# IGBT, 220 A, 1.22 V, 650 W, 650 V, TO-247, 3 Pins

![Product image](https://novapart.co/image/farnell:3996589/)

**URL**: https://novapart.co/products/IXYH90N65A5/igbt-220-a-122-v-650-w-to-247-3-pins
**SKU**: IXYH90N65A5
**Manufacturer**: LITTELFUSE
**Category**: Semiconductors - Discretes || IGBTs || Single IGBTs
**Price**: €4.6900
**Stock**: 10+
**Lead Time**: 204 days (indicative)

## Specifications

| Parameter | Value |
|---|---|
| Svhc | To Be Advised |
| No. Of Pins | 3Pins |
| Product Range | XPT GenX5 Series |
| Power Dissipation | 650W |
| Transistor Mounting | Through Hole |
| Transistor Case Style | TO-247 |
| Operating Temperature Max | 175°C |
| Continuous Collector Current | 220A |
| Collector Emitter Voltage Max | 650V |
| Collector Emitter Saturation Voltage | 1.22V |

## Datasheet

📄 [Download PDF](https://novapart.co/datasheet/farnell:3996589/)

## **XPT[TM ] 650V GenX5[TM ] IGBT** 

Extreme Light Punch Through IGBT for up to 10kHz Switching 

## **IXYH90N65A5** 

**V =   650V CES I =   90A C110 V**  **1.35V CE(sat) t =   220ns fi(typ) TO-247 (IXYH)** 

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|||||||||
|---|---|---|---|---|---|---|---|
|Symbol|Test Conditions|Maximum Ratings|
|G|
|VCES|TJ|= 25°C to 175°C|650|V|C|E|C (Tab)|
|VCGR|TJ|= 25°C to 175°C, RGE = 1M|650|V|
|VGES|Continuous|±20|V|G  = Gate           C      =  CollectorE  = Emitter       Tab   =  Collector|
|VGEM|Transient|±30|V|
|IC25|TC     = 25°C (Chip Capability)                                             220|A|
|ILRMS|Terminal Current Limit                                                       160|A|
|IC110|TC|= 110°C|90|A|
|ICM|TC|= 25°C, 1ms|600|A|
|SSOA|VGE  = 15V, TVJ = 150°C, RG = 5|ICM = 180|A|Features|
|(RBSOA)|Clamped Inductive Load                                              VCE||VCES|
|PC|TC|= 25°C|650|W||Optimized for Low Frequency High|
|Current Switching|
|TJ|-55 ... +175|°C||High Surge Current Capability|
|TJM|175|°C||Square RBSOA|
|Tstg|-55 ... +175|°C||International Standard Package|
|TL|Maximum Lead Temperature for Soldering|300|°C|
|1.6 mm (0.062 in.) from Case for 10s|
|Advantages|
|Md|Mounting Torque|1.13 / 10        Nm/lb.in||High Power Density|
|Weight|6                   g||

**----- End of picture text -----**<br>


- Optimized for Low Frequency High 

- Current Switching  High Surge Current Capability  Square RBSOA 

- International Standard Package 

- Low Gate Drive Requirement 

## **Applications** 

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|||||||
|---|---|---|---|---|---|
|Symbol|Test Conditions                                           Characteristic Values|
|(TJ = 25C, Unless Otherwise Specified)|Min.        Typ.        Max.|
|BVCES|IC     = 250A, VGE  = 0V|650                                      V|—|
|VGE(th)|IC|= 250A, VCE = VGE|3.7|5.8|V|
|ICES|VCE|= VCES,|VGE = 0V|5|A|
|TJ = 150C|_|500|A|
|IGES|VCE|= 0V, VGE = 20V|—|100    nA|
|VCE(sat)|IC|= 60A, VGE = 15V, Note 1|1.22          1.35      V|
|TJ = 150C|1.30                      V|

**----- End of picture text -----**<br>


- Power Inverters 

- UPS 

- Motor Drives 

- SMPS 

- PFC Circuits 

- Battery Chargers 

- Welding Machines  Lamp Ballasts 

©2021 Littelfuse, Inc. 

DS101024B(7/21) 

## **IXYH90N65A5** 

|(T= 25°C Unless Otherwise Specified)<br>**Min.       Typ.        Max.**|**Typ.        Max.**|**Typ.        Max.**|
|---|---|---|
|(TJ= 25°C Unless Otherwise Specified)<br>**Min.        Typ.        Max.**|**Typ.        Max.**|**Typ.        Max.**|
|**gfs**IC= 60A, VCE= 10V, Note 1                        40                68|= 10V, Note 1                        40                68|S|
|**Cies**<br>4040<br>**Coes**VCE= 25V, VGE= 0V, f = 1MHz<br>200<br>**Cres**<br>150|4040<br>200<br>150|pF<br>pF<br>pF|
|**Qg(on)**<br>260<br>**Qge**IC= 90A, VGE= 15V, VCE= 0.5 • VCES<br>33<br>**Qgc**<br>128|260<br>33<br>128|nC<br>nC<br>nC|
|**td(on)**<br>40<br>**tri**<br>46<br>**Eon**<br>1.3<br>**td(off)**<br>420<br>**tfi**<br>220<br>**Eoff**<br>3.4             mJ<br>**Inductive load, TJ = 25°C**<br>IC= 50A, VGE= 15V<br>VCE= 400V, RG= 5<br>Note 2|40<br>46<br>1.3<br>420<br>220<br>3.4             mJ|ns<br>ns<br>mJ<br>ns<br>ns<br>3.4             mJ|
|**td(on)**<br>24<br>**tri**<br>44<br>**Eon**<br>2.8<br>**td(off)**<br>380<br>**tfi**<br>360<br>**Eoff**<br>5.0<br>**Inductive load, TJ = 150°C**<br>IC= 50A, VGE= 15V<br>VCE= 400V, RG= 5<br>Note 2<br>~~Tt~~|24<br>44<br>2.8<br>380<br>360<br>5.0<br>~~Tt~~|ns<br>ns<br>mJ<br>ns<br>ns<br>mJ|
|**RthJC**<br>**RthCS**<br>0.21<br>~~Tt~~|0.23 °C/W<br>0.21<br>~~Tt~~|0.23 °C/W<br>0.21C/W|



Notes: 

1.  Pulse test, t  300µs, duty cycle, d  2%. 

2.  Switching times & energy losses may increase for higher VCE(clamp), TJ or RG. 

Littelfuse reserves the right to change limits, test conditions, and dimensions. IXYS MOSFETs  and IGBTs are covered 4,835,592 4,931,844 5,049,961 5,237,481 6,162,665 6,404,065 B1 6,683,344 6,727,585 7,005,734 B2    7,157,338B2 by one or more of the following U.S. patents: 4,860,072 5,017,508 5,063,307 5,381,025 6,259,123 B1 6,534,343 6,710,405 B2 6,759,692 7,063,975 B2 4,881,106 5,034,796 5,187,117 5,486,715 6,306,728 B1 6,583,505 6,710,463 6,771,478 B2 7,071,537 

## **IXYH90N65A5** 

**Fig. 1. Output Characteristics @ TJ = 25[o] C** 

**Fig. 2. Extended Output Characteristics @ TJ = 25[o] C** 

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180 700<br>VGE = 15V<br>160 13V<br>12V 9V 600<br>140 11V10V Y/ ee VGE = 15V<br>500<br>120 14V<br>8V 13V<br>100 Up 400 |f——— 12V<br>80 300 11V<br>yy, pa aaa<br>7V 10V<br>60<br>9V<br>200<br>40 Vf oe) 8V<br>100<br>20 6V 7V<br>SF —<br>6V<br>0 py /@2SnnneeEeaeene 0 SSFOES EEE<br>0 0.5 1 1.5 2 2.5 0 2 4 6 8 10 12 14 16 18 20 22<br>VCE - Volts VCE - Volts<br>Fig. 3. Output Characteristics @ TJ = 150 [o] C Fig. 4. Dependence of VJunction TemperatureCE(sat) on<br>180 1.8<br>VGEGE = 15V<br>160 13V WV/t-Aa VGE = 15V<br>12V<br>1.6<br>11V<br>140 10V 9V I  C = 180A<br>120 1.4<br>100 8V<br>1.2<br>80 I  C = 90A<br>7V<br>60 1.0<br>40<br>6V 0.8<br>20 I  C = 45A<br>5V<br>0 Yee s 0.6<br>0 0.5 1 1.5 2 2.5 3 -50 -25 0 25 50 75 100 125 150 175<br>VCE - VoltsCE - Volts - Volts TJ - Degrees Centigrade<br>Fig. 5. Collector-to-Emitter Voltage vs.<br>Fig. 6. Input Admittance<br>Gate-to-Emitter Voltage<br>4.0 180<br>3.5 TJ J  = 25 [[o]] C  160 VCE = 10V TJ = - 4025 [o][o] CC<br>[eS ] Ss 140 EEE Wy<br>150 [o] C<br>3.0 120<br>HERES a Uy,<br>100<br>2.5<br>I  C = 180A  80<br>2.0 RERSEccE) 60 Eee<br>| | lA<br>90A<br>40<br>1.5<br>20<br>45A<br>1.0 erevediBEsssiri 0 fo<br>6 7 8 9 10 11 12 13 14 15 4.0 4.5 5.0 5.5 6.0 6.5 7.0 7.5 8.0 8.5 9.0<br>VGE - Volts VGE - Volts<br> - Amperes Amperes<br>IC I -C<br> - Normalized<br> - Amperes<br>ICC<br>CE(sat)<br>V<br> - Volts Amperes<br>CE  -<br>V IC<br>**----- End of picture text -----**<br>


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180<br>VGEGE = 15V<br>160 13V WV/t-Aa<br>12V<br>11V<br>140 10V 9V<br>120<br>100 8V<br>80<br>7V<br>60<br>40<br>6V<br>20<br>5V<br>0 Yee s<br>0 0.5 1 1.5 2 2.5 3<br>VCE - VoltsCE - Volts - Volts<br>Fig. 5. Collector-to-Emitter Voltage vs.<br>Gate-to-Emitter Voltage<br>4.0<br>TJ J  = 25 [[o]] C<br>3.5<br>[eS ]<br>3.0<br>HERES<br>2.5<br>I  C = 180A<br>2.0 RERSEccE)<br>| |<br>90A<br>1.5<br>45A<br>1.0 erevediBEsssiri<br>6 7 8 9 10 11 12 13 14 15<br>VGE - Volts<br> - Amperes<br>ICC<br> - Volts<br>CE<br>V<br>**----- End of picture text -----**<br>


©2021 Littelfuse, Inc. 

## **IXYH90N65A5** 

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Fig. 7. Transconductance Fig. 8. Gate Charge<br>100 16<br>90 Perr) VCE = 10V TJ = - 40 [o] C CO 14 Oe VI CCE= 90A = 325V<br>80 I G = 10mA<br>e e 12 ee ee<br>70 S<br>10<br>60 | Lt] 25 [o] C  ee e eeeen ee aeZA<br>50 8<br>40 Pees 150 [o] C 6 SECee<br>30<br>4<br>20<br>yoo 2 IE<br>10 Y | | | | | |<br>0 rp ||| ff 0 / | | | | ff<br>0 20 40 60 80 100 120 0 40 80 120 160 200 240 280<br>IC - Amperes QG - NanoCoulombs<br>Fig. 9. Capacitance Fig. 10. Reverse-Bias Safe Operating Area<br>10,000 200<br>f = 1 MHz  180 ee ee ee ee ee<br>160<br>Cies<br>140<br>120<br>1,000 SELLE}\ 100 EESESE=F=ee ee ee ee eee<br>80<br>\ 60 ee ee ee ee ee ee<br>Coes TJ = 150 [o] C<br>NS 40 ee RG = 5Ω ee ee ee ee<br>dv / dt < 10V / ns<br>20<br>100 = ESS: Cres 0 qo} ee ee ee ee + ee ee<br>0 5 10 15 20 25 30 35 40 200 300 400 500 600 700<br>VCE - Volts VCE - Volts<br>Fig. 11. Maximum Transient Thermal Impedance<br>0.4<br>0.1<br>0.01<br>0.001<br>0.00001 0.0001 0.001 0.01 0.1 1 10<br>Pulse Width - Seconds<br>Volts<br>Siemens  -<br> - GE<br>f s V<br>g<br> - Amperes<br>IC<br>Capacitance - PicoFarads<br>K / W<br> -<br>(th)JC<br>Z<br>**----- End of picture text -----**<br>


Littelfuse reserves the right to change limits, test conditions, and dimensions. 

## **IXYH90N65A5** 

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**----- Start of picture text -----**<br>
Fig. 12. Inductive Switching Energy Loss vs. Fig. 13. Inductive Switching Energy Loss vs.<br>Collector Current Gate Resistance<br>9 7 12 10<br>8 ERGoff= 5Ω ,VGE E= 15Von 6 ETJoff= 150 [o] C ,  VGEE = 15Von<br>VCE = = 400V        SEE, 10 = VCE = 400V         =e 8<br>7 5<br>e er = H E<br>8 6<br>6 4 I C = 80A<br>5 Ep 3 PAPE<br>TJ = 150 [o] C 6 4<br>4 2<br>BerJ aalee 4 auaeans4 | I  C = 40A — 2<br>3 1<br>TJ = 25 [o] C<br>2 eeeBerry EEEEEE 0 2 PEELECTE 0<br>20 30 40 50 60 70 80 90 100 4 6 8 10 12 14 16 18 20<br>IC - Amperes RG - Ohms<br>Fig. 14. Inductive Switching Energy Loss vs. Fig. 15. Inductive Turn-off Switching Times vs.<br>Junction Temperature Gate Resistance<br>12 6 700 1200<br>Eoff Eon t f i td(off)<br>10 RG = 5Ω ,VGE = 15V 5 600 TJ = 150 [o] C,  VGE = 15V 1000<br>VCE = 400V       VCE = 400V<br>8 I C = 80A 4 500 800<br>6 aes - 3 400 ne I  C = 40A e eaniiee: 600<br>I  C = 80A<br>4 pee 2 300 Heber 400<br>I C = 40A<br>2 1 200 200<br>0 see] 0 100 SESITE 0<br>25 —— 50 75 100 — 125 150 4 PEER 6 8 10 12 14 16 18 cE 20<br>TJ - Degrees Centigrade RG - Ohms<br>Fig. 16. Inductive Turn-off Switching Times vs. Fig. 17. Inductive Turn-off Switching Times vs.<br>Collector Current Junction Temperature<br>800 540 500 600<br>700 tRf iG = 5Ω ,VGE t= 15Vd(off) 500 450 Rt f iG = 5Ω ,  VGE = 15Vtd(off) 550<br>VCE = 400V        VCE = 400V<br>600 460 400 500<br>500 Siceee TJ = 25 [o] C | 420 350 = I C = 40A 450<br>400 . = 1 380 300 ae 2 400<br>300 Se: 340 250 Bee 350<br>TJ = 150 [o] C<br>I C = 80A<br>200 300 200 300<br>Z —<br>TJ = 25 [o] C<br>100 260 150 250<br>ree |<br>0 parece)_ 220 100 Be— 200<br>20 30 40 50 60 70 80 90 100 25 50 75 100 125 150<br>IC - Amperes TJ - Degrees Centigrade<br>on -E on -E<br> - MilliJoules MilliJoules -<br>off off<br>E MilliJoules E MilliJoules<br>t<br>E<br>on  d(off)<br> -<br> - MilliJoules<br>off - Nanoseconds<br>E MilliJoules t f i<br>- Nanoseconds<br>d(off)t  d(off)t<br>-<br> - Nanoseconds  - Nanoseconds<br>tf i t f i<br>Nanoseconds - Nanoseconds<br>**----- End of picture text -----**<br>


©2021 Littelfuse, Inc. 

## **IXYH90N65A5** 

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**----- Start of picture text -----**<br>
Fig. 18. Inductive Turn-on Switching Times vs. Fig. 19. Inductive Turn-on Switching Times vs.<br>Gate Resistance Collector Current<br>200 65 120 70<br>t r i td(on) t r i td(on)<br>TJ = 150 [o] C,  VGE = 15V 100 RG = 5Ω ,  VGE = 15V 60<br>160 VCE = 400V   55 VCE = 400V<br>f= S—0 80 pase 50<br>120 45<br>I  C = 80A 60 40<br>80 er 35 TJ = 25 [o] C peat<br>ae Eoenaillin 40 a AE 30<br>TJ = 150 [o] C<br>40 25<br>I  C = 40A 20 20<br>0 P e rEe 15 0 zomeeaiaeBET 10<br>4 6 8 10 12 14 16 18 20 20 30 40 50 60 70 80 90 100<br>RG - Ohms IC - Amperes<br>Fig. 20. Inductive Turn-on Switching Times vs.<br>Junction Temperature Fig. 21. Maximum Peak Load Current vs. Frequency<br>80 70 100<br>t r i p o td(on) 90 | \ |<br>70 RG = 5Ω ,  VGE = 15V 60<br>VCE = 400V       80<br>70<br>60 50<br>I  C = 80A 60<br>50 40 50<br>40 Triangular Wave<br>40 30 TJ = 150ºC<br>I C = 40A 30 TC = 75ºC<br>VCE = 400V<br>e a eem 20 VGE = 15V QO Square Wave =<br>30 20 RG = 5Ω<br>10 | [|] Duty Cycle = 0.5 NS<br>20 ae ~ 10 0 [<] |<br>25 50 75 100 125 150 10 40 100 200<br>TJ - Degrees Centigrade fmax - KiloHertz<br>t<br> d(on) t<br>-  d(on)<br>- Nanoseconds Nanoseconds<br>t r i t r i-<br>Nanoseconds - Nanoseconds<br> d(on)t<br>-  (A)<br>IC<br>Nanoseconds<br>-<br>t r i<br>Nanoseconds<br>**----- End of picture text -----**<br>


Littelfuse reserves the right to change limits, test conditions, and dimensions. 

IXYS REF: IXY_90N65A5 (607-CY42) 9-30-20 

**IXYH90N65A5** 

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TO-247 Outline<br>ete]oy pe SE , tate<br>+f—_ Sn<br>re OoOME A AS)<br>L<br>T<br>:<br>1 - Gate<br>2,4 - Collector<br>3 -Emitter<br>**----- End of picture text -----**<br>


Disclaimer Notice - Information furnished is believed to be accurate and reliable. However, users should independently evaluate the suitability of and test each product selected for their own applications. Littelfuse products are not designed for, and may not be used in, all applications. Read complete Disclaimer Notice at www.littelfuse.com/disclaimer-electronics. 

©2021 Littelfuse, Inc. 



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