or the film bulk acoustic resonators, connected between the longitudinal mode coupled surface acoustic wave filter and the antenna terminal.
Owing to such a structure, a more desirable filter characteristic can be obtained.
Preferably, the antenna duplexer further comprises a phase shifter for adjusting the phase of an impedance of the transmission filter or the receiving filter, at least either between the transmission filter and the antenna terminal or between the receiving filter and the antenna terminal.
Owing to such a structure, a signal can be prevented from bypassing.
For example, the phase shifter is preferably a strip line or a lumped constant device.
Owing to such a structure, the phase of the filter connected to the phase shifter can be adjusted.
Preferably, the transmission filter and/or the receiving filter connected to the phase shifter, which is also connected to the antenna terminal, includes a film bulk acoustic resonator connected to the phase shifter.
With the structure where the film bulk acoustic resonator is connected to the phase shifter in series, the power durability of the filter at the rejection band is improved.
Preferably, the phase shifter and the film bulk acoustic resonator connected to the phase shifter are provided on one (the same) substrate.
Owing to such a structure, the reduction in loss of the phase shifter is realized, and in addition, the power durability of the filter at the rejection band is improved.
In one embodiment, the transmission terminal connected to the transmission filter is preferably the unbalanced type terminal.
Owing to such a structure, a low noise amplifier connected to the receiving terminal, which is often a balanced type terminal, can be connected to a balanced type terminal of the antenna duplexer. In addition, by using the balanced type terminal as the receiving terminal, the signal to noise characteristic is improved.
Preferably, the transmission terminal, as the unbalanced type terminal connected to the transmission filter, is connected to the film bulk acoustic resonator.
Owing to such a structure, the power durability against a high output transmission signal from the power amplifier connected to the transmission terminal is improved.
Preferably, the transmission filter is a ladder type filter, and a series resonator in the ladder type filter includes the film bulk acoustic resonators.
Owing to such a structure, the phase of the impedance of a transmission filter as seen from the antenna terminal becomes closer to being open. Therefore, leakage of a receiving signal toward the transmission side is reduced, and the phase shifter on the transmission side can be simplified or even omitted.
Preferably, a parallel resonator in the ladder type filter includes the film bulk acoustic resonators.
By using a ladder type filter including film bulk acoustic resonators as the transmission filter as described above, a desirable filter characteristic is more easily obtained.
Preferably, the receiving filter includes at least one film bulk acoustic resonator as an acoustic wave resonator other than the longitudinal mode coupled surface acoustic wave filter.
Owing to such a structure, a desirable receiving filter characteristic is more easily obtained.
Preferably, the transmission filter and the receiving filter are mounted on one (the same) mounting substrate.
Owing to such a structure, the antenna duplexer can be reduced in size.
In one embodiment, the transmission filter and/or the receiving filter is preferably mounted on the mounting substrate by face-down bonding.
Owing to such a structure, a low-profile antenna duplexer is provided.
Preferably, the transmission filter and the receiving filter have substantially an equal thickness.
Owing to such a structure, the antenna duplexer can be adsorbed by a pick-up tool used for mounting.
In one embodiment, the transmission filter and the receiving filter are preferably molded by a resin.
Owing to such a structure, the upper surface of the antenna duplex can be made flat.
Preferably, an upper surface of the resin is substantially flat.
Owing to such a structure, the antenna duplexer can be adsorbed by a pick-up tool used for mounting.
A second aspect of the present invention is directed to an RF module including an antenna duplexer and a semiconductor device which are mounted on one (the same) mounting substrate. The antenna duplexer includes: an antenna; a transmission terminal; a receiving terminal; a transmission filter connected between the antenna terminal and the transmission terminal; and a receiving filter connected between the antenna terminal and the receiving terminal. Either one of the transmission terminal connected to the transmission filter and the receiving terminal connected to the receiving filter is a balanced type terminal, and the other is an unbalanced type terminal. The transmission filter and the receiving filter includes surface acoustic wave resonators or film bulk acoustic resonators, and the balanced type terminal is connected to a longitudinal mode coupled surface acoustic wave filter.
According to the second aspect of the present invention, a compact RF device having superb characteristics is provided.
For example, the semiconductor device is a low noise amplifier.
In this case, an RF device having superb receiving characteristics is provided.
For example, the semiconductor device is a switch.
In this case, an RF device including an antenna duplexer compatible to multi-mode or multi-band applications is provided.
A third aspect of the present invention is directed to a communication apparatus including an antenna duplexer. The antenna duplexer includes: an antenna; a transmission terminal; a receiving terminal; a transmission filter connected between the antenna terminal and the transmission terminal; and a receiving filter connected between the antenna terminal and the receiving terminal. Either one of the transmission terminal connected to the transmission filter and the receiving terminal connected to the receiving filter is a balanced type terminal, and the other is an unbalanced type terminal. The transmission filter and the receiving filter includes surface acoustic wave resonators or film bulk acoustic resonators, and the balanced type terminal is connected to a longitudinal mode coupled surface acoustic wave filter.
According to the third aspect of the present invention, a compact communication apparatus having superb receiving characteristics and transmission characteristics is provided.
As described above, according to the present invention, an antenna duplexer which can be directly connected to an RF device having a balanced type terminal is provided. In addition, an RF module and a communication apparatus including such an antenna duplexer are provided.
These and other objects, features, aspects and advantages of the present invention will become more apparent from the following detailed description of the present invention when taken in conjunction with the accompanying drawings.
Hereinafter, the present invention will be described by way of embodiments with reference to the attached drawings.
First EmbodimentAs described above, the antenna duplexer 100 realizes the balanced type terminal Rx using a filter having a balanced-unbalanced conversion function. The antenna duplexer 100 can be directly connected to a balanced type semiconductor device (not shown) such as a low noise amplifier or the like without using a balanced-unbalanced converter such as a balun or the like.
The phase shifter 102 is a device for adjusting the phase of an impedance of the receiving filter 103 in order to prevent a transmission signal from bypassing to the receiving filter 103. The phase shifter 102 is a strip line or a lumped constant device.
As shown in
In
As described above, the antenna duplexer 100a realizes the balanced type terminal Tx using a filter having a balanced-unbalanced conversion function. The antenna duplexer 100a can be directly connected to a balanced type semiconductor device (not shown) such as a power amplifier or the like without using a balanced-unbalanced converter such as a balun or the like.
The phase shifter 102a is a device for adjusting the phase of an impedance of the receiving filter 103a in order to prevent a transmission signal from bypassing to the receiving filter 103a. The phase shifter 102a includes a strip line or a lumped constant device.
As shown in
As described above, in the first embodiment, either one of the transmission terminal connected to the transmission filter and the receiving terminal connected to the receiving filter is a balanced type terminal, and the other is an unbalanced type terminal. The balanced type terminal is connected to a longitudinal mode coupled surface acoustic wave filter. Owing to such a structure, efficient balanced-unbalanced conversion is made possible.
A longitudinal mode coupled SAW filter can obtain a filter characteristic by acoustically coupling and superimposing a plurality of modes (the symmetrical mode and the asymmetrical mode) generated in the same direction as the propagation direction of the surface acoustic wave (transverse direction in
By using a ladder type filter, a desirable frequency response can be easily obtained as described above.
In the transmission filter 101 having a ladder type circuit, the number of the FBARs 201, 202 and 203 as acoustic wave resonators connected in series is larger than the number of FBARs 204 and 205 as acoustic wave resonators connected in parallel to the series resonator. This structure is suitable for attenuating the characteristic in a high frequency range (see
The transmission filter 101 receives a transmission power from a power amplifier (not shown). Therefore, the transmission filter 101 is required to have a power durability. The power durability is improved by using a ladder type circuit including FBARs for the transmission filter 101. In the transmission filter 101, the acoustic wave resonators may either be FBARs or SAW resonators. However, in order to improve the power durability, at least an acoustic wave resonator connected to the transmission terminal Tx, which is an unbalanced type terminal, is preferably a FBAR.
In the transmission filter 101 provided as a ladder type filter, the acoustic wave resonator connected on the antenna side is preferably connected to the antenna terminal ANT in series. With such a structure, the phase of an impedance in a receiving passband, which is in a high frequency range, becomes closer to being open.
As shown in
The low noise amplifier provided on the receiving side is often a balanced type terminal in order to improve the signal to noise characteristic of a communication apparatus. By using a filter having a balanced-unbalanced conversion function for the receiving filter 103 as shown in
Examples of systems using a low frequency for a transmission passband and a high frequency for a receiving passband as described above include PCS, W-CDMA (Wideband Code Division Multiple Access), and UMTS (Universal Mobile Telecommunications System). By applying the present invention to such systems, a higher performance antenna duplexer is realized. A communication apparatus including such an antenna duplexer can provide higher performance including reduction in size and decrease in crosstalk.
By optimizing the structure of the acoustic wave resonators, the present invention is made applicable to other systems using a high frequency for a transmission passband and a low frequency for a receiving passband.
The number and locations of acoustic wave resonators of the transmission filters 101 and 101a and the receiving filters 103 and 103a are not limited to those shown in
It is described in the above that an inductor may be connected to the parallel resonator of a ladder type filter. The location and the manner of connection of the inductor are not specifically limited, and only need to be optimized for a desirable filter characteristic. The inductor may be realized by using a line in the transmission (or receiving) filter or by being inserted into a substrate. A bonding wire may be used as the inductor.
In the above, a FBAR having a cavity as shown in
The longitudinal mode coupled SAW filter described in this embodiment may be connected to another longitudinal mode coupled SAW filter in tandem or to an acoustic wave resonator. For example, the power durability of a receiving filter is further improved by connecting a FBAR to the longitudinal mode coupled SAW filter in series or in parallel.
In the case where the antenna (not shown) connected to the antenna terminal ANT has a certain structure, the antenna terminal ANT may be a balanced type terminal.
The location of the phase shifter may not be limited to the location shown in
The transmission filter and/or the receiving filter connected to the phase shifter preferably includes a FBAR connected to the phase shifter. With such a structure, the power durability of the filter at the rejection band can be improved. Preferably, as shown in
In order to prevent the transmission signal and/or the receiving signal from bypassing, as shown in
In the case where the phase of the impedance of the transmission filter or the receiving filter is already adjusted, the phase shifter may be omitted. Namely, for the present invention, the phase shifter is not indispensable.
Hereinafter, the case where in either the transmission filter or the receiving filter which is connected to a balanced type terminal, the acoustic wave resonators other than the longitudinal mode coupled SAW filter connected to the balanced type terminal are all FBARs, will be discussed. In this case, the FBARs and the longitudinal mode coupled SAW filter are preferably provided on the same substrate. Such a structure can minimize the inter-chip connection loss. However, in the case where the passband of the filter is a 2 GHz or higher band, it is difficult to realize a SAW resonator on a single crystalline substrate. In this case, it is preferable to realize a longitudinal mode coupled SAW filter on a large sound velocity thin film formed of, for example, AlN. However, the balanced-unbalanced conversion, when performed only by FBARs, causes a large loss. Therefore, the longitudinal mode coupled SAW filter is preferably realized using a process compatible to the process of forming the FBARs.
In the case where the FBARs and the longitudinal mode coupled SAW filter are provided on the same substrate, as described above, it is preferable that the FBARs are not located in a direction in which the surface acoustic wave from the longitudinal mode coupled SAW filter is propagated. Such a structure can suppress interference of acoustic waves and thus unnecessary spurious can be removed.
Preferably, a piezoelectric thin film, which is the above-described large sound velocity thin film formed of AlN or the like and provided in an area between the longitudinal mode coupled SAW filter and the FBARs, is removed by edging. Such a structure can suppress interference of acoustic waves and thus unnecessary spurious can be removed.
Preferably, the surface roughness of the piezoelectric thin film is equal to or less than 1 nm. Such a structure can suppress the propagation loss in the longitudinal mode coupled SAW filter.
The FBARs and the longitudinal mode coupled SAW filter maybe provided three-dimensionally. In this case, the FBARs may be flip-chip-mounted on the longitudinal mode coupled SAW filter. With such a structure, the inter-chip connection loss can be minimized. Alternatively, the longitudinal mode coupled SAW filter may be flip-chip-mounted on the FBARs. With such a structure also, the inter-chip connection loss can be minimized.
Second EmbodimentThe transmission filter 1102 and the receiving filter 1103 are respectively covered with, for example, shields 1106 and 1107 to have an air-tightly seal. Upper surfaces of the transmission filter 1102 and the receiving filter 1103 are secured by a heat-resistant adhesive tape 1108. The adhesive tape 1108 can be made flat by forming the transmission filter 1102 and the receiving filter 1103 with substantially an equal thickness. Thus, the antenna duplexer 1100 can be adsorbed to a pick-up tool used for mounting. With such a structure, an antenna duplexer having a balanced-type terminal can be realized.
The transmission filter 1202 and the receiving filter 1203 are respectively covered with, for example, shields 1206 and 1207 to have an air-tight seal. The transmission filter 1202 and the receiving filter 1203 have different thicknesses. The mounting substrate 1201 is molded by, for example, a resin material 1208 which covers the transmission filter 1202 and the receiving filter 1203. An upper surface of the resin material 1208 is made substantially flat. Thus, the antenna duplexer 1200 can be adsorbed to a pick-up tool used for mounting. With such a structure, an antenna duplexer having a balanced-type terminal can be realized.
in the second embodiment, the lines, the phase shifter, and the external terminals are optimized for a desirable characteristic of the antenna duplexer.
In
In
The transmission filter and the receiving filter are provided by face-down bonding. Alternatively, the transmission filter and the receiving filter may be wire-bonded to have an air-tight seal. Namely, the transmission filter and the receiving filter are only needed to be mounted on the same substrate and molded with a resin material, such that an upper surface thereof is substantially flat.
In the second embodiment, the antenna duplexer includes one transmission filter and one receiving filter which are provided on a mounting substrate. Alternatively, a plurality of transmission filters and a plurality of receiving filters maybe mounted on the same substrate, such that a plurality of antenna duplexers are provided. In this case, by using a semiconductor switch or a wave divider, an antenna duplexer compatible to multi-mode or multi-band applications is provided.
Third EmbodimentIn the third embodiment, the lines, the phase shifter, and the external terminals built in the mounting substrate are optimized for a desirable characteristic of the antenna duplexer.
In the third embodiment, the transmission filter and the receiving filter are provided by face-down bonding. Alternatively, the transmission filter and the receiving filter may be wire-bonded to have an air-tight seal. The transmission filter and the receiving filter are only needed to be molded by a resin material or the like, such that an upper surface of the RF module 1300 is substantially flat.
In the third embodiment, the semiconductor device is wire-bonded. Alternatively, the semiconductor device may be mounted by face-down bonding. The semiconductor is only needed to be molded by a resin material together with the transmission filter and the receiving filter, such that an upper surface of the RF module 1300 is substantially flat.
All the structures and modifications described in the first embodiment are also applicable to the transmission filter and the receiving filter in the third embodiment.
As the semiconductor device 1304, a low noise amplifier is usable. Alternatively, a switch may be used as the semiconductor device 1304. For example, a plurality of transmission filters, a plurality of receiving filters and a semiconductor switch may be mounted on the same substrate to provide an RF module suitable to multi-mode and/or multi-band mobile phone applications.
Fourth EmbodimentAccording to the fourth embodiment of the present invention, the communication apparatus 160 including the antenna duplexer 100 directly connected to the low noise amplifier 120, having balanced-type terminals, is provided.
All the structures and modifications described in the first embodiment are also applicable to the communication apparatus shown in
An antenna duplexer according to the present invention has a balanced type terminal, and is useful for an RF device which can be directly connected to a semiconductor device or the like having a balanced type terminal. An antenna duplexer according to the present invention can be applied to an RF module, a communication apparatus or the like.
While the invention has been described in detail, the foregoing description is in all aspects illustrative and not restrictive. It is understood that numerous other modifications and variations can be devised without departing from the scope of the invention.
Claims
1-9. (canceled)
10. An antenna duplexer, comprising:
- an antenna terminal;
- a transmission terminal, being an unbalanced-type terminal;
- a receiving terminal, being a balanced-type terminal;
- a transmission filter, connected between the antenna terminal and the transmission terminal, and only including a ladder-type filter that adopts a film bulk acoustic resonator; and
- a receiving filter, connected between the antenna terminal and the receiving terminal, and including both a ladder-type filter that adopts a film bulk acoustic resonator serially connected to the antenna terminal and a longitudinal-mode-coupled surface acoustic wave filter serially connected to the antenna terminal and connected to the balanced-type terminal, transmission filter and the receiving filter having different thicknesses, being provided on a single mounting substrate and molded by a resin an upper surface of which is substantially flat.
11. The antenna duplexer according to claim 10, wherein the resonator in the receiving filter closest to the antenna terminal is a film bulk acoustic resonator.
12. The antenna duplexer according to claim 10, further comprising a phase shifter connected between the receiving filter and the antenna terminal, and serially connected to the at least one film bulk acoustic resonator serially connected to the antenna terminal.
13. The antenna duplexer according to claim 12, wherein the phase shifter and the at least one film bulk acoustic resonator serially connected to the phase shifter are formed on a single substrate.
14. The antenna duplexer according to claim 12, wherein the phase shifter is built in the mounting substrate.
15. The antenna duplexer according to claim 12, wherein the phase shifter includes a strip line or a lumped constant device.
Type: Application
Filed: Mar 4, 2010
Publication Date: Jun 24, 2010
Inventors: Hiroyuki Nakamura (Katano), Keiji Onishi (Settsu), Tomohiro Iwasaki (Toyonaka)
Application Number: 12/717,464
International Classification: H03H 9/00 (20060101);