WO1998034345A1 - Resonateur couple en ligne comportant un filtre en treillis et procede afferent - Google Patents

Resonateur couple en ligne comportant un filtre en treillis et procede afferent Download PDF

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Publication number
WO1998034345A1
WO1998034345A1 PCT/US1997/021361 US9721361W WO9834345A1 WO 1998034345 A1 WO1998034345 A1 WO 1998034345A1 US 9721361 W US9721361 W US 9721361W WO 9834345 A1 WO9834345 A1 WO 9834345A1
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WO
WIPO (PCT)
Prior art keywords
transducer
filter
disposed
coupled
lattice
Prior art date
Application number
PCT/US1997/021361
Other languages
English (en)
Inventor
Thomas Slocum Hickernell
Donald Eugene Allen
Jeffrey Thomas Mink
Original Assignee
Motorola Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Motorola Inc. filed Critical Motorola Inc.
Publication of WO1998034345A1 publication Critical patent/WO1998034345A1/fr

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Classifications

    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03HIMPEDANCE NETWORKS, e.g. RESONANT CIRCUITS; RESONATORS
    • H03H9/00Networks comprising electromechanical or electro-acoustic devices; Electromechanical resonators
    • H03H9/0023Balance-unbalance or balance-balance networks
    • H03H9/0028Balance-unbalance or balance-balance networks using surface acoustic wave devices
    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03HIMPEDANCE NETWORKS, e.g. RESONANT CIRCUITS; RESONATORS
    • H03H9/00Networks comprising electromechanical or electro-acoustic devices; Electromechanical resonators
    • H03H9/0023Balance-unbalance or balance-balance networks
    • H03H9/0028Balance-unbalance or balance-balance networks using surface acoustic wave devices
    • H03H9/0033Balance-unbalance or balance-balance networks using surface acoustic wave devices having one acoustic track only
    • H03H9/0042Balance-unbalance or balance-balance networks using surface acoustic wave devices having one acoustic track only the balanced terminals being on opposite sides of the track
    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03HIMPEDANCE NETWORKS, e.g. RESONANT CIRCUITS; RESONATORS
    • H03H9/00Networks comprising electromechanical or electro-acoustic devices; Electromechanical resonators
    • H03H9/46Filters
    • H03H9/64Filters using surface acoustic waves
    • H03H9/6423Means for obtaining a particular transfer characteristic
    • H03H9/6433Coupled resonator filters
    • H03H9/6436Coupled resonator filters having one acoustic track only

Definitions

  • This invention relates in general to the field of frequency selection components, in particular to surface acoustic wave frequency selection components and more particularly to an improved filter using surface acoustic wave frequency selection components that also is capable of operating with balanced or unbalanced input(s) and/or output(s).
  • Filters are needed for a variety of such communications applications wherein small size, light weight and high performance are simultaneously required.
  • Increasing numbers of products seek to employ fixed spectral resources, often to achieve tasks not previously envisioned. Examples include cellular telephones, inter- and intra-facility computer-computer and/or computer-ancillary equipment linkages as well as a host of other, increasingly complex inter-personal and/or -equipment information sharing requirements.
  • the desire to render increasingly complicated communications nodes portable and even hand-held and/or -portable and/or pocket-sized places extreme demands on filtering technology in the context of increasingly crowded radio frequency resources.
  • Acoustic wave devices provide filters meeting stringent performance requirements, which filters are (i) extremely robust, (ii) readily mass produced, (iii) adjustment-free over the life of the unit and (iv) which sharply increase the performance-to-size ratio achievable in the frequency range extending from a few tens of megahertz to about several gigahertz.
  • need for low passband insertion loss simultaneously coupled with demand for high shape factor and high stopband attenuation pose filter design and performance requirements not easily met by a single acoustic wave filter alone. These problems are exacerbated when it is desirable to couple such a filter between balanced and unbalanced circuitry.
  • One approach to satisfying these needs and demands is to cascade two or more acoustic wave filters.
  • This approach realizes increased stopband signal rejection but requires additional matching components (e.g., inductors and/or capacitors) and also multiplies the volume and weight of the acoustic wave filters by the number of such filters cascaded, especially when each filter is separately realized, impedance matched and packaged.
  • Matching components additionally incur major size and weight penalties because each transducer generally requires at least two matching components, each of which is at least as large as an acoustic wave filter die.
  • Another approach is to provide two or more such filters on a single substrate, wherein the filters are designed to have purely real impedances matched one to another without requiring intervening matching components.
  • One realization includes a cross- coupled arrangement of resonant elements having staggered center frequencies and arranged in a lattice structure, i.e., a structure known as a "lattice filter” and comprising cascaded sections, each including two series resonant elements together with two cross- coupled resonant elements.
  • a lattice structure i.e., a structure known as a "lattice filter” and comprising cascaded sections, each including two series resonant elements together with two cross- coupled resonant elements.
  • Acoustic wave filters including lattice filters formed from groupings of resonators employ generally periodic arrays of electrodes configured to provide discrete elements such as transducers (for converting electrical to mechanical energy and vice versa), optional reflectors (for reversing the direction of propagation of an acoustic wave) and optional gaps for separating transducers and reflectors. These elements are grouped in a generally in-line configuration (e.g., reflector, gap, transducer, gap, reflector) along a principal axis of acoustic wave propagation on a suitable substrate material, with the entire array providing an electrical filtering function associated with the electrical port(s) of the individual transducer(s) and/or the composite filter.
  • Lattice filters generally are able to provide wide bandwidth and can provide very good stopband attenuation. However, lattice filters must operate in a balanced or differential configuration.
  • Inline coupled resonators in which filtering is achieved via a plurality of transducers and in which acoustic waves travel from one transducer to another, can provide sharply selective filtering functions but are limited in terms of the out-of-band rejection that is achievable when designed for wide passband width operation, in comparison to lattice filters designed for wide passband bandwidth.
  • the acoustic propagation between transducers results in higher filter insertion loss than is necessarily the case for lattice filters.
  • inline coupled resonators are capable of operation with unbalanced input(s) and/or output(s) and may be designed to accommodate either or both.
  • Baluns or balanced-to-unbalanced transformers, are known and might be used to provide this function. However, these are not readily realized in monolithic form and accordingly tend to be relatively large. Additionally, they may incur additional insertion loss, which is highly undesirable.
  • FIG. 1 is a graph of simulated responses for a SAW ladder filter (dashed trace) and a SAW lattice filter (solid trace) using the same transducer designs, showing differences in in-band and out-of-band responses for the two filter types;
  • FIG. 2 is a simplified plan view of a first embodiment of an acoustic wave filter in accordance with the teachings of the present invention
  • FIG. 3 is a simulation of a frequency response for the first embodiment of the present invention
  • FIG. 4 is a simplified block diagram of a second embodiment of an acoustic wave filter in accordance with the teachings of the present invention
  • FIG. 5 is a block diagram of a portion of a radio frequency apparatus including acoustic wave filters in accordance with the present invention.
  • FIG. 1 is a graph of simulated responses for a SAW ladder filter (dashed trace) 7, 8 and a SAW lattice filter (solid trace) 9 using the same transducer designs, showing differences in in- band and out-of-band responses for the two filter types.
  • Each of the simulated filters employs eight SAW resonators with the eight for the lattice filter being identical to the eight for the ladder filter.
  • the ladder filter inband response 7 has sharper cutoff skirts, slightly greater inband insertion loss and slightly less bandwidth than the lattice filer response 9.
  • the ladder filter also includes flyback out-of-band rejection characteristics 8 that are not part of response 9 for the lattice filter.
  • the level of flyback response 8 is determined by the capacitance ratio of the series to the shunt transducers in the ladder filter, which act as a simple voltage divider in the out- of-band area, setting a bound for out-of-band rejection achievable by the ladder configuration.
  • Lattice filter response 9 does not have this inherent limitation that is found with ladder filters, provides improvement in insertion loss and also provides a slightly greater bandwidth, but a lattice filter requires balanced input and output terminals, which are not required by ladder filters and which are not readily accommodated in many types of radio designs. Accordingly, it is desirable in some cases to obtain the benefits of lattice filter response characteristics but from a system that requires an unbalanced input or output configuration.
  • FIG. 2 is a simplified plan view of first embodiment 10 of an acoustic wave filter in accordance with the teachings of the present invention.
  • First embodiment 10 provides the advantages of lattice filter 14 but also includes unbalanced input port 15' intended to allow coupling of filter 10 to unbalanced signal generator or signal source 13.
  • First embodiment 10 also includes balanced output terminals 18, 18' that couple to load 11 via terminals 19, 19'.
  • unbalanced input terminal 15' may be coupled to balanced input terminals 17, 17' of lattice filter 14 via inline coupled resonator filter 12.
  • Inline coupled resonator filter 12 is usefully designed to reduce insertion losses normally associated with coupled resonator filter acoustic propagation losses and is also usefully designed to avoid passband shaping of composite filter 10 frequency response, i.e., coupled resonator 12 is broader in passband bandwidth than is lattice filter 14.
  • Inline coupled resonator 12 comprises at least one input transducer 25 and preferably two input transducers 25, 25' disposed so as to form an acoustic cavity surrounding transducer 20.
  • Transducer 25 or transducers 25, 25' acoustically couple to transducer 20 via adjacently disposed and aligned acoustic ports or apertures.
  • Transducer 20 comprises fingers or electrodes 22 alternately coupled to bus bars 21 , 21 ' and provides a differential or balanced signal between bus bars 21 , 21 ' when electrodes 22 are insonified (i.e., irradiated with acoustic energy) of an appropriate frequency, wavelength and propagation direction, which acoustic energy derives from electrical signals from signal source 13 that are coupled via bus bars 26, 26' to electrodes 27 comprising transducer 25 or transducers 25, 25'.
  • Optional reflectors 28 disposed to either end of the acoustic cavity (i.e., outside of transducers 25, 25', 20) comprising reflection elements 29 may be employed to reduce leakage of acoustic energy from inline coupled resonator 12 and thereby improve inband insertion loss characteristics of both inline coupled resonator 12 and filter 10.
  • Lattice filter section 14 is formed by disposing first 30, second 31 , third 32 and fourth 33 resonators comprising a stage of lattice filter 14 on the substrate. It will be understood that multiple lattice filter sections may be cascaded but this discussion will be in terms of a single section for ease and clarity of explanation and understanding.
  • Each of first 30, second 31 , third 32 and fourth 33 resonators includes a pair of bus bars 30', 30"; 31 ', 31 "; 32*, 32"; 33', 33", respectively, and a group of finger electrodes disposed therebetween, wherein one bus bar 30', 33" of each of the first 30 and fourth 33 resonators are coupled to first side 17 of the balanced electrical input of said lattice filter 14, one bus bar 31 ", 32' of each of second 31 and third 32 resonators is coupled to a second side 17' of said balanced electrical input of said lattice filter 14, another bus bar 30", 31' of first 30 and second 31 resonators is coupled to first side 18 of said balanced electrical output of lattice filter 14 and another bus bar 32", 33' of said third 32 and fourth 33 resonators is coupled to a second side 18' of said balanced electrical output of said lattice filter.
  • transducers 25, 25', 20, 30, 31 , 32, 33, optional reflectors 28 and related features are manufactured by vacuum deposition and photolithographic processes similar to those employed in manufacturing integrated circuitry, on a suitably- prepared surface of a piezoelectric material such as LiNb ⁇ 3, LiTa ⁇ 3, UBO4 (lithium tetraborate) or Si ⁇ 2 or the like.
  • a piezoelectric material such as LiNb ⁇ 3, LiTa ⁇ 3, UBO4 (lithium tetraborate) or Si ⁇ 2 or the like.
  • orientations of such substrata include ST-cut quartz, 128° LiNb ⁇ 3, 41 o LiNb0 3 , 64° LiNb ⁇ 3 and 36° LiTa ⁇ 3, among others.
  • FIG. 3 is a simulation of frequency response 35 for the first embodiment of the present invention.
  • Frequency response 35 does not include flyback responses 8 of ladder filter response 7, 8 of FIG. 1 and does include a main lobe at a frequency of about a gigahertz, having skirt characteristics similar to those of response 9 of FIG. 1.
  • FIG. 4 is a simplified block diagram of second embodiment
  • Second embodiment 40 has the properties of lattice filter 14 with the exception that both input 15' and output 15" are unbalanced.
  • Lattice filter 14 has inputs 17, 17' coupled to outputs 16, 16', respectively, of inline resonator filter 12, analogous to the arrangement of FIG. 2.
  • Lattice filter 14 has output terminals 18, 18' coupled to input terminals 16, 16', respectively, of output inline resonator filter 12', much like a mirror image of inline filter 12 and lattice filter 14 of FIG. 2.
  • Inline coupled resonator filters 12, 12' perform the balanced-to-unbalanced conversions needed to interface lattice filter 14 to unbalanced input and output circuitry and do so without requiring baluns or transformers, providing a single, monolithic component having the filtering characteristics of lattice filters and including input and output characteristics analogous to those of ladder filters, when inline resonator filters 12, 12' are designed in accordance with the criteria outlined supra with respect to FIG. 2 and associated text.
  • FIG. 5 is a block diagram of portion 1200 of a communications apparatus including one or more microfabricated devices, represented in this example by acoustic wave filters, packaged in accordance with the present invention.
  • Apparatus 1200 includes antenna 1201 and antenna lead 1204, by way of example, employed to receive and/or transmit signals.
  • antenna 1201 and antenna lead 1204 may replaced by a fiber-optic link or a cable or other signal transmissive media.
  • Diplexer 1209 is coupled to antenna 1201 and antenna lead 1204 and to a transmitter portion (not shown).
  • Diplexer 1209 couples received signals to filter 1215 via lead
  • Filter 1215 is coupled to amplifier 1227 via lead 1226.
  • diplexer 1209 may not be required and antenna 1201 may be coupled directly or through signal-conditioning circuitry to filter 1215 and thence to amplifier 1227.
  • the output of amplifier 1227 is coupled to filter 1239 via lead 1233.
  • Filter 1239 has an output coupled to a first input of mixer 1265 via lead 1242.
  • the output signal from filter 1239 is combined with a local oscillator signal in mixer 1265.
  • the local oscillator signal originates in local oscillator
  • the output signal from filter 1255 is coupled via lead 1259 to a second input of mixer 1265.
  • the output signal from mixer 1265 is coupled via lead 1271 to filter 1277 to provide an intermediate frequency or IF output signal via lead 1280.
  • Diplexer 1209, filter 1215, filter 1239, filter 1255 and/or filter 1277 may comprise acoustic wave filters packaged in accordance with the present invention.
  • an acoustic wave filter has been described which overcomes specific problems and accomplishes certain advantages relative to prior art methods and mechanisms.
  • the improvements over known technology are significant.
  • the complexities and higher parts count of some forms of prior art devices are avoided.

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  • Physics & Mathematics (AREA)
  • Acoustics & Sound (AREA)
  • Surface Acoustic Wave Elements And Circuit Networks Thereof (AREA)

Abstract

L'invention concerne un filtre (10) à onde acoustique obtenu par mise à disposition d'un substrat approprié et par traitement dudit substrat pour obtenir un filtre à treillis (14) présentant des circuits d'entrée (17, 17') et de sortie (18, 18') électriques symétriques, ainsi qu'un filtre de résonateur couplé en ligne (12), disposé sur ce substrat. Le traitement comprend en outre les étapes suivantes: (i) disposer un premier (20) transducteur possédant une sortie électrique (16, 16') symétrique sur le substrat; (ii) disposer un second (25) transducteur comprenant un circuit (15') à entrée électrique asymétrique dans une première ouverture acoustique du premier (20) transducteur, le second (25) transducteur étant couplé de manière acoustique au premier (20) transducteur, et le premier (20) et le second (25) transducteur comprenant le filtre de résonateur couplé en ligne (12); et (iii) disposer des interconnexions entre le premier (20) transducteur et le filtre à treillis (14) pour transmettre un signal de sortie électrique symétrique à partir du premier transducteur vers l'entrée électrique symétrique du filtre à treillis (14).
PCT/US1997/021361 1997-01-31 1997-11-21 Resonateur couple en ligne comportant un filtre en treillis et procede afferent WO1998034345A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US79230897A 1997-01-31 1997-01-31
US08/792,308 1997-01-31

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Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2002082647A1 (fr) * 2001-03-23 2002-10-17 Infineon Technologies Ag Dispositif filtrant
WO2003056699A1 (fr) * 2001-12-21 2003-07-10 Epcos Ag Filtre a reactance de fonctionnement symetrique
US7199684B2 (en) * 2002-07-30 2007-04-03 Infineon Technologies Ag Filter circuit with a filter stage and balun on a single substrate
US7212085B2 (en) * 2004-12-30 2007-05-01 Delta Electronics, Inc. Filter assembly with unbalanced to balanced conversion and reduced noise
US7446629B2 (en) * 2004-08-04 2008-11-04 Matsushita Electric Industrial Co., Ltd. Antenna duplexer, and RF module and communication apparatus using the same
EP2063530A1 (fr) * 2006-10-31 2009-05-27 Murata Manufacturing Co. Ltd. Dispositif et duplexeur de filtre d'onde acoustique de surface

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5265267A (en) * 1991-08-29 1993-11-23 Motorola, Inc. Integrated circuit including a surface acoustic wave transformer and a balanced mixer
EP0698965A1 (fr) * 1994-08-23 1996-02-28 Matsushita Electric Industrial Co., Ltd. Dispositif à ondes acoustiques de surface
US5508667A (en) * 1993-08-04 1996-04-16 Advanced Saw Products Sa Balanced bridge saw filter

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5265267A (en) * 1991-08-29 1993-11-23 Motorola, Inc. Integrated circuit including a surface acoustic wave transformer and a balanced mixer
US5508667A (en) * 1993-08-04 1996-04-16 Advanced Saw Products Sa Balanced bridge saw filter
EP0698965A1 (fr) * 1994-08-23 1996-02-28 Matsushita Electric Industrial Co., Ltd. Dispositif à ondes acoustiques de surface
US5721519A (en) * 1994-08-23 1998-02-24 Matsushita Electric Industrial Co., Ltd. Balanced type surface acoustic wave device

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
1995 IEEE ULTRASONICS SYMPOSIUM PROCEEDINGS, SHARIF et al., "Coupled Resonator Filters with Differential Input and/or Differential Output", Edited by M. LEVY et al., NEW YORK: IEEE, 1995, Vol. 1, p. 67-70. *

Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2002082647A1 (fr) * 2001-03-23 2002-10-17 Infineon Technologies Ag Dispositif filtrant
WO2003056699A1 (fr) * 2001-12-21 2003-07-10 Epcos Ag Filtre a reactance de fonctionnement symetrique
US7199684B2 (en) * 2002-07-30 2007-04-03 Infineon Technologies Ag Filter circuit with a filter stage and balun on a single substrate
US7446629B2 (en) * 2004-08-04 2008-11-04 Matsushita Electric Industrial Co., Ltd. Antenna duplexer, and RF module and communication apparatus using the same
US7701311B2 (en) 2004-08-04 2010-04-20 Panasonic Corporation Antenna duplexer, and RF module and communication apparatus using the same
US7212085B2 (en) * 2004-12-30 2007-05-01 Delta Electronics, Inc. Filter assembly with unbalanced to balanced conversion and reduced noise
EP2063530A1 (fr) * 2006-10-31 2009-05-27 Murata Manufacturing Co. Ltd. Dispositif et duplexeur de filtre d'onde acoustique de surface
US7880561B2 (en) * 2006-10-31 2011-02-01 Murata Manufacturing Co., Ltd. Surface acoustic wave filter device and duplexer
EP2063530A4 (fr) * 2006-10-31 2012-01-25 Murata Manufacturing Co Dispositif et duplexeur de filtre d'onde acoustique de surface

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