The invention relates to a microstructured sensor that can be in particular a gas sensor or acceleration sensor, and a method for its manufacture.
Some sensors have, in addition to a measurement channel, a reference channel for carrying out two measurements in parallel or that are carried out under different conditions. In gas sensors having a reference channel, two separate chips, generally of different wafers, are mounted in a housing. Such gas sensors generally have a membrane having an undercut cavity. However, the internal pressure of the sensor, or the cavity internal pressure, as well as additional parameters such as doping and cavity depth, can deviate significantly from one another in the different sensors, so that different measurement characteristics, and therefore high degrees of imprecision, can result in the comparison of the measurements of gas sensors. Also, the manufacturing of two sensors and their placement in a housing result in correspondingly high manufacturing costs.
In addition, acceleration sensors are known in which to measurement structures operated in parallel are formed on one chip. The contacting takes place through contact pads or outer terminals on one side of the chip. Given a more expensive connection of the sensor in a housing, the contacting to the conductive frame or lead frame of the housing may be expensive.
The sensor and method of manufacturing a sensor according to the invention has the advantage of rendering possible a high degree of spatial integration of measurement structures. According to the invention, both measurement structures are formed on one chip and are accommodated in a common intermediate space under a cap. Very good synchronization characteristics are achieved through the spatial proximity, the identical gas content, and in particular also the identical internal pressure, as well as the direct thermal coupling via the cap and substrate of the measurement chip.
Here, a multi-sided situation of the contact areas advantageously enables a better use of the contact pins of the packing housing. In principle, according to the present invention for example a one-sided formation of a larger contact area is also possible, which for example would have to be contacted to three sides.
The present invention will be described in greater detail with reference to the following drawings wherein:
a shows a top view of a chip system of a gas sensor according to another specific embodiment, having contact areas on two opposite sides and having auxiliary structures for the cap processing at the edge of the chip.
b shows a top view of a chip system of a gas sensor according to another specific embodiment, having a large contact area on one side, a wafer bonding support point as an optical separation, and a common cap recess.
The sensor according to the present invention can be in particular a gas sensor that detects infrared radiation in a measurement wavelength range and a reference wavelength range. Through the absorption of infrared radiation in particular wavelength range is, the concentration of individual gases in a gas mixture, e.g. of CO2 in the ambient air, can be determined. Such a gas sensor can be used for example to determine the air quality in the passenger compartment of a passenger vehicle, as well as to determine leakages in a climate control system that uses CO2 coolant. In addition, selective gas measurements for other gases and applications are also possible. The sensor according to the present invention has at least to measurement areas formed on a chip that are situated in a common intermediate space under a common cap chip. In principle, it is also possible for more than to measurement areas to be provided. The measurement conditions are very well matched due to the direct thermal coupling between the measurement areas via the substrate and the common cap, as well as by the identical gas content in the intermediate space.
The design according to the present invention, having two measurement areas on one chip and only one cap, also offers cost advantages during manufacture in comparison with the separate manufacture of two sensors. In addition, only one chip need be placed and contacted in a sensor module.
In the placement in a housing, both a chip-on-chip and also a flip-chip technique can be used, in which the measurement chip is placed on an evaluation chip. Here a high degree of efficiency in the use of space can be ensured, because the external terminals can be distributed uniformly, so that the wiring expense on the evaluation chip is lower.
In larger sensors in particular, a way for bonding support point can be formed in the intermediate space between the to measurement areas, so that the gas sensor can be exposed to hire loads. Thus, the sensor can in particular also subsequently be housed in a molded housing without being dented by the pressures that occur during molding.
According to
On measurement chip 2, two measurement areas 6, 7 are formed in a lateral direction Y so as to be offset from one another, e.g. directly adjoining one another; in this specific embodiment these measurement areas are also offset somewhat to one another in a longitudinal direction X that runs orthogonal to the lateral direction Y. measurement areas 6, 7 can in particular be formed for the measurement of infrared radiation in various wavelength range is, or for the measurement of accelerations, e.g., an identical acceleration in a first measurement and in a second measurement acting as a reference.
According to the specific embodiment as an infrared sensor or gas sensor according to
Cap chip 4 has on its underside an etched recess 11 for the forming of intermediate space 5. On cap chip 4, above measurement areas 6, 7 radiation filters can be attached using glue that allow infrared radiation S to pass only in predetermined wavelength range is; alternatively, such radiation filters can also be provided at different locations in the optical beam path.
In each of measurement areas 6, 7 infrared radiation S that is to be detected exits through cap chip 4, which is made of silicon that is transparent to the infrared radiation S, and through intermediate space 5, and comes into contact with absorber layer 14, which is heated thereby dependent on the intensity of the radiation. In this way, a thermovoltage is produced at thermopile structure 12 that can be read out electrically. For this purpose, printed conductors 19 run from thermopile structure 12 of measurement areas 6, 7 to contact areas 20, 22, which are subsequent in longitudinal direction X and which have terminal pads 21, 23 for contacting gas sensor 1.
The radiation filters provided in the optical beam path allowed infrared radiation to pass in predetermined different wavelength ranges in order to enable a quantitative measurement of the composition of a gas. Through the reference measurement of second measurement area 7, the measurement of first measurement area 6 can be normed or corrected.
Contact areas 20, 22 of measurement chip 2 are not covered by cap chips 4, and can thus be contacted with wire bonds.
In the specific embodiment of
The specific embodiment of
In the specific embodiment of
b shows a specific embodiment in which measurement areas 6 and 7 are offset in the lateral direction and a wafer bond support point 24 acts as an optical separation. A contact area 29 is left open by cap chip 4 on only one side of measurement chip 2. Contact area 29 can here also be partitioned.
Measurement areas 6, 7 of the specific embodiment of
The manufacture of gas sensors 1 of
Gas sensor 1 according to the present invention can be housed in various types of packings. In
In sensor module 32 of
In the specific embodiment of
In the specific embodiment of
Number | Date | Country | Kind |
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10 2004 010 499 | Mar 2004 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/DE2005/000040 | 1/14/2005 | WO | 00 | 1/6/2006 |
Publishing Document | Publishing Date | Country | Kind |
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WO2005/085808 | 9/15/2005 | WO | A |
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