Sensor Arrangement and Method for Producing a Sensor Arrangement

In an embodiment a sensor arrangement includes a ceramic-based substrate, at least one sensor chip connected directly to the substrate in a horizontal position by a bonding material, at least one first contact element and at least one second contact element configured to act as outer electrodes of the sensor arrangement, wherein the first contact element comprises a contact member configured to electrically contact the sensor chip by the bonding material and an insulating body enveloping the sensor chip and at least parts of the contact elements, wherein the substrate is mainly free from a material of the insulating body.

This patent application is a national phase filing under section 371 of PCT/EP2021/083721, filed Dec. 1, 2021, which claims the priority of German Patent Application 102020133985.2, filed Dec. 17, 2020, each of which is incorporated herein by reference in its entirety.

TECHNICAL FIELD

The present invention relates to a sensor arrangement, e.g. a sensor arrangement for measuring a temperature. Moreover, the present invention relates to a method for producing a sensor arrangement, for example a sensor arrangement for measuring a temperature.

BACKGROUND

Temperature surface sensitivity in a NTC (Negative Temperature Coefficient) sensor design, cannot be obtained optimally due to position constrains of the sensing element, mostly in vertical position. This is aggravated by the fact that, in order to fulfill high voltage withstand and humidity resistance requirements, an intensive packaging is required.

Moreover, achieving a high operating temperature up to 200° C. is challenging, as the available material selection is very limited. None of the known sensor designs can resolve all described challenges in a small size, cost comprehensive design and a packaging solution suitable for mass production.

U.S. Pat. App. No. 2018/122537 A describes a temperature sensor comprising a carrier substrate, an NTC element, a pair of electrodes, and metal blocks that electrically contact the NTC element and form outer electrodes on the surface of an insulating housing.

International App. No. WO 96/04536 A1 describes a temperature sensor with a housing made of an insulating material, a heat conducting element, a heat sensitive sensor chip arranged in the area of and/or pressed against the heat conducting element, and at least two connecting elements. At least one electroconductive pin is provided. One of the ends of the electroconductive pin applies a pressure oriented against the heat conducting element on the sensor chip and its other end is supported on the end of one of both connecting elements located inside the housing or on the ends of separate fixed parts of contact springs.

U.S. Pat. App. No. 2008/308886 A describes a semiconductor sensor comprising a carrier with a conductive structure with pads and leads, conducting lines projecting out of a resin package.

U.S. Pat. App. No. 2017/352603 A describes sensor chip packages with ceramic carriers, a conductive structure with pads and leads as well as a resin package.

KR Patent App. No. 2005/0112719 A describes an arrangement of a chip thermistor soldered to bended lead frames.

U.S. Pat. App. No. 2018/0306646 AA describes a sensor arrangement including a sensor chip with at least one electrode and at least one contacting element shaped as a metal bracket. The contacting element is arranged and configured for wireless contacting of the sensor chip.

SUMMARY

Embodiments solve the above mentioned problems.

According to a first embodiment of the present disclosure, a sensor arrangement is provided. The sensor arrangement may be adapted for measuring a temperature. The sensor arrangement may be temperature sensor arrangement. The sensor arrangement may be adapted to operate at high temperatures up to 200° C.

The sensor arrangement comprises a substrate. The substrate may be ceramic-based. In other words, the substrate may comprise a ceramic material. The substrate may be a high performing ceramic substrate which is excellent in electrical insulation and humidity resistance and has a high thermal conductivity. The substrate may further be adapted and arranged to mechanically stabilize and electrically insulate the further components of the sensor arrangement.

The ceramic material may comprise Al2O3, for example. Al2O3(alumina) ceramics is commonly used with well-known properties i.e. high thermal conductivity, high electrical insulation, low thermal expansion. However, alternative materials both oxide and non-oxide ceramics are available as well. Silicate ceramics or even ZTA (Zirconia Toughen Alumina) for higher mechanical strength are examples of oxide ceramics. Alternatively, non-oxide ceramics such as AlN (alumina nitride) or Si3N4(silicon nitride) ceramics may be used.

The sensor arrangement further comprises at least one sensor chip. The sensor chip may be a NTC sensor chip. Alternatively, the sensor chip may be a PTC (Positive Temperature Coefficient) sensor chip. The sensor arrangement may comprise more than one sensor chip. For example, the sensor arrangement may comprise a combination of NTC and PTC sensor chips.

The sensor chip, in particular an electrode arranged on a surface (for example the lower surface) of the sensor chip, is connected directly to the substrate in a horizontal position. “Horizontal” means that a surface of the sensor chip which has the largest extension is connected to the substrate. This increases the surface sensitivity of the sensor chip. Although the sensor chip 3 is bonded directly, it is yet fully isolated due to excellent electrical insulation and humidity resistance properties of the ceramic substrate.

The sensor chip is connected to the substrate by means of a bonding material. In other words, the sensor chip is bonded to the substrate, in particular to a metallized pad of the substrate. The bonding material may be a high melting solder material with operating temperatures > 200° C. The bonding material may be leaded or lead free. Suitable materials may be Pb97.5SnAg1.5,SnAg0.3Cu0.7or Sn90Sb10, for example.

The sensor arrangement further comprises a first contact element and a second contact element. The contact elements comprise copper, brass or phosphor bronze, for example. The contact elements are adapted and arranged to act as outer electrodes of the sensor arrangement. This means that the contact elements enable an electrical connection of the sensor arrangement from an outer side of the sensor arrangement.

The contact elements are electrically and mechanically connected to the substrate, in particular to metallized pads of the substrate. The contact elements are connected to the substrate by means of the previously mentioned bonding material.

The first contact element further comprises a contact member. The first contact element and the contact member may be integrally formed. The contact member is adapted and arranged to electrically contact the sensor chip by means of the bonding material. In other words, the contact member is bonded to the sensor chip, in particular to an electrode arranged on a surface (for example the upper surface) of sensor chip, by means of the previously mentioned bonding material.

The sensor arrangement further comprises an insulating body. The insulating body is designed to electrically insulate the sensor arrangement and to protect the sensor arrangement from environmental influences. The insulating body envelops the sensor chip completely. The insulating body envelops at least parts of the contact elements. For example, the insulating body completely covers the contact member. The substrate is, however, mainly free from a material of the insulating body.

Due to its specific design and composition, the sensor arrangement provides high performing thermal coupling for excellent surface sensitivity. In other words, the sensor arrangement is a fast response sensor. Moreover, the sensor arrangement comprises a high voltage withstand and is able to operate at temperatures up to 200° C. In addition, the sensor arrangement comprises a compact and small size and is suitable for mass production. All in all, a very robust, fast and cost-effective sensor arrangement is provided which is very flexible in use.

According to one embodiment, the material of the insulating body is adapted and arranged to increase an electrical and humidity resistance of the sensor arrangement. The insulating material of the body comprises a thermoset epoxy material with glass transition of a temperature close to 200° C.

The combination between the ceramic substrate and the insulating material fulfills high voltage withstand, humidity resistance and high operating temperature (up to 200° C.) requirements. Furthermore, it provides a specific design for a compact and small sensor arrangement. With the specific selection of materials and a well-known production process, the sensor arrangement is, in addition, very cost-effective. Materials are selected to fulfill a green product conform to ROHS (Restriction of Hazardous Substances) Directive, lead free and halogen free requirements.

The material of the insulating body is arranged directly on an upper surface of the substrate. In particular, the material of the insulating body covers at least parts of that surface of the substrate to which the sensor chip and the contact elements are connected, i.e. the upper surface of the substrate.

The connection between the sensor chip and the substrate as well as the connection between the contact elements and the substrate is packaged by the material of the insulating body. The side surfaces and a lower surface of the substrate are free from the material of the insulating body. This free area of the substrate functions as sensing part of the sensor arrangement. Moreover, also a circumferential edge region of the upper surface of the substrate may be free from the material of the insulating body.

According to one embodiment, the respective contact element is U-shaped. In particular, the contact element comprises a U-shaped bracket or spring member. In other words, the respective contact element may comprise two legs which are connected by a bar or bridge. The legs and the bar are integrally formed. This means that a first leg merges into the bar and the bar merges into a second leg of the respective contact element. In other words, the legs and the bar may be made in one piece.

The specific shape of the contact elements provides a good solder ability, less mass density and less mechanical stress to the sensor chip during the bonding process.

According to one embodiment, the respective contact element comprises a first contact area. The first contact areas may be formed/provided by one of the two legs of the respective U-shaped spring member. The first contact area is free from an insulating material of the body. In other words, the first contact areas protrude from the insulating material of the body. The first contact areas function as the outer electrodes of the sensor arrangement. In this way, an effective further processing of the sensor arrangement is enabled.

According to one embodiment, the respective contact element comprises a second contact area. The second contact areas are formed by the other one of the two legs of the respective U-shaped spring member. The second contact area is completely enveloped with an insulating material of the body. In other words, it is arranged within the insulating body of the sensor arrangement.

The second contact areas are bonded to metallized pads of the substrate to establish an electrical contact between the contact elements and the substrate. In this way, an effective electrical connection between the substrate and the contact elements is enabled. Besides, the specific shape of contact elements accumulates less heat compared to a metal block, for example. Due to fast dissipation this will result in a more accurate measurement result.

According to one embodiment, the contact member is designed to reduce mechanical stress between the first contact element and the sensor chip. The contact member may comprise a flat shape or an arcuate shape. The contact member may comprise an additional spring arranged at a free end of the second contact area of the first contact element. The contact member is arranged within an insulating material of the body. The specific shape of the contact member permits the sensor chip to be used as sensing element without wire bonds to enable a more robust connection and very economical solution.

According to a further embodiment, a method for producing a sensor arrangement is described. The sensor arrangement may be the previously described sensor arrangement. All features described in connection with the sensor arrangement apply for the method and vice versa.

The method comprises the following steps:

A) Providing a ceramic-based substrate and arranging a plurality of metallized pads onto a surface, in particular an upper surface, of the substrate. The substrate may be a high performing ceramic substrate excellent in electrical insulation and humidity resistance and having a high thermal conductivity. The substrate may comprise an Al2O3, ZTA, silicate, AlN or Si3N4ceramic.

B) Providing a bonding material. The bonding material may comprise a solder paste. The bonding material may be a high melting solder material with operating temperatures > 200° C. The bonding material may be leaded or lead-free. An example for a high melt solder but leaded material may be Pb97.5SnAg1.5.Alternatively, SnAg0.3Cu0.7or Sn90Sb10may be options for lead free and high temperature solder materials for applications above 200° C.

The bonding material may be applied point-like. In particular, one respective point of the bonding material may be applied to a part of the metallized pads. The bonding material may be dispensed or screen printed onto the metallized pads.

C) Providing a plurality of sensor chips. The respective sensor chip may comprise electrodes arranged on an upper side and an under side of the sensor chip (upper electrodes and lower electrodes). The sensor chips may comprise NTC and/or PTC sensor chips.

The sensor chips may be placed onto the substrate, and, especially, onto the bonding material applied on the metallized pads of the substrate. In particular, a tip of the respective sensor chip is placed onto the point-like bonding material. The sensor chips are placed such that the respective sensor chip is arranged on the substrate in a horizontal position.

D) Reflow soldering to electrically connect one of the electrodes (i.e. the lower electrode) of the respective sensor chip with the substrate such that the respective sensor chip is arranged on the substrate in horizontal position.

E) Providing again the bonding material. The bonding material may be the same bonding material as applied in step B).

The bonding material may be applied point-like. In particular, one respective point of the bonding material may be applied onto the upper electrode of the respective sensor chip. Further points of the bonding material may be applied onto at least parts of the metallized pads. In particular, two points of the bonding material may be applied to two of the metallized pads for achieving one final sensor arrangement. The bonding material may be dispensed or screen printed onto the metallized pads and the sensor chips.

F) Providing a plurality of first and second contact elements. The respective contact element comprises a first contact area and a second contact area. The first contact area is suited to act as an outer electrode of the sensor arrangement. The second contact area is suited to electrically connect the substrate to the respective contact element. The respective first contact element comprises a contact member. The contact member is adapted and arranged to establish an electrical connection between the sensor chip and the first contact element.

The contact elements are placed onto the substrate such that one respective second contact area is arranged on one respective point of the bonding material arranged on the metallized pads. Moreover, the contact elements are placed such that the respective contact member is arranged onto the point-like bonding material arranged on the upper electrode of the sensor chip.

G) Reflow soldering to electrically connect the second contact areas with the metallized pads and the contact members with the other one of the electrodes (i.e. the upper electrodes) of the sensor chip.

H) Packaging. This step includes providing an insulating material and molding an insulating body from the insulation material. The insulating material is molded such that it covers only parts of that surface of the substrate to which the sensor chip and the second contact areas are connected. i.e. the upper surface of the substrate.

The insulating material is arranged to completely package the connection betweenthe contact elements and the substrate and the connection between the sensor chips and the substrate. The insulating material is further arranged to completely cover the sensor chip, the second contact areas and the contact members. The first contact areas as well as the side surfaces and the lower surface of the substrate remain free from insulating material. Moreover, parts of the upper surface of the substrate (e.g. a circumferential edge area) may also remain free from the insulating material.

The insulating material comprises a thermoset epoxy material with glass transition of a temperature close to 200° C.

I) Singulation. This step includes cutting the substrate into individual components to provide a plurality of sensor arrangements.

By means of the described method a fast and cost-effective process is provided for producing a plurality of sensor arrangements having a high surface sensitivity, a small size, a high voltage withstand, a humidity resistance and a high operating temperature up to 200° C. The sensor arrangement with two robust electrodes (contact elements) enables easy further processing and provides optimal system integration.

DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS

In the figures, elements of the same structure and/or functionality may be referenced by the same reference numerals. It is to be understood that the embodiments shown in the figures are illustrative representations and are not necessarily drawn to scale.

FIG.1shows a sensor arrangement1for temperature measurement according to a first embodiment. The sensor arrangement1is adapted to provide a high surface sensitivity, high voltage withstand and operating temperatures up to 200° C. The sensor arrangement has a small and compact design.

The sensor arrangement1comprises a ceramic-based substrate2. The ceramic material of the substrate2comprises Al2O3, ZTA, a silicate, AlN or Si3N4, for example. The substrate2is electrically insulating and comprises a high humidity resistance.

The substrate2comprises an upper surface2a, a lower surface2cand side surfaces2b. The substrate2comprises metallization pads4which enable an electrical connection of the substrate2. The metallization pads4are arranged directly on the upper surface2aof the substrate2.

The sensor arrangement1further comprises a sensor chip3. In this embodiment, the sensor chip3is a NTC temperature sensor chip. However, in alternative embodiments, the sensor arrangement1may also comprise a PTC sensor or a combination of NTC and PTC sensors.

The sensor chip3comprises an electrode3aarranged on an upper surface of the sensor chip3(upper electrode) and an electrode3aarranged on a lower surface of the sensor chip3(lower electrode).

The sensor chip3and, in particular the lower electrode3a, is bonded directly to a metallization pad4of the substrate2in a horizontal position to achieve a good surface sensitivity. In this context, the term “horizontal position” shall mean that the lower surface of the sensor chip3— which is bonded to the substrate2— has a larger extension than side surfaces of the sensor chip3which extend perpendicularly to the upper surface2aof the substrate2.

The sensor chip3is bonded to the substrate2by means of a bonding material5. The bonding material5is a high melting solder material with operating temperatures > 200° C. For example, the bonding material5comprises a high melt solder but leaded material such as Pb97.5SnAg1.5. Alternatively, the bonding material5comprises lead free SnAg0.3Cu0.7or Sn90Sb10, for example.

The sensor arrangement1further comprises a first contact element8aand a second contact element8b. The contact elements8a,8bare U-shaped. In particular, they comprise two legs which are connected by means of a bar or middle piece9. The legs and the bar9are integrally formed, i.e. they are made from one piece.

The contact elements8a,8bare at least to a certain degree elastically deformable. This helps to reduce mechanical stress which arises when the components of the sensor arrangement1are connected to one another. The contact elements8a,8bare U-shaped spring members. They comprise metal. Suitable materials for the contact elements8a,8bmay be copper, brass or phosphor bronze.

The contact elements8a,8beach comprise a first contact area12and a second contact area13. In this embodiment, first and second contact area12,13are oppositely arranged. The first contact area12is situated in an upper region of the sensor arrangement1. The second contact area13is arranged in a lower region of the sensor arrangement1. The first contact area12is provided by one of the two legs (in particular the upper leg) of the respective U-shaped spring member. The second contact area13is provided by the other one of the two legs (in particular the lower leg) of the respective U-shaped spring member.

The first contact areas12protrude from an insulating body7of the sensor arrangement1. The insulating body7is described later on in detail. As can be gathered fromFIG.1, the contact areas12, do, however, not project from an upper surface of the insulating body7/ sensor arrangement1. Rather, the upper surface of the insulating body7/ sensor arrangement1is flat. The contact areas12are integrated into the upper surface and form a part of the upper surface of the insulating body7/ sensor arrangement1.

As already mentioned, in this embodiment, the first contact areas12are formed on the upper surface of the sensor arrangement1. In other words, the first contact areas12are accessible from an upper side of the sensor arrangement1to enable further processing. The first contact areas12act as outer electrodes6of the sensor arrangement1. A free end14of the upper leg of the respective contact element8a,8bis bent with respect to the first contact surfaces12. In particular, the free end14is bent towards the substrate2. This may help to further reduce mechanical stress.

The second contact areas13are connected to the metallized pads4by means of the previously described bonding material5.

The first contact element8afurther comprises a contact member11which is bonded to the upper electrode3aof the sensor chip3by means of the previously mentioned bonding material5.

The contact member11is part of the first contact element8a. In particular, it is integrally formed with the first contact element8a. The contact member11is formed by a free end of the second contact area13of the first contact element8a. In an intermediate region15, the second contact area13passes over into the contact member11. The intermediate region15is bent.

The contact member11is designed to reduce mechanical stress between the first contact element8aand the sensor chip3. The contact member11comprises an additional spring arranged at the free end of the second contact area13. In this embodiment, the contact member11comprises a flat shape. The contact member11lies completely on the upper electrode3aof the sensor chip3.

The sensor arrangement1further comprises the above mentioned insulating body7. The insulating body7increases an electrical and humidity resistance of the sensor arrangement1. It comprises a thermoset epoxy material with glass transition of a temperature close to 200° C.

The material of the insulating body7(insulating material) covers the sensor chip3, the contact member11and the second contact areas13completely. Also the free end14of the first contact areas12is arranged completely within the insulating body7.

However, the first contact areas12, in particular an upper face of the first contact areas12are free from an insulating material of the body7. In other words, they protrude from the body7, thus acting as outer electrodes6of the sensor arrangement1.

Moreover, the insulating body7covers only parts of the substrate2. The material of the body7is arranged at least partly on the upper surface2aof the substrate2. In particular, the insulating material covers parts of that surface of the substrate2to which the sensor chip3and the contact elements8a,8bare connected. Accordingly, the connections between contact elements8a,8band substrate2and the connections between sensor chip3and substrate2are completely packaged by the material of the insulating body7.

As can be gathered fromFIG.1, the material of the insulating body7does, however, not protrude over the upper surface2aof the substrate2. The side surfaces2band the lower surface2cof the substrate2are free from the material of the insulating body7. This part free from the insulating material functions as sensing part of the sensor arrangement1.

The above described design and materials of the sensor arrangement1lead to a high surface sensitivity, a high voltage withstand, a high humidity resistance and a high operating temperature (up to 200° C.) of the sensor arrangement1.

FIG.2shows a sensor arrangement1for temperature measurement according to a second embodiment. The sensor arrangement1comprises the same components as the above described sensor arrangement1, i.e. the substrate2, the sensor chip3, the contact elements8a,8bwith first and second contact areas12,13and the insulating body7. With regard to these components, it is referred to the description inFIG.1.

In contrast to the sensor arrangement described in connection withFIG.1, the contact member11of the first contact element8ais not flat but has an arcuate shape. Thus, the contact member11does not lie completely, i.e. over its whole extension, on the upper electrode3aof the sensor chip3. Rather, it is bonded only in a small area, i.e. a middle area16, to the upper electrode3. Side areas17, which surround the middle area16of the contact member11, are bent upwards towards the upper surface of the sensor arrangement1.

This design helps to further reduce mechanical stress between the sensor chip3and the first contact element8a. Moreover, thickness variations of the sensor chip3may be compensated in a better way be the arcuate shape of the contact member11.

FIG.3shows a sensor arrangement1for temperature measurement according to a third embodiment. The sensor arrangement1comprises the same components as the above described sensor arrangement1, i.e. the substrate2, the sensor chip3, the contact elements8a,8bwith first and second contact areas12,13, the insulating body7and the contact member11. With regard to these components, it is referred to the description inFIG.1.

In contrast to the embodiments described above, the first contact areas12are not formed on the upper surface of the insulating body7/ sensor arrangement1. In this embodiment, the first contact areas12are formed on side surfaces of the body7/ the sensor arrangement1.

Accordingly, the first contact surfaces12which act as outer electrodes6are accessible from the side surfaces of the sensor arrangement1to enable further processing.

Moreover, in this embodiment, the free end14of the upper leg of the respective contact element8a,8bis not bent with respect to the first contact surfaces12. Rather, the free end extends along the side surface of the body7and is accessible from the outside of the body7.

As already described in connection withFIG.1, the contact areas12do not project from the side surface but are integrated into the side surface and form a part of the side surface.

FIG.4and5schematically show a top view of multichip packages10. The multichip packages10comprise a plurality of sensor chips3, e.g. two sensor chips3(seeFIG.4) or three sensor chips3(seeFIG.5). Of course, a multichip package10can comprise more than three sensor chips3, e.g. five or ten sensor chips3.

The multichip packages10can be electrically connected by means of outer electrodes6which are formed by the first contact areas12of the contact elements8a,8bas described above. The contact elements8a,8band the sensor chips3are bonded to the substrate2(not explicitly shown, seeFIGS.1to3) and are embedded in the insulating body7.

In the following, a method for producing a sensor arrangement1and/or a multichip package10is described. In particular, by means of the method, the previously described sensor arrangement1/ multichip package10is produced.

The method comprises the following steps:A) In a first step, a ceramic-based substrate2is provided. The substrate2is a high performing ceramic substrate excellent in electrical insulation and humidity resistance and has a high thermal conductivity. The substrate2comprises an Al2O3, ZTA, silicate, AlN or Si3N4ceramic. Afterwards, a plurality of metallized pads4is arranged on the substrate2. The metallized pads4are arranged on an upper surface2aof the substrate2.B) In a second step, a bonding material5is provided. The bonding material5is a high melting solder material with operating temperatures > 200° C. The bonding material5may comprise Pb97.5SnAg1.5, SnAg0.3Cu0.7or Sn90Sb10, for example.

One respective point of the bonding material5is applied onto a partial quantity of the metallized pads4. In particular, one specific point of the bonding material5is applied to one metallized pad4to enable the electrical connection of one of the sensor chips3. The bonding material5is dispensed or screen printed onto the partial quantity of the metallized pads4.

C) In a further step, a plurality of sensor chips3is provided. The sensor chips3may be NTC or PTC chips or a combination thereof. A combination of NTC and PTC chips is used for applications where temperature measurement is equipped with a safety function requirement. The respective sensor chip3comprises electrodes3awhich are arranged on an upper side and an under side of the sensor chip3.

The sensor chips3are placed onto the substrate2, and, in particular, onto the point-like bonding material5. The sensor chips3are placed such that the respective sensor chip3is arranged on the substrate2in a horizontal position.

D) In a next step, reflow soldering takes place. In this way, the lower electrode3aof the respective sensor chip3is electrically connected to the substrate2. The lower electrodes3aare connected with a metallized pad4by means of the bonding material5such that the respective sensor chip3is arranged on the substrate2in a horizontal position. In this way, the surface sensitivity of the sensor arrangement1/ multichip package10is increased.

E) In a next step, the bonding material5is provided again, e.g. scree-printed or dispensed. The bonding material5is applied point-like onto the upper electrode3aof the respective sensor chip3.

Further points of the bonding material5are applied to the metallized pads4of the remaining quantity of metallized pads4. In particular, two points of the bonding material5are applied to two of the metallized pads4for achieving one final sensor arrangement1. Accordingly, in this method step, altogether three points of bonding material5are applied for obtaining one final sensor arrangement1.

F) In a further step, a plurality of first and second contact elements8a,8bis provided. Thereby, for one sensor chip3one pair of contact elements8a, b is provided. The respective contact element8a,8bcomprises a first contact area12and a second contact area13.

The first contact area12acts as an outer electrode6of the sensor arrangement1/ multichip package10, thus being accessible from an outer side of the sensor arrangement1/ multichip package10.

The second contact area13is used to electrically connect the substrate2to the respective contact element8a,8b. The respective first contact element8acomprises a contact member11which is used to electrically connect the sensor chip3and the first contact element8a.

One respective contact element8a,8bis placed onto one point of bonding material5arranged on the metallized pads4. Moreover, the contact elements8a,8bare placed such that the respective contact member11is arranged onto the point-like bonding material5arranged on the upper electrode3aof the sensor chip3. In other words, three points of the bonding material5are needed to electrically connect one pair of contact elements8a,8bto the substrate2and to further electrically connect the first contact element8a(in particular the contact member11) to the sensor chip3.

G) In a next step, reflow soldering takes place to electrically connect the contact elements8a,8b, in particular the second contact areas13, with the metallized pads4and to electrically connect the contact members11with the upper electrode3aof the respective sensor chip3.

H) In a next step, packaging takes place. Thereby, an insulating material is provided and an insulating body7is molded from the insulation material. The insulating material comprises a thermoset epoxy material with glass transition of a temperature close to 200° C.

The body7is formed such that the insulating material covers at least parts the upper surface2aof the substrate2. For example, a circumferential edge region of the upper surface2may remain free from the insulating material. The insulating material however completely covers the connection between the contact elements8a,8band the substrate2and the connection between the sensor chips3and the substrate2.

The insulating material further completely covers the sensor chip3, the second contact areas13and the contact members11. The first contact areas12remain free from insulating material. Moreover, the side surfaces2aand the lower surface2cof the substrate2remain free from insulating material, as well.

I) In a last step, singulation takes place. Thereby, the substrate2is cut into individual components to provide a plurality of sensor arrangements1. The cutting pattern may vary to obtain a multichip package10.

Although the invention has been illustrated and described in detail by means of the preferred embodiment examples, the present invention is not restricted by the disclosed examples and other variations may be derived by the skilled person without exceeding the scope of protection of the invention.