1. Field of the Invention
The invention relates to an MEMS (micro-electro-mechanical-system) microphone package, and more particularly to a chip-scaled MEMS microphone package.
2. Description of the Related Art
Referring to
The metal cap 101 has a sound inlet 106 through which the MEMS microphone die 103 receives external sound. The MEMS microphone die 103 has an MEMS sensor (not shown) inside for converting sound into an electrical signal. A bonding wire 105 is connected between the MEMS microphone die 103 and the readout IC chip 104. The readout IC chip 104 provides bias voltage (around 12V) for the MEMS sensor, receives the electrical signal from the MEMS sensor, and drives external low-impedance loading.
The metal cap 101 and the substrate 102 constitute a means for shielding, to protect the MEMS microphone die 103 from RF (radio frequency) interference.
However, the size of the conventional MEMS microphone package 10 does not meet modern mobile electronic device requirements for extreme compactness. Specifically, the dimensions of the MEMS sensor are around 1 mm×1 mm, so the MEMS microphone package 10 containing the MEMS sensor is somewhat large when provided in a compact mobile phone. Furthermore, the MEMS microphone package 10 has a minimum thickness of about 1.1 mm, and therefore can not be applied in ultra-thin mobile phones.
The invention provides a chip-scaled MEMS microphone package applicable to various compact electronic devices. The microphone package in accordance with an exemplary embodiment of the invention includes a circuit board and a MEMS microphone chip. The MEMS microphone chip, mounted on the circuit board, includes a substrate, an MEMS transducer formed on the substrate, and a readout circuit also formed on the substrate. The MEMS transducer generates a sound signal according to a sound pressure variation. The readout circuit reads the sound signal from the MEMS transducer.
In another exemplary embodiment of the chip-scaled MEMS microphone package, the MEMS transducer includes a flexible diaphragm vibrating according to the sound pressure variations, and a rigid back plate spaced apart from the flexible diaphragm.
In yet another exemplary embodiment of the chip-scaled MEMS microphone package, the back plate of the MEMS transducer is perforated.
In another exemplary embodiment of the chip-scaled MEMS microphone package, the readout circuit is a complementary metal-oxide semiconductor circuit.
In yet another exemplary embodiment of the chip-scaled MEMS microphone package, the MEMS microphone chip further includes a plurality of side walls which encircle the micro-electro-mechanical-system transducer and the readout circuit on the substrate, and separate the circuit board from the substrate.
In another exemplary embodiment of the chip-scaled MEMS microphone package, a back chamber is formed by the side walls, the circuit board, and the substrate, and the circuit board has a through hole connected to the interior of the back chamber.
In yet another exemplary embodiment of the chip-scaled MEMS microphone package, the side walls, the circuit board, and the substrate are electrically connected to a constant voltage so as to form a means for shielding, thus protecting the MEMS transducer from radio frequency interference.
In another exemplary embodiment of the chip-scaled MEMS microphone package t, the substrate has a contact electrically connected to the constant voltage, and the MEMS microphone chip further includes a bumping ball formed on the substrate and electrically connected to the contact as well as the circuit board.
In yet another exemplary embodiment of the chip-scaled MEMS microphone package, the micro-electro-mechanical-system microphone chip further includes a bumping ball formed on the substrate and electrically connected between the readout circuit and the circuit board.
The invention also provides an electronic device, including a circuit board, a system board, and an MEMS microphone chip. The system board is electrically connected to the circuit board. The MEMS microphone chip, mounted on the circuit board, includes a substrate, a MEMS transducer formed on the substrate, and a readout circuit also formed on the substrate. The MEMS transducer generates a sound signal according to sound pressure variations. The readout circuit reads the sound signal from the MEMS transducer.
In another exemplary embodiment of the electronic device, the MEMS transducer includes a flexible diaphragm vibrating according to sound pressure variations, and a rigid back plate spaced apart from the flexible diaphragm.
In yet another exemplary embodiment of the electronic device, the back plate of the MEMS transducer is perforated.
In another exemplary embodiment of the electronic device, the readout circuit is a complementary metal-oxide semiconductor circuit.
In yet another exemplary embodiment of the electronic device, the MEMS microphone chip further includes a plurality of side walls which encircle the micro-electro-mechanical-system transducer and the readout circuit on the substrate, and separate the circuit board from the substrate.
In another exemplary embodiment of the electronic device t, a back chamber is formed by the side walls, the circuit board, and the substrate, and the circuit board has a through hole connected to the interior of the back chamber.
In yet another exemplary embodiment of the electronic device, the side walls, the circuit board, and the substrate are electrically connected to a constant voltage so as to form a means for shielding, thus protecting the micro-electro-mechanical-system transducer from radio frequency interference.
In another exemplary embodiment of the electronic device, the substrate has a contact electrically connected to the constant voltage, and the micro-electro-mechanical-system microphone chip further includes a bumping ball formed on the substrate and electrically connected to the contact as well as the circuit board.
In yet another exemplary embodiment of the electronic device, the MEMS microphone chip further includes a bumping ball formed on the substrate and electrically connected between the readout circuit and the circuit board.
The invention also provides an MEMS microphone chip, including a substrate, a MEMS transducer, and a readout circuit. The MEMS transducer, formed on the substrate, generates a sound signal according to sound pressure variations. The readout circuit, also formed on the substrate, reads the sound signal from the MEMS transducer.
In another exemplary embodiment of the MEMS microphone chip, the MEMS transducer includes a flexible diaphragm vibrating according to sound pressure variations, and a rigid back plate spaced apart from the flexible diaphragm.
In yet another exemplary embodiment of the MEMS microphone chip, the back plate of the MEMS transducer is perforated.
In another exemplary embodiment of the MEMS microphone chip, the readout circuit is a complementary metal-oxide semiconductor circuit.
In yet another exemplary embodiment of the MEMS microphone chip, the MEMS microphone chip further includes a plurality of side walls encircling the MEMS transducer and the readout circuit on the substrate.
In another exemplary embodiment of the MEMS microphone chip, the MEMS microphone chip further includes a bumping ball formed on the substrate and electrically connected to the readout circuit.
In yet another exemplary embodiment of the MEMS microphone chip, the MEMS microphone chip further includes a bumping ball formed on the substrate and electrically connected to a constant voltage through the substrate.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
The following description is of the best-contemplated mode of carrying out the invention. This description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
Referring to
Referring to
A plurality of side walls 208 is provided on the substrate 207 to encircle the MEMS transducer 203, the readout circuit 204, and the bumping balls 209 and 209′.
The circuit board 202 and the substrate 207 of the MEMS microphone chip 200 are spaced apart by the side walls 208. Thus, a back chamber 201 is formed by the side walls 208, the circuit board 202, and the substrate 207. Note that a larger back chamber 201 is preferred. As described, the rigid back plate 2032 is perforated. This arrangement facilitates vibration of the flexible diaphragm 2031 by forcing air between the flexible diaphragm 2031 and the rigid back plate 2032 into and out of the back chamber 201. If the volume of the back chamber 201 is too small, then there may be some difficulty by the flexible diaphragm 2031 to produce sound pressure vibrations, thus making the sensitivity of the MEMS microphone chip 200 poor.
There should be a complete connection of the side walls 208 to the circuit board 202 and the substrate 20 to avoid any acoustic leakage into the back chamber 201. This ensures that the MEMS microphone chip 200 can only receive sound through the sound inlet 2072. On the other hand, if there is a gap through which sound enters the back chamber 201, then the flexible diaphragm 2031 will suffer from opposing sound pressures, one from the sound inlet 2072 and the other from the back chamber 201. Under such a circumstance, the vibration of the flexible diaphragm 2031 will be constrained, and the sensitivity of the MEMS microphone chip 200 will be lowered.
The side walls 208 and the circuit board 202 are electrically connected to the grounded contact 2071 through the bumping ball 209′. Thus, the side walls 208, the circuit board 202, and the substrate 207 constitute a means for shielding (also named Faraday cage) which is electrically connected to the ground (or a constant voltage), thus protecting the MEMS microphone transducer 203 from radio frequency (RF) interference.
For some applications of the electronic device 40, the circuit board 202 is provided with a small through hole allowing air leakage into the back chamber 201.
It is understood that the invention is equally applicable to a variety of electronic devices including cellular phones, personal digital assistants (PDAs), global positioning system (GPS) receivers, and others.
While the invention has been described by way of example and in terms of preferred embodiment, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Name | Date | Kind |
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5490220 | Loeppert | Feb 1996 | A |
5856914 | O'Boyle | Jan 1999 | A |
6178249 | Hietanen et al. | Jan 2001 | B1 |
6870939 | Chiang et al. | Mar 2005 | B2 |
7466834 | Ogura et al. | Dec 2008 | B2 |
Number | Date | Country | |
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20100027830 A1 | Feb 2010 | US |