IXGP7N60C IGBT Equivalent & Substitute Parts

Part Overview

The IXGP7N60C is a 600V, 14A IGBT manufactured by IXYS in the HiPerFAST™ and Lightspeed™ series. This component is rated for 54W maximum power dissipation and features a Through Hole TO-220-3 package. The part is classified as obsolete, necessitating identification of active equivalent and substitute components for ongoing design requirements and production continuity.

Substiute Parts

IXGP7N60C
IXYSIn Stock: 853IXGP7N60C Datasheet
IXGP7N60C
Current Part
IXYP8N90C3
IXYSIn Stock: 788IXYP8N90C3 Datasheet
IXYP8N90C3
Direct
IKA15N60TXKSA1
Infineon TechnologiesIn Stock: 800IKA15N60TXKSA1 Datasheet
IKA15N60TXKSA1
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STGF7H60DF
STMicroelectronicsIn Stock: 1288STGF7H60DF Datasheet
STGF7H60DF
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STGP7H60DF
STMicroelectronicsIn Stock: 951STGP7H60DF Datasheet
STGP7H60DF
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STGP7NC60HD
STMicroelectronicsIn Stock: 1925STGP7NC60HD Datasheet
STGP7NC60HD
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Key Parameters

Parameter Value Unit
Voltage - Collector Emitter Breakdown (Max) 600 V
Current - Collector (Ic) (Max) 14 A
Current - Collector Pulsed (Icm) 30 A
Power - Max 54 W
Vce(on) (Max) @ Vge, Ic 2.7V @ 15V, 7A V
Gate Charge 25 nC
Switching Energy (on/off) 70µJ / 120µJ µJ
Td (on/off) @ 25°C 9ns / 65ns ns
Operating Temperature Range -55 to 150 °C (TJ)
Package / Case TO-220-3 -
Mounting Type Through Hole -

Substitute Part Grouping Explanation

Substitution of the IXGP7N60C is determined by the following critical parameters:

Primary Substitution Criteria:

  • Voltage rating: 600V collector-emitter breakdown voltage
  • Current rating: Minimum 14A continuous collector current
  • Package type: TO-220-3 Through Hole configuration
  • Input type: Standard gate drive

Substitution Logic:

Parts are classified into two categories based on electrical compatibility:

Category 1 - Direct Voltage/Current Match (600V, 14A nominal): These parts maintain the same voltage and current specifications as the IXGP7N60C, ensuring pin-compatible operation in existing circuit designs. This category includes STGF7H60DF, STGP7H60DF, and IKA15N60TXKSA1.

Category 2 - Higher Voltage Rating (900V): The IXYP8N90C3 operates at 900V, providing enhanced voltage margin. This part is suitable for applications where the original 600V specification permits operation at higher voltage ratings without circuit modification.

Category 3 - Higher Current Rating (25A): The STGP7NC60HD maintains 600V voltage rating while providing 25A continuous current, accommodating applications requiring increased current capacity within the same voltage class.

All substitute parts maintain Through Hole TO-220-3 packaging and Standard input type configuration.

Parameter Comparison

Parameter IXGP7N60C STGF7H60DF STGP7H60DF IKA15N60TXKSA1 STGP7NC60HD IXYP8N90C3
Manufacturer IXYS STMicroelectronics STMicroelectronics Infineon Technologies STMicroelectronics IXYS
Voltage - Collector Emitter Breakdown (Max) 600V 600V 600V 600V 600V 900V
Current - Collector (Ic) (Max) 14A 14A 14A 14.7A 25A 20A
Current - Collector Pulsed (Icm) 30A 28A 28A 45A 50A 48A
Power - Max 54W 24W 88W 35.7W 80W 125W
Vce(on) (Max) @ Vge, Ic 2.7V @ 15V, 7A 1.95V @ 15V, 7A 1.95V @ 15V, 7A 2.05V @ 15V, 15A 2.5V @ 15V, 7A 2.5V @ 15V, 8A
Gate Charge 25nC 46nC 46nC 87nC 35nC 13.3nC
Switching Energy (on/off) 70µJ / 120µJ 99µJ / 100µJ 99µJ / 100µJ 570µJ 95µJ / 115µJ 460µJ / 180µJ
Td (on/off) @ 25°C 9ns / 65ns 30ns / 160ns 30ns / 160ns 17ns / 188ns 18.5ns / 72ns 16ns / 40ns
Operating Temperature Range -55 to 150°C -55 to 175°C -55 to 175°C -40 to 175°C -55 to 150°C Not specified
Package / Case TO-220-3 TO-220-3 Full Pack TO-220-3 PG-TO220-3-31 TO-220-3 TO-220-3
Mounting Type Through Hole Through Hole Through Hole Through Hole Through Hole Through Hole
Product Status Obsolete Active Active Active Active Active
RoHS Status Not specified ROHS3 Compliant ROHS3 Compliant ROHS3 Compliant ROHS3 Compliant Not specified

Engineering Selection Recommendations

For Direct Replacement (600V, 14A Class):

STGF7H60DF and STGP7H60DF are active STMicroelectronics components with ROHS3 compliance and extended operating temperature range (-55 to 175°C). Both maintain the 600V/14A electrical specification. STGP7H60DF provides higher power dissipation capability (88W vs. 24W), making it suitable for applications with elevated thermal requirements. STGF7H60DF offers lower power rating, appropriate for lower-dissipation circuit implementations.

IKA15N60TXKSA1 is an active Infineon Technologies Trench Field Stop IGBT with ROHS3 compliance and extended temperature range (-40 to 175°C). This part provides 14.7A continuous current and lower on-state voltage (2.05V), reducing conduction losses in high-frequency switching applications.

For Higher Current Applications (600V, 25A Class):

STGP7NC60HD is an active STMicroelectronics component with ROHS3 compliance, rated for 25A continuous current at 600V. This part accommodates applications requiring increased current capacity while maintaining the same voltage specification and operating temperature range (-55 to 150°C).

For Higher Voltage Applications (900V Class):

IXYP8N90C3 is an active IXYS component rated for 900V/20A operation. This part is suitable for applications where circuit design permits operation at elevated voltage ratings. The lower gate charge (13.3nC) and faster switching times (16ns on, 40ns off) provide improved switching performance compared to the original IXGP7N60C.

All substitute parts maintain Through Hole TO-220-3 package compatibility and Standard input type configuration.

Frequently Asked Questions (FAQ)

Q: Can STGF7H60DF and STGP7H60DF be used interchangeably with IXGP7N60C?

A: Both parts maintain 600V/14A electrical specifications and TO-220-3 Through Hole packaging. STGP7H60DF provides higher power dissipation (88W vs. 54W), while STGF7H60DF provides lower power dissipation (24W). Selection depends on circuit thermal requirements. Both are active products with ROHS3 compliance.

Q: What is the difference between IKA15N60TXKSA1 and the other 600V/14A substitutes?

A: IKA15N60TXKSA1 is a Trench Field Stop IGBT technology with lower on-state voltage (2.05V at 15V, 15A) compared to standard IGBTs. This reduces conduction losses in switching applications. The higher gate charge (87nC) requires consideration in gate drive circuit design. Operating temperature range extends to 175°C.

Q: Is IXYP8N90C3 suitable for direct replacement in 600V circuits?

A: IXYP8N90C3 operates at 900V, providing higher voltage margin than the original 600V specification. Direct replacement is possible only if circuit design permits operation at 900V without modification. The part offers improved switching performance with lower gate charge and faster switching times.

Q: Can STGP7NC60HD be used in applications requiring 14A continuous current?

A: STGP7NC60HD is rated for 25A continuous current at 600V, exceeding the 14A requirement of IXGP7N60C. This part is suitable for applications requiring increased current capacity. The 600V voltage rating and TO-220-3 package maintain compatibility with original circuit designs.

Q: What compliance certifications apply to substitute parts?

A: STGF7H60DF, STGP7H60DF, IKA15N60TXKSA1, and STGP7NC60HD are ROHS3 compliant. All parts listed maintain REACH Unaffected status and EAR99 ECCN classification. Moisture Sensitivity Level is 1 (Unlimited) for all components.

Q: Are there package variations among the substitute parts?

A: All substitute parts use Through Hole TO-220-3 package configuration. Supplier device packages vary: STGF7H60DF uses TO-220FP, IKA15N60TXKSA1 uses PG-TO220-3-31, while others use standard TO-220. These variations do not affect PCB mounting compatibility for standard TO-220-3 footprints.

Q: How do switching characteristics compare between substitutes?

A: IXYP8N90C3 provides the fastest switching times (16ns on, 40ns off) with lowest gate charge (13.3nC). STGP7NC60HD offers moderate switching times (18.5ns on, 72ns off). STMicroelectronics parts (STGF7H60DF, STGP7H60DF) have slower switching times (30ns on, 160ns off) with higher gate charge (46nC). IKA15N60TXKSA1 exhibits longer off-time (188ns) due to Trench Field Stop technology. Gate drive circuit design must accommodate these variations.

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