METHOD FOR TESTING INSULATION GATE TYPE SiC SEMICONDUCTOR DEVICE, AND INSULATION GATE TYPE SiC SEMICONDUCTOR DEVICE

The H-bridge circuit testing method with specific voltage change rate criteria accurately identifies and removes vulnerable SiC semiconductor devices, enhancing their reliability and longevity.

JP2025117237APending Publication Date: 2025-08-12MINEBEA POWER SEMICON DEVICE INC
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Patent Information

Application Number
JP2024011977
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-01-30
Publication Date
2025-08-12

AI Technical Summary

Technical Problem

Conventional testing methods for insulated gate SiC semiconductor devices fail to accurately distinguish non-standard products prone to damage from high electric fields during switching, particularly in high-voltage applications, leading to potential element destruction over time.

Method used

A testing method involving incorporation of the device into an H-bridge circuit with an inductance load and repeated on/off switching, adhering to the relational expression dv/dt>0.06×t×Vav, where Vav is the rated interrupting voltage, t is the gate insulating film thickness, and dv/dt is the voltage change rate during switching.

Benefits of technology

Enables highly accurate sorting of non-standard products, improving reliability and extending the lifespan of insulated gate SiC semiconductor devices by identifying and removing vulnerable elements.

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Abstract

To provide a method for testing an insulation gate type SiC semiconductor device, capable of accurately selecting a non-standard article difficult to determine in the conventional test method.SOLUTION: A method for testing an insulation gate type SiC semiconductor device comprises the steps of: (a) assembling an element to be tested into an H-bridge type circuit having an inductance load; and (b) repeatedly performing ON / OFF switch by the gate voltage signal of the H-bridge type circuit to pass a bidirectional current through the element to be examined. When setting an interception rated withstand voltage to Vav[kV], a gate insulation film thickness to t[nm] and a voltage change speed during the ON / OFF switch to dv / dt [kV / us], the element to be examined satisfies the relational expression of dv / dt>0.06×t×Vav.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present invention relates to a semiconductor device testing method and a semiconductor device to be tested, and in particular to a technique that is effective when applied to screening tests of insulated gate SiC semiconductor devices. [Background technology]

[0002] Silicon carbide (SiC) has been attracting attention as a semiconductor material that can be used to manufacture power semiconductor elements with low resistance, high voltage resistance, heat resistance, and excellent high-speed characteristics. Power semiconductor elements using SiC include SBDs (Schottky Barrier Diodes), PNDs (PN Diodes), MOSFETs (Metal-Oxide-Semiconductor Field Effect Transistors), and IGBTs (Insulated Gate Bipolar Transistors).

[0003] Since SiC has a dielectric breakdown field strength approximately 10 times higher than that of Si (silicon), it is possible to fabricate high-voltage power semiconductor elements of several hundred to several thousand volts with a higher impurity concentration and thinner drift layer than Si semiconductor elements, thereby realizing high-voltage elements with extremely low on-resistance per unit area.

[0004] In addition, with Si, minority carrier devices such as IGBTs are mainly used to improve the increase in on-resistance that accompanies higher voltages, but this poses the problem of large switching losses, and the resulting heat generation places limits on high-frequency operation.On the other hand, with SiC, high voltages can be achieved using majority carrier devices such as SBDs and MOSFETs, which have high-speed device structures, so it is possible to simultaneously achieve the three performance characteristics of high voltage, low on-resistance, and high speed.

[0005] Furthermore, because the band gap is approximately three times wider than that of Si, it is possible to realize power semiconductor elements that can operate even at high temperatures.

[0006] Background art in this technical field includes, for example, the technology described in Patent Document 1. Patent Document 1 discloses "a method for screening silicon carbide semiconductor devices capable of screening silicon carbide semiconductor devices that do not lose reliability even when used at high temperatures for long periods of time in an inverter circuit in which a diode is connected in antiparallel to a silicon carbide semiconductor device." [Prior art documents] [Patent documents]

[0007] [Patent Document 1] Japanese Patent Application Publication No. 2018-205251 Summary of the Invention [Problem to be solved by the invention]

[0008] In a power semiconductor device (for example, a power MOSFET), a voltage is repeatedly and intermittently applied between the drain and source as it switches. When a MOSFET switches from a conducting state (on) to a blocking state (off), the voltage applied to the MOSFET's drain electrode increases rapidly. This change in drain voltage generates a displacement current via the depletion layer capacitance between the source and drain. This displacement current flows through the P-well and into the source electrode, and at that time, a voltage proportional to the magnitude of the current is generated in the P-well (see Figure 1, described below). In the area where the gate oxide is sandwiched between the P-well and the gate electrode, the high voltage causes a high electric field to be applied to the gate oxide, which can damage the gate oxide. In particular, in the case of high-voltage elements that handle large power supply voltages, the displacement current generated during switching is large, and the electric field applied to the gate oxide is also large, so there is a concern that damage will accumulate over long-term use and lead to element destruction.

[0009] Although there are ways to prevent damage caused by internal electric fields through the design of element structures, it is inevitable that elements that are easily damaged will be included due to variations in the manufacturing process or foreign matter that cannot be completely removed, and such vulnerable elements must be selected and removed through stress testing.

[0010] Furthermore, the breakdown resistance of high-voltage elements is closely related to the interrupting rated breakdown voltage and gate insulating film thickness of the element in question, and is also affected by the switching speed during stress testing, so stress testing must take these factors into consideration.

[0011] In the above Patent Document 1, these parameters are not taken into consideration, and there is room for improvement in terms of highly accurate selection.

[0012] Therefore, an object of the present invention is to provide a testing method for insulated gate SiC semiconductor elements that enables highly accurate sorting of non-standard products that are difficult to distinguish using conventional testing methods, and an insulated gate SiC semiconductor element using the same. [Means for solving the problem]

[0013] In order to solve the above problems, the present invention provides a method for testing an insulated gate SiC semiconductor device, comprising the steps of: (a) incorporating a device under test into an H-bridge circuit having an inductance load; and (b) repeatedly performing on / off switching using a gate voltage signal of the H-bridge circuit to pass a bidirectional current through the device under test, wherein the device under test satisfies the relational expression dv / dt>0.06×t×Vav, where Vav [kV] is the rated interrupting voltage rating, t [nm] is the gate insulating film thickness, and dv / dt [kV / us] is the voltage change rate during on / off switching.

[0014] The present invention also provides an insulated gate SiC semiconductor device that has a gate terminal, a source terminal, and a drain terminal, and that controls a current flowing between the source terminal and the drain terminal by applying a voltage to the gate terminal, the device being incorporated into an H-bridge circuit having an inductance load, and having a history of repeatedly performing on / off switching using a gate voltage signal of the H-bridge circuit to cause a bidirectional current to flow through the device under test, and that satisfies the relational expression dv / dt>0.06×t×Vav, where Vav is the rated interrupting voltage rating, t is the gate insulating film thickness, and dv / dt is the rate of voltage change during on / off switching. [Effects of the Invention]

[0015] According to the present invention, it is possible to realize a testing method for insulated gate SiC semiconductor devices that enables highly accurate sorting of non-standard products that are difficult to distinguish using conventional testing methods, and an insulated gate SiC semiconductor device using the same.

[0016] This contributes to improving the reliability and extending the life of insulated gate SiC semiconductor devices.

[0017] Problems, configurations, and effects other than those described above will become apparent from the following description of the embodiments. [Brief explanation of the drawings]

[0018] [Figure 1] 1 is a diagram schematically illustrating a cross-sectional structure of a SiC-MOSFET according to Example 1 of the present invention. [Figure 2A] FIG. 10 is a diagram showing the relationship between the rated withstand voltage of an element and the voltage change rate dv / dt required for defect screening. [Figure 2B] FIG. 10 is a diagram showing the relationship between the gate insulating film thickness and the voltage change rate dv / dt required for defect screening. [Figure 3] FIG. 1 is a diagram showing an H-bridge type test circuit according to a first embodiment of the present invention. [Figure 4] 4 is a diagram showing an example of a test waveform obtained by the H-bridge type test circuit of FIG. 3. [Figure 5]FIG. 4 is a diagram showing the temperature of the element during testing using the H-bridge type testing circuit of FIG. 3. [Figure 6] 3 is a flowchart showing a method for testing a SiC semiconductor device according to Example 1 of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0019] Hereinafter, an embodiment of the present invention will be described with reference to the drawings. In the drawings, the same components are designated by the same reference numerals, and detailed description of overlapping parts will be omitted. [Example]

[0020] First Embodiment A method for testing an SiC semiconductor device according to a first embodiment of the present invention and an SiC semiconductor device to be tested will be described with reference to FIGS.

[0021] FIG. 1 is a diagram showing a cross-sectional structure of a SiC-MOSFET according to this embodiment, and shows an example of a planar MOSFET.

[0022] As shown in FIG. 1, the SiC-MOSFET 1 of this example has an n+ type SiC substrate 2 and an n type drift layer 3 made of SiC provided on the main surface of the substrate 2.

[0023] Near the surface of the drift layer 3, a p-type body region 4, an n+ type source region 5 containing an n-type dopant at a higher concentration than the n-type drift layer 3, and a p+ type contact region 6 containing a p-type dopant at a higher concentration than the p-type body region 4 are formed.

[0024] A source electrode 7 is formed in contact with at least a part of the n+ type source region 5 and the p+ type contact region 6 near the surface of the drift layer 3.

[0025] A gate insulating film 8 and a gate electrode 9 are formed in contact with the p-type body region 4 near the surface of the drift layer 3 .

[0026] A drain electrode 10 is provided on the rear surface of the SiC substrate 2.

[0027] When the gate electrode 9 is biased to a certain voltage or higher (threshold voltage VGSth) with respect to the source electrode 7, the portion of the p-type body region 4 that is in contact with the gate insulating film 8 on the surface side is inverted to n-type, forming a conductive channel. In this state, when the drain electrode 10 is positively biased with respect to the source electrode 7, electrons flow from the n+ type source region 5 toward the drain electrode 10 through the conductive channel.

[0028] When the gate voltage is equal to or lower than the threshold voltage VGSth, no conductive channel is formed, and when a high drain voltage is applied, a depleted region is formed in the drift layer 3, causing only a small leakage current to flow through the drain electrode 10.

[0029] In this way, by controlling the voltage applied to the gate electrode 9, it is possible to control the on / off of the current (switching operation).

[0030] The method for testing the SiC semiconductor device of this embodiment will be described with reference to the flowchart of FIG.

[0031] First, in step S1, a target SiC semiconductor device is incorporated into an H-bridge circuit having an inductance load (see FIG. 3, which will be described later). Next, in step S2, a gate voltage signal is input to repeatedly perform on / off switching to pass a bidirectional current through the SiC semiconductor element, thereby applying stress to the SiC semiconductor element.

[0032] During this switching, the operating conditions are set so that the relational expression (1) is satisfied.

[0033] dv / dt>0.06×t×Vav (1) Here, Vav [kV] is the rated breakdown voltage of the SiC semiconductor element, t [nm] is the thickness of the gate insulating film, and dv / dt [kV / us] is the rate of voltage change during switching.

[0034] Subsequently, in step S3, the SiC semiconductor device is removed from the H-bridge circuit.

[0035] Next, in step S4, the gate leakage current of the SiC semiconductor element taken out of the H-bridge circuit is measured.

[0036] Next, in step S5, it is determined whether the gate leakage current value is within a predetermined value. If the gate leakage current value is within the predetermined value (Yes), the process proceeds to step S6, where the product is classified as a non-defective product. On the other hand, if the gate leakage current value is outside the predetermined value (No), the process proceeds to step S7, where the product is classified as a defective product.

[0037] According to the test method of this embodiment, by setting the operating conditions in the H-bridge circuit so that the above relational expression (1) is satisfied, weak elements will malfunction or be destroyed, and will be screened out as defective products.

[0038] In addition, since elements with a higher rated breakdown voltage have a greater stress on the gate oxide film, efficient screening is possible if the rated breakdown voltage is 2 kV or more.

[0039] As will be described later with reference to Figure 5, since higher stress can be applied by raising the temperature inside the element due to self-heating caused by current flow, the maximum current flowing during testing should be 1 / 5 or more (preferably 1 / 2 or more) of the rated current of the element, and the junction temperature of the element should desirably be heated to 100°C or higher.

[0040] The voltage change rate dv / dt required for screening out defective products will be described with reference to FIGS. 2A and 2B.

[0041] FIG. 2A is a diagram showing the relationship between the rated breakdown voltage of an element and the voltage change speed (voltage change rate) dv / dt required for defect screening, and FIG. 2B is a diagram showing the relationship between the gate insulating film thickness and the voltage change speed (voltage change rate) dv / dt required for defect screening.

[0042] The voltage change rate dv / dt at which a weak element can be classified as a defective product was calculated, and the relationship shown in FIGS. 2A and 2B was obtained.

[0043] As shown in Figure 2A, the voltage change rate dv / dt required for screening increases in proportion to the device's rated breakdown voltage (rated interrupting voltage). This is because the higher the rated voltage, the smaller the capacitance of the depletion layer, and the smaller the displacement current caused by the capacitance change.

[0044] Furthermore, as shown in FIG. 2B, the thinner the gate insulating film, the lower the withstand voltage, and therefore the voltage change rate dv / dt required for sorting becomes smaller.

[0045] The relationship shown in equation (1) above can be obtained from the voltage change rate dv / dt shown in these two figures.

[0046] Figure 3 shows the device under test (SiC semiconductor device) incorporated into an H-bridge type test circuit.

[0047] In addition to SW1, which is the device under test (DUT), four switch elements, SW2, SW3, and SW4, are added, forming an H-bridge circuit, along with a DC power supply 11 and an inductance load 12. A gate driver GD is connected to each of the switch elements SW1 to SW4 to input a gate signal to each switch element.

[0048] When the switching element has a rated interruption voltage of 3.3 kV and a rated current capacity of 1000 A, for example, the voltage of the DC power supply 11 is 1.8 kV and the inductance load 12 is 2 mH.

[0049] In this embodiment, switch element SW1 is the device under test (DUT), and switch elements SW2 to SW4 are auxiliary elements for configuring an H-bridge circuit, but in order to apply sufficient stress to switch element SW1, which is the device under test (DUT), it is desirable that the interruption rated voltage and rated current capacity of switch elements SW2 to SW4 be larger than those of switch element SW1. Alternatively, switch elements SW2 to SW4 can also be incorporated with the same element as switch element SW1, and all four can be tested as devices under test (DUT).

[0050] Furthermore, if the product under test (DUT) is a type in which two switch elements are mounted in one package (2-in-1 type), the switch elements SW1 and SW2 in Figure 3 may be incorporated into a circuit as a single package product and tested.

[0051] To control the switching speed (speed of voltage change) dv / dt, the gate voltage when turned on / off and the resistance value connected between the gate driver output and the gate terminal of the device under test are adjusted. To apply high stress more efficiently, it is necessary to increase the gate-on voltage, decrease the gate-off voltage, and reduce the gate resistance value.

[0052] The signal input to the gate of each switch element of the H-bridge circuit can be output by comparing the magnitude of a sine wave modulating wave and a sawtooth wave carrier wave, which is called pulse width modulation (PWM) control.

[0053] FIG. 4 shows an example of a test waveform obtained by the H-bridge type test circuit shown in FIG.

[0054] Figure 4 shows the gate voltage signal input to the device under test (DUT) when PWM control is performed using a 50 Hz modulating wave and a 1 kHz carrier wave, as well as the waveforms of the drain voltage of the device under test (DUT) and the current flowing through the device under test (DUT) at that time.

[0055] The drain voltage applied to the device under test changes repeatedly according to the on / off signal input to the gate. If the switching speed (speed of voltage change) dv / dt at this time is within the range shown in equation (1) above, stress can be applied to the device under test efficiently. In the H-bridge test circuit shown in Figure 3, the current reverses positive and negative within one cycle, indicating that it flows in both directions. With such an H-bridge circuit, it is possible to test all operating modes, including on and off of the switching element, as well as forward and reverse recovery.

[0056] FIG. 5 shows the temperature of the element during testing using the H-bridge type test circuit of FIG.

[0057] Figure 5 shows the change in the junction temperature of the device under test during the test. The temperature of the switching element gradually rises due to Joule heat generated by the current flow during the test. The temperature rise at this time depends on the thermal characteristics determined by the switching element structure and the method of cooling the switching element, but it generally reaches a nearly constant steady temperature within a few seconds to a few tens of seconds.

[0058] The test should be repeated for a sufficient time to reach this steady state, and it is desirable that the temperature at that time reach 100°C or higher. In order to reach that temperature, the current applied to the device under test must be at least 1 / 5 (preferably 1 / 2) of its maximum rated current. If the current is low and the maximum temperature reached is low, the stress may be insufficient.

[0059] As described above, the method for testing SiC semiconductor devices in this embodiment includes the steps of (a) incorporating the device under test into an H-bridge circuit having an inductance load, and (b) repeatedly performing on / off switching using a gate voltage signal of the H-bridge circuit to pass a bidirectional current through the device under test, and the device under test satisfies the relational expression dv / dt>0.06×t×Vav, where Vav [kV] is the rated interrupting voltage rating, t [nm] is the gate insulating film thickness, and dv / dt [kV / us] is the voltage change rate during on / off switching.

[0060] Moreover, the SiC semiconductor element of this example is an insulated gate SiC semiconductor element that has a gate terminal, a source terminal, and a drain terminal, and that controls the current that flows between the source terminal and the drain terminal by applying a voltage to the gate terminal, is incorporated into an H-bridge circuit having an inductance load, and has a history of being repeatedly switched on / off by the gate voltage signal of the H-bridge circuit, causing a bidirectional current to flow through the insulated gate SiC semiconductor element, and satisfies the relational expression dv / dt>0.06×t×Vav, where Vav is the rated interrupting voltage rating, t is the gate insulating film thickness, and dv / dt is the rate of voltage change during on / off switching.

[0061] This makes it possible to accurately sort out non-standard products that are difficult to identify using conventional testing methods, contributing to improving the reliability and extending the lifespan of insulated gate SiC semiconductor elements.

[0062] The present invention is not limited to the above-described embodiments and includes various modifications. For example, the above-described embodiments have been described in detail to clearly explain the present invention, and the present invention is not necessarily limited to those including all of the described configurations. Furthermore, it is possible to replace part of the configuration of one embodiment with the configuration of another embodiment, or to add the configuration of another embodiment to the configuration of one embodiment. Furthermore, it is possible to add, delete, or replace part of the configuration of each embodiment with other configurations. [Explanation of symbols]

[0063] 1...SiC-MOSFET 2...SiC substrate (n+ type) 3...Drift layer (n-type) 4...Body region (p-type) 5...Source region (n+ type) 6...Contact region (p+ type) 7...Source electrode 8...Gate insulating film 9...Gate electrode 10...Drain electrode 11…DC power supply 12...Inductive load GD: Gate driver SW1 to SW4...switch elements.

Claims

1. A test method for an insulated gate SiC semiconductor device, comprising: (a) incorporating a device under test into an H-bridge type circuit having an inductance load; (b) repeatedly switching on and off the H-bridge circuit using a gate voltage signal to pass a bidirectional current through the device under test; and When the device under test has an interruption rated withstand voltage of Vav [kV], a gate insulating film thickness of t [nm], and a voltage change rate during on / off switching of dv / dt [kV / us], dv / dt>0.06×t×Vav A method for testing an insulated gate SiC semiconductor device, characterized in that the following relational expression is satisfied:

2. 2. A method for testing an insulated gate SiC semiconductor device according to claim 1, comprising: A method for testing an insulated gate SiC semiconductor device, wherein the device under test has an interruption rated withstand voltage of 2 kV or more.

3. 2. A method for testing an insulated gate SiC semiconductor device according to claim 1, comprising: A method for testing an insulated gate SiC semiconductor device, wherein in the step (b), the junction temperature of the device under test is heated to 100°C or higher due to self-heating caused by current flow.

4. 2. A method for testing an insulated gate SiC semiconductor device according to claim 1, comprising: A method for testing an insulated gate SiC semiconductor device, wherein in the step (b), the maximum value of the bidirectional current flowing through the device under test is 1 / 5 or more of the maximum rated current of the device under test.

5. 2. A method for testing an insulated gate SiC semiconductor device according to claim 1, comprising: A method for testing an insulated gate SiC semiconductor device, wherein in the step (b), the maximum value of the bidirectional current flowing through the device under test is equal to or greater than half of the maximum rated current of the device under test.

6. a gate terminal, a source terminal, and a drain terminal; An insulated gate SiC semiconductor element that controls a current flowing between the source terminal and the drain terminal by applying a voltage to the gate terminal, It is incorporated into an H-bridge circuit with an inductive load, The H-bridge circuit has a history of repeatedly switching on and off using a gate voltage signal to pass a bidirectional current through the insulated gate SiC semiconductor element; When the rated breakdown voltage is Vav [kV], the gate insulating film thickness is t [nm], and the voltage change rate during on / off switching is dv / dt [kV / us], dv / dt>0.06×t×Vav An insulated gate SiC semiconductor element characterized by satisfying the following relational expression.

7. 7. The insulated gate SiC semiconductor device according to claim 6, An insulated gate SiC semiconductor element having a rated breakdown voltage of 2 kV or more.

8. 7. The insulated gate SiC semiconductor device according to claim 6, An insulated gate SiC semiconductor element, characterized in that the junction temperature is heated to 100°C or higher due to self-heating caused by current flow during the repeated on / off switching.

9. 7. The insulated gate SiC semiconductor device according to claim 6, an insulated gate SiC semiconductor element, wherein a maximum value of a bidirectional current flowing through the insulated gate SiC semiconductor element during the repeated on / off switching is 1 / 5 or more of a maximum rated current of the insulated gate SiC semiconductor element.

10. 7. The insulated gate SiC semiconductor device according to claim 6, an insulated gate SiC semiconductor element, wherein a maximum value of a bidirectional current flowing through the insulated gate SiC semiconductor element during the repeated on / off switching is equal to or greater than half of a maximum rated current of the insulated gate SiC semiconductor element.

Citation Information

Patent Citations

  • Method for selecting silicon carbide semiconductor device

    JP2018205251A