Antenna apparatus having bond wires
10490524 ยท 2019-11-26
Assignee
Inventors
Cpc classification
H01Q1/2283
ELECTRICITY
H01L2924/00014
ELECTRICITY
H01L2224/48106
ELECTRICITY
H01L2924/00014
ELECTRICITY
H01L2924/15153
ELECTRICITY
H01L2224/48108
ELECTRICITY
H01L2223/6627
ELECTRICITY
H01L2223/6677
ELECTRICITY
H01Q9/42
ELECTRICITY
H01Q1/44
ELECTRICITY
International classification
H01Q1/44
ELECTRICITY
H01Q1/22
ELECTRICITY
H01L23/498
ELECTRICITY
Abstract
An antenna apparatus includes a radio-frequency chip arranged on a substrate, wherein the radio-frequency chip includes at least one antenna output terminal and the antenna output terminal functions as a first fixing region for an electric conductor. The antenna apparatus further includes a first bond wire connecting in an electrically conducting manner the first fixing region to a second fixing region arranged on the substrate. Furthermore, the antenna apparatus includes a second bond wire connecting in an electrically conducting manner the second fixing region and a third fixing region arranged on the substrate. According to the invention, the first and the second bond wire electrically connected in series form an antenna. In this case, the first and second bond wires are at least regionally spaced apart from the substrate.
Claims
1. An antenna apparatus comprising: a radio-frequency chip arranged on a substrate, wherein the radio-frequency chip comprises at least one antenna output terminal, wherein the antenna output terminal functions as a first fixing region for an electric conductor, at least one first bond wire connecting in an electrically conducting manner the first fixing region to a second fixing region arranged on the substrate, at least one second bond wire connecting in an electrically conducting manner the second fixing region and a third fixing region arranged on the substrate, wherein the first and the second bond wire electrically connected in series form an antenna, and wherein the first and the second bond wire are at least regionally spaced apart from the substrate.
2. The antenna apparatus according to claim 1, wherein the radio-frequency chip is arranged on a first main side of the substrate, and wherein a metallization is arranged at the substrate on a second main side of the substrate opposite to the first main side.
3. The antenna apparatus according to claim 1, wherein the substrate comprises on the first main side a recess extending in a direction of the second main side, and the radio-frequency chip is arranged in this recess.
4. The antenna apparatus according to claim 3, wherein the depth of the recess corresponds to the thickness of the radio-frequency chip so that the top side of the radio-frequency chip is coplanar to the first main side of the substrate when the radio-frequency chip is arranged in this recess.
5. The antenna apparatus according to claim 1, wherein the first, the second and the third fixing region are located in the same substrate plane, and the third fixing region surrounds the first fixing region and/or the second fixing region in this plane at least in portions so that the third fixing region configures a coplanar supply line with respect to the second fixing region and/or with respect to the first fixing region.
6. The antenna apparatus according to claim 1, wherein the antenna apparatus is configured to emit a radio signal by means of the first bond wire and the second bond wire in response to an electric signal applied to the first fixing region, wherein a wavelength range of the radio signal is affected by a sum of the length of the first bond wire, the length of the second bond wire and a distance between the first and the second bond wire on the second fixing region.
7. The antenna apparatus according to claim 6, wherein the lengths of the first bond wire and the second bond wire are selected together with the distance between the first bond wire and the second bond wire on the second fixing region such that the wavelength range of the radio signal to be emitted is in the microwave range, the millimeter range or the terahertz range.
8. The antenna apparatus according to claim 1, wherein the first fixing region is implemented as a strip line, wherein a wavelength range of a radio signal emitted by means of the first bond wire, the second bond wire and the strip line is affected by a sum of the individual lengths of the first bond wire and the second bond wire and the strip line.
9. The antenna apparatus according to claim 1, wherein the length of the first bond wire is shorter than the length of the second bond wire.
10. The antenna apparatus according to claim 1, wherein the second fixing region and the third fixing region are bond paths arranged on the substrate, which are spatially spaced apart from each other and galvanically separated from each other.
11. The antenna apparatus according to claim 2, wherein the metallization comprises discontinuations.
12. The antenna apparatus according to claim 2, wherein the metallization arranged at the second main side of the substrate is a reflector for a radio signal emitted by means of the first bond wire and the second bond wire.
13. The antenna apparatus according to claim 2, wherein the third fixing region arranged on the first main side of the substrate and the metallization arranged at the second main side of the substrate are connected by means of an electrically conductive structure extending through the substrate.
14. The antenna apparatus according to claim 13, wherein a wavelength range of an emitted radio signal is affected by the sum of the individual lengths of the first and the second bond wire and the electrically conductive structure extending through the substrate.
15. The antenna apparatus according to claim 1, further comprising a housing in which the antenna apparatus is arranged and which comprises a terminal for connecting the antenna apparatus to a radio-frequency chip.
16. The antenna apparatus according to claim 15, wherein the housing forms a lens configured to concentrate or to diffuse a radio signal generated by the antenna apparatus.
17. An antenna array with at least one antenna apparatus according to claim 1, comprising at least one third bond wire connecting a fourth and a fifth fixing region arranged on the first main side of the substrate, and further comprising at least one fourth bond wire connecting a sixth and a seventh fixing region arranged on the first main side of the substrate.
18. The antenna array according to claim 17, wherein the antenna apparatus is spatially and galvanically separated from the fourth fixing region, the fifth fixing region, the sixth fixing region, the seventh fixing region, the third bond wire and the fourth wire bond, and wherein the antenna apparatus, the third bond wire and the fourth bond wire are arranged with respect to each other such that the third bond wire acts as a reflector with respect to the antenna apparatus and a fourth bond wire acts as a reflector.
19. The antenna array according to claim 17, further comprising a housing in which the antenna apparatus is arranged and which comprises a terminal for connecting the antenna apparatus to a radio-frequency chip.
20. The antenna array according to claim 19, wherein the housing forms a lens configured to concentrate or to diffuse a radio signal generated by the antenna apparatus.
21. An antenna apparatus comprising: a substrate comprising a first main side and a second main side arranged opposite thereto; a first, a second and a third fixing region arranged at the first main side for fixing electric conductors; at least one first bond wire connecting the first fixing region and the second fixing region, which is at least regionally spaced apart from the substrate; at least one second bond wire connecting the second fixing region and the third fixing region, which is at least regionally spaced apart from the substrate; and a metallization arranged at the second main side of the substrate, which is arranged opposite to at least one of the first fixing region, the second fixing region, the third fixing region, the first bond wire and the second bond wire; wherein the antenna apparatus is configured to emit a radio signal by means of the first bond wire and the second bond wire in response to an electric signal applied to the first fixing region, wherein a wavelength range of the radio signal is affected by a sum of the length of the first bond wire, the length of the second bond wire and a distance between the first and the second bond wire on the second fixing region.
22. The antenna apparatus according to claim 21, wherein the first, the second and the third fixing region are located in the same substrate plane, and the third fixing region surrounds the first fixing region and/or the second fixing region in this plane at least in portions so that the third fixing region configures a coplanar supply line with respect to the second fixing region and/or with respect to the first fixing region.
23. The antenna apparatus according to claim 21, wherein the lengths of the first bond wire and the second bond wire are selected together with the distance between the first bond wire and the second bond wire on the second fixing region such that the wavelength range of the radio signal to be emitted is in the microwave range, the millimeter range or the terahertz range.
24. The antenna apparatus according to claim 21, wherein the first fixing region is implemented as a strip line, wherein a wavelength range of a radio signal emitted by means of the first bond wire, the second bond wire and the strip line is affected by a sum of the individual lengths of the first bond wire and the second bond wire and the strip line.
25. The antenna apparatus according to claim 21, wherein the length of the first bond wire is shorter than the length of the second bond wire.
26. The antenna apparatus according to claim 21, wherein the second fixing region and the third fixing region are bond paths arranged on the substrate, which are spatially spaced apart from each other and galvanically separated from each other.
27. The antenna apparatus according to claim 21, wherein the metallization comprises discontinuations.
28. The antenna apparatus according to claim 21, wherein the metallization arranged at the second main side of the substrate is a reflector for a radio signal emitted by means of the first bond wire and the second bond wire.
29. The antenna apparatus according to claim 21, wherein the third fixing region arranged on the first main side of the substrate and the metallization arranged at the second main side of the substrate are connected by means of an electrically conductive structure extending through the substrate.
30. The antenna apparatus according to claim 29, wherein a wavelength range of an emitted radio signal is affected by the sum of the individual lengths of the first and the second bond wire and the electrically conductive structure extending through the substrate.
31. The antenna apparatus according to claim 21, further comprising a housing in which the antenna apparatus is arranged and which comprises a terminal for connecting the antenna apparatus to a radio-frequency chip.
32. The antenna apparatus according to claim 31, wherein the housing forms a lens configured to concentrate or to diffuse a radio signal generated by the antenna apparatus.
33. An antenna array with at least one antenna apparatus comprising: a substrate comprising a first main side and a second main side arranged opposite thereto; a first, a second and a third fixing region arranged at the first main side for fixing electric conductors; at least one first bond wire connecting the first fixing region and the second fixing region, which is at least regionally spaced apart from the substrate; at least one second bond wire connecting the second fixing region and the third fixing region, which is at least regionally spaced apart from the substrate; and a metallization arranged at the second main side of the substrate, which is arranged opposite to at least one of the first fixing region, the second fixing region, the third fixing region, the first bond wire and the second bond wire; wherein the antenna array comprises at least one third bond wire connecting a fourth and a fifth fixing region arranged on the first main side of the substrate, and further comprising at least one fourth bond wire connecting a sixth and a seventh fixing region arranged on the first main side of the substrate.
34. The antenna array according to claim 33, wherein the antenna apparatus is spatially and galvanically separated from the fourth fixing region, the fifth fixing region, the sixth fixing region, the seventh fixing region, the third bond wire and the fourth wire bond, and wherein the antenna apparatus, the third bond wire and the fourth bond wire are arranged with respect to each other such that the third bond wire acts as a reflector with respect to the antenna apparatus and a fourth bond wire acts as a reflector.
35. The antenna array according to claim 33, further comprising a housing in which the antenna apparatus is arranged and which comprises a terminal for connecting the antenna apparatus to a radio-frequency chip.
36. The antenna array according to claim 35, wherein the housing forms a lens configured to concentrate or to diffuse a radio signal generated by the antenna apparatus.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the present invention will be detailed subsequently referring to the appended drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
(20)
(21)
DETAILED DESCRIPTION OF THE INVENTION
(22) In the following, embodiments of the invention are described in detail with reference to the figures, wherein elements having the same or similar functions are provided with the same reference numerals. Furthermore, the features of the invention are first described in a structural manner with reference to the figures. Subsequently, the function of the invention is described.
(23)
(24) Furthermore, the antenna apparatus 10 comprises a first bond wire 14 connecting in an electrically conducting manner the antenna output terminal 13 to a second fixing region 15 arranged on the substrate 11.
(25) The antenna apparatus 10 further comprises a second bond wire 16 connecting in an electrically connecting manner the second fixing region 15 and a third fixing region 17 arranged on the substrate 11.
(26) According to the invention, the first and the second bond wire 14, 16 connected in series both form an antenna, in particular a bond wire antenna.
(27) Furthermore, the first and the second bond wire 14, 16 are at least regionally spaced apart from the substrate 11. For example, it is shown in
(28) An electric signal may be applied to the first fixing region 13, the second fixing region 15 or the third fixing region 17. For example, the electric signal may be a radio-frequency signal. In connection with the embodiments described herein, a high-frequency signal is understood to be a signal with a frequency of at least 150 kHz. Advantageously, the electric signal comprises a frequency of at least 1 MHz and may particularly advantageously be used for generating so-called microwaves, millimeter waves or terahertz, which comprise a frequency in a frequency band of at least 30 GHz and up to 300 GHz. Other frequency ranges may also be realized. Millimeter waves are understood to be wavelengths in a range of at least 1 mm and up to 10 mm, which correspond to a frequency of the electric signal via the correlation =c/f.
(29) According to a conceivable implementation, the radio-frequency chip 12 is arranged on a first main side 21 of the substrate 11, and a metallization 23 is arranged at the substrate 11 on a second main side 22 of the substrate 11 opposite to the first main side 21, e.g., as shown in
(30) According to a further conceivable implementation, as exemplarily illustrated in
(31) According to an embodiment, the depth X.sub.1 of the recess 24 corresponds to the thickness D.sub.1 of the radio-frequency chip 12 so that the top side 12a of the radio-frequency chip 12 is coplanar to the first main side 21 on the substrate 11 when the radio-frequency chip 12 is arranged in the recess 24. With this, the distance between the first fixing region 13 on the chip 12 and the second fixing region 15 on the substrate 11 may be decreased so that, compared to an implementation, e.g., as shown in
(32) As illustrated for the antenna apparatus 10 in detail based on
(33)
(34) The antenna apparatus 100 further comprises a first, a second and a third fixing region 113, 115, 117 arranged at the first main side 121 of the substrate 111 for fixing electric conductors.
(35) The antenna apparatus 100 further comprises a first bond wire 114 connecting the first fixing region 113 and the second fixing region 115, which is at least regionally spaced apart from the substrate 111.
(36) Furthermore, the antenna apparatus 100 comprises a second bond wire 116 connecting the second fixing region 115 and the third fixing region 117, which is at least regionally spaced apart from the substrate 111.
(37) Furthermore, the inventive antenna apparatus 100 comprises a metallization 123 arranged at the second main side 122 of the substrate 111, which is arranged opposite to at least one of the first fixing region 113, the second fixing region 115, the third fixing region 117, the first bond wire 114 and the second bond wire 116.
(38) The metallization 123 may extend across the entire surface of the second main side 122 of the substrate 111. Additionally, the same applies to the embodiments previously discussed with reference to
(39) As may be seen in
(40) As may be seen in
(41) In the example shown in
(42) Among other things, the inventive antenna apparatuses 10, 100 are characterized in that the respective antenna apparatus 10, 100 is configured to emit a radio signal by means of the first bond wire 14, 114 and the second bond wire 16, 116 in response to an electric signal applied to the first fixing region 13, 113, wherein a wavelength range of the radio signal is affected by a sum of the length of the first bond wire 14, 114, the length of the second bond wire 16, 116 and a distance a.sub.12 between the first bond wire 14, 114 and the second bond wire 16, 116 on the second fixing region 15, 115.
(43) This circumstance is shown in
(44) As initially mentioned, this series connection simultaneously forms a bond wire antenna by means of which a radio signal may be sent or received, wherein the wavelength of the radio signal is affected by the total length of the first bond wire 14, 114, the second bond wire 16, 116 and the distance a.sub.12 of the two bond wires 14, 114; 16, 116 with respect to each other on the second fixing region 15, 115.
(45) According to the invention, the lengths of the first bond wire 14, 114, the second bond wire 16, 116 and the distance a.sub.12 between the first bond wire 14, 114 and the second bond wire 16, 116 on the second fixing region 15, 115 are selected such that the wavelength range of the radio signal to be emitted is in the microwave range or millimeter wave range, e.g., a frequency in a frequency band of at least 30 GHz and up to 300 GHz, advantageously between 30 GHz and 80 GHz and more advantageously between 60 GHz and 80 GHz. Other frequency ranges may also be realized, e.g., terahertz ranges. Millimeter waves are understood to be wavelengths in a range of at least 1 mm and up to 10 mm, which correspond to a frequency of the electric signal via the correlation =c/f.
(46) For example, an implementation of the length L of the bond wire antenna 14, 114; 16, 116; a.sub.12 may be carried out in a correlation of L=/8, /4, /2, , 2, 4 or the like, wherein A is a wavelength of the radio signal. Advantageously, the antenna apparatus 10 is implemented as /2 radiator or as /4 radiator. With respect to the correlation between the wavelength A and the total length L.sub.101, a tolerance range of up to 70%, up to 50% or up to 30% may be applied. In particular in millimeter wavelengths range, an exact implementation of the length L of the bond wire antenna with respect to a frequency band of the radio signal to be provided by the antenna apparatus 10, 100 may be advantageous so that a tolerance region of up to 30%, up to 20% or up to 10% may be applicable.
(47) In general, in the inventive antenna apparatus 10, 100, the length of the first bond wire 14, 114 may be shorter than the length of the second bond wire 16, 116. Thus, e.g., the RF chip 12 (
(48) As exemplarily shown in
(49) The strip line 113 may serve for a signal supply of the first bond wire 114, the second bond wire 116 and the second fixing region 115 connecting the two bond wires 114, 116.
(50) In some embodiments of the invention, the second fixing region 15, 115 and the third fixing region 17, 117 are bond pads arranged on the substrate 11, 111, which are spatially spaced apart from each other and galvanically separated from each other.
(51) In the following, with reference to
(52) In further embodiments, the third fixing region 17, 117 arranged on the first main side 21, 121 of the substrate 11, 111, and the metallization 23, 123 arranged at the second main side 22, 122 of the substrate 11, 111 may be connected by means of an electrically conductive structure 124 extending through the substrate 11, 111. For example, this electrically conductive structure 123 may be so-called vias.
(53) Alternatively or additionally, these vias 124 may also connect in an electrically conducting manner the metallization 23, 123 and the first fixing region 13, 113 and/or the second fixing region 15, 115.
(54) It turned out to be advantageous when the vias 124 galvanically connect the metallization 23, 123 to the fixing region terminating the bond wire antenna. Usually, this is the third fixing region 17, 117.
(55) In the embodiments with electrically conducting vias 124, a wavelength range of an emitted radio signal is affected by the sum of the individual lengths of the first and second bond wires 14, 114; 16, 116 and the electrically conductive structure 124 extending through the substrate 11, 111.
(56) Irrespective of whether or not the antenna structure 10, 100 comprises a via 124, the metallization 23, 123 arranged at the second main side 22, 122 of the substrate 11, 111 may be a reflector for a radio signal emitted by means of the first bond wire 14, 114 and the second bond wire 16, 116. With this, a good shielding of the second main side 22, 122 of the substrate 11, 111 may be achieved.
(57) Alternative to a metallization 23, 123 implemented to be flat and to be a reflector, it is also possible to implement the metallization 23, 123 in a discontinuous manner across the second main side 22, 122 of the substrate 11, 111. Thus, discontinuing structures such as recesses may be used to implement antenna structures. Thus, a slot-shaped recess in the metallization 23, 123 may be used to form a slot antenna so that the radio signal also radiates in a direction of the substrate 11, 111, which is facing away from the bond wires 14, 114; 16, 116.
(58) In other words, the first fixing region 113 may be referred to as coplanar feed line. The metallization 23, 123 may be used as a reflector or reference potential (ground plane). The third fixing region 117 may be used a return line of the feed current flowing through the two bond wires 114, 116.
(59) A three-dimensional radiation of the radio signal may be achieved by at least regionally spacing apart the two bond wires 114, 116 from the substrate 111.
(60)
(61) Here, in other words, the third fixing region 117 covers a large part of the surface of the first main side 121 of the substrate 111. The third fixing region 117 surrounds the first fixing region 113 and the second fixing region 115 at least in portions. The individual fixing regions 113, 115, 117 are galvanically separated from each other.
(62) A first galvanic separation structure 131 is provided between the first fixing region 113 and the third fixing region 117. A second galvanic separation structure 132 is provided between the second fixing region 115 and the third fixing region 117. For example, the separation structures 131, 132 may be configured in the form of perforations in the third fixing region 117. It would also be conceivable that corresponding trenches 131, 132 are etched into the third fixing region 117 using an etching method.
(63) The fixing regions 113, 115, 117 consist of a conductive material. For example, the fixing regions 113, 115, 117 may comprise one or several metals. Additionally, a metallization 123 may be arranged on the second main side 122 of the substrate 111.
(64)
(65) Besides at least one antenna apparatus 10, 100, the antenna array 200 comprises at least one third electric conductor 118. The third electric conductor 118 may be a conductor tape, a conductor path integrated into the substrate 111 or a bond wire.
(66) In the embodiment depicted in
(67) The fourth fixing region 119 and the fifth fixing region 120 are each galvanically separated from the first, second and third fixing regions 113, 115, 117, i.e., there is no direct electrically conducting connection between the fourth and fifth fixing regions 119, 120 to one of the first, second and third fixing regions 113, 115, 117.
(68) In other words, the antenna apparatus 10, 100 is spatially and galvanically separated from the fourth fixing region 119, the fifth fixing region 120 and the third bond wire 118. However, the antenna apparatus 10, 100 may be electromagnetically coupled at least to the third bond wire 118.
(69) In this case, the antenna apparatus 10, 100 and the third bond wire 118 may be arranged with respect to each other such that the third bond wire 118 functions as a reflector or as a director with respect to the antenna apparatus 10, 100.
(70) In other words, the antenna array 200 may comprise one of the two antenna apparatuses 10, 100 with at least one first and one second bond wire 14, 114; 16, 116 and the three fixing regions 13, 113; 15, 115; 17; 117 and additionally at least one third bond wire 118 galvanically connecting a fourth and a fifth fixing region 119, 120. The fourth and fifth fixing regions 119, 120 and the third bond wire 118 are electrically or galvanically separated from the two bond wires 14, 114, 16, 116 of the antenna apparatus 10, 100 of the antenna array 200. The third bond wire 118 may have a length L.sub.3 which is different from the length L.sub.1 of the first bond wire 114 and/or from the length L.sub.2 of the second bond wire 116 and/or from a sum of the lengths L.sub.1, L.sub.2 and the expansion a.sub.12 of the second fixing region 15, 115. Furthermore, the third bond wire 118 may be arranged with a distance 44 and approximately in parallel to the first and/or the second bond wire 114, 116. This enables the third bond wire 118 to act as a director or reflector, e.g., as is known from so-called Yagi-Uda configurations, which include a driver element for generating the radio signal and at least one reflector element and at least one director element. This means that the third bond wire 118 may function as a reflector antenna or a director antenna by interacting with at least one of the bond wires. Alternatively, the third bond wire 118 may also be arranged in another configuration as a passive radiator, wherein the distance 44, the length L.sub.3 and/or an orientation of the third bond wire 118 with respect to the first and/or the second bond wire 114, 116 are variable.
(71) Thus, almost any number of antenna arrays 200 may be provided with an antenna apparatus 10, 100 according to the invention. For example, using the inventive antenna apparatus 10, 100 in combination with at least one further electric conductor 118, as described above, several antenna array structures may be provided.
(72) For example,
(73) The RF chip 12 comprises a first antenna port 13 simultaneously serving as a first fixing region 13 for the first bond wire 14. The bond wire 14 extends from the first fixing region 13 to a second fixing region 15 arranged on the substrate 11.
(74) A second bond wire 16 connects the second fixing region 15 to a third fixing region 17 arranged on substrate 11. This results in a series connection of the first and second bond wires 14, 16, which together function as a linear radiator and/or monopole antenna.
(75) Furthermore, a third bond wire 118 connecting a fourth and a fifth fixing region 119, 120 is arranged on the substrate 11. In this case, the third bond wire 118 functions as a reflector for the radio signal emitted by means of the first and second bond wires 14, 16.
(76) Furthermore, at least one fourth bond wire 214 connecting a sixth fixing region 206 arranged on substrate 11 and a seventh fixing region 207 arranged on the substrate 11 is arranged on the substrate 11.
(77) In this case, the fourth bond wire 214 functions as a director for the radio signal emitted by means of the first and second bond wires 14, 16.
(78) Furthermore, a fifth bond wire 215 connecting an eighth fixing region 208 arranged on the substrate 11 and a ninth fixing region 209 arranged on the substrate 11 is arranged on the substrate 11.
(79) In this case, the fifth bond wire 215 functions as a further director for the radio signal emitted by means of the first and second bond wires 14, 16.
(80) Furthermore, a sixth bond wire 216 connecting a tenth fixing region 210 arranged on the substrate 11 and an eleventh fixing region 211 arranged on the substrate 11 is arranged on the substrate 11.
(81) The sixth bond wire 216 also acts as a further director for the radio signal emitted by means of the first and second bond wires 14, 16.
(82) As is shown for an antenna apparatus 250 based on
(83) As is depicted in
(84)
(85) In the following, the invention shall be summarized in other words.
(86) At higher frequencies (e.g., in the millimeter wavelength range and higher) known planar antennas such as patch antennas, dipoles, monopoles, etc. sometimes comprise losses in correlation with the dielectric which is used for manufacturing the antenna. Dielectric and losses and surface wave losses are examples for this.
(87) Furthermore, at such high frequencies, the connection between the RF chip and an antenna on an interposer or a board may lead to signal integrity problems weakening the system performance.
(88) In order to solve this problem, bond wire antennas are provided. They serve as a connection for linking the RF chip and, at the same time, as an antenna. They solve the challenges connected to dielectric losses of conventional planar antennas and they eliminate the necessity for an additional antenna on the interposer or the board.
(89) In order to counteract at high frequencies, e.g., in applications in the millimeter wavelength range and above, the high attenuation of free space associated therewith, suitable antenna structure (e.g., arrays) are needed.
(90) However, due to the present design, known bond wire antennas do not allow the direct connection of an array to the chip or the chip carrier.
(91) However, the present invention proposes bond wire antennas which solve all of the problems stated. The bond wire antenna according to the invention comprises at least two wires which are bonded into a series connection. The first wire connects the antenna pad on the chip to the interposer or the chip carrier. The second wire extends the electric length of the inventive bond wire antenna on the interposer of the chip carrier, e.g., as shown in
(92) The simple implementation of a multiwire bond wire antenna may be used, e.g., in order to provide a multitude of different bond wire antenna configurations. When designing multiwire bond wire antennas it should be noted that the resonance length is determined by the length of both wires and the short connection path between the wired tips of the two wires.
(93) For example, the inventive antenna apparatus may be fed by a planar feed line (e.g., microstrip, coplanar), an electromagnetic coupling (e.g., aperture feed or proximity feed) or a vertical probe feed, e.g., by means of a via.
(94) While this invention has been described in terms of several embodiments, there are alterations, permutations, and equivalents which fall within the scope of this invention. It should also be noted that there are many alternative ways of implementing the methods and compositions of the present invention. It is therefore intended that the following appended claims be interpreted as including all such alterations, permutations and equivalents as fall within the true spirit and scope of the present invention.