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Data Sheet, Rev. 4.0, April 2008 TLE6250 High Speed CAN-Transceiver Automotive Power

81726 Munich, Germany

© 2004 Infineon Technologies AG All Rights Reserved. Legal Disclaimer The information given in this document shall in no event be regarded as a guarantee of conditions or characteristics. With respect to any examples or hints given herein, any typical values stated herein and/or any information regarding the application of the device, Infineon Technologies hereby disclaims any and all warranties and liabilities of any kind, including without limitation, warranties of non-infringement of intellectual property rights of any third party. Information For further information on technology, delivery terms and conditions and prices, please contact the nearest Infineon Technologies Office (www.infineon.com). Warnings Due to technical requirements, components may contain dangerous substances. For information on the types in question, please contact the nearest Infineon Technologies Office. Infineon Technologies components may be used in life-support devices or systems only with the express written approval of Infineon Technologies, if a failure of such components can reasonably be expected to cause the failure of that life-support device or system or to affect the safety or effectiveness of that device or system. Life support devices or systems are intended to be implanted in the human body or to support and/or maintain and sustain and/or protect human life. If they fail, it is reasonable to assume that the health of the user or other persons may be endangered.

TLE6250C (chip) TLE6250GV33 PG-DSO-8 TLE6250CV33 (chip) High Speed CAN-Transceiver TLE6250 Data Sheet 3 Rev. 4.0, 2008-04-28

Features

  • CAN data transmission rate up to 1 MBaud  Receive-only Mode and Stand-by Mode  Suitable for 12 V and 24 V applications  Excellent EMC performance (very high immunity and very low emission)  Version for 5 V and 3.3 V microcontrollers  Bus pins are short circui t proof to ground and battery voltage  Overtemperature protection  Very wide temperature range (-40 °C up to 150 °C)  Green Product (RoHS compliant)  AEC Qualified

Description

The HS CAN-transceiver family TLE6250 (TLE6250G and TLE6250GV33) are monolithic integrated circuits that are available as bare die as well as in a PG-DSO-8 package. The ICs are optimized for high speed differential mode data transmission in automotive and industrial applications and they are compatible to ISO/DIS 11898. They work as an interface between the CAN protoc ol controller and the physical differential bus in both, 12 V and 24 V systems. The ICs are based on the Smart Power Technology SPT ® which allows bipolar and CMOS control circuitry in accordance with DMOS power devices existing on the same monolithic circuit. The TLE6250G is designed to withstand the severe conditions of automotive applications and provides excellent EMC performance. Note: There are two versions available (refer to next page).

Data Sheet 5 Rev. 4.0, 2008-04-28 Table 1 Pin Definitions and Functions TLE6250G Pin No. Symbol Function 1T x D CAN transmit data input; 20 kΩ pull-up, LOW in dominant state 2G N D Ground

3 VCC 5 V Supply input

4R x D CAN receive data output; LOW in dominant state, integrated pull-up 5R M Receive-only input; control input, 20 kΩ pull-up, set low to activate RxD-only mode 6C A N L Low line I/O; LOW in dominant state 7C A N H High line I/O; HIGH in dominant state 8I N H Inhibit Input; control input, 20 kΩ pull, set LOW for normal mode Table 2 Pin Definitions an d Functions TLE6250GV33 Pin No. Symbol Function 1T x D CAN transmit data input; 20 kΩ pull-up, LOW in dominant state 2G N D Ground 4R x D CAN receive data output; LOW in dominant state, integrated pull-up 5 V33V Logic supply input; 3.3 V OR 5 V microcontroller logic supply can be connected here! The digital I/Os of the TLE6250GV33 adopt to the connected microcontroller logic supply at V33V 6C A N L Low line I/O; LOW in dominant state 7C A N H High line I/O; HIGH in dominant state 8I N H Inhibit Input; control input, 20 kΩ pull, set LOW for normal mode

Data Sheet 6 Rev. 4.0, 2008-04-28 TLE6250 Functional Block Diagram Figure 3 Block Diagram TLE6250G TLE6250G Receiver AEA 03311.VSD Output Stage Driver Temp- Protection Mode Control 7CANH 6CANL 2GND TxD1

3 VCC

Data Sheet 7 Rev. 4.0, 2008-04-28 Figure 4 Block Diagram TLE6250GV33 TLE6250GV33 Receiver AEA 03312.VSD Output Stage Driver Temp- Protection Mode Control 7CANH 6CANL 2GND TxD1

5 V33

Data Sheet 9 Rev. 4.0, 2008-04-28 In the normal mode the device is able to receive and to transmit messages whereas in the receive-only mode signals at the TxD input are not transmitted to the CAN bus. The receive-only mode can be used for diagnostic purposes (to check the bus connections between the nodes) as well as to prevent the bus being blocked by a faulty permanent dominant TxD input signal. The stand-by mode is a low power mode that disables both, the receiver as well as the transmitter. In case the receive-only feature is not used the RM pin has to be left open. When the stand-by mode is not used the INH pin has to be connected to ground level in order to switch the TLE6250G in normal mode. Application Information for the 3.3 V Versions The TLE6250GV33 can be used for both; 3.3 V and 5 V microcontroller logic supply, as shown in Figure 6. Don’t apply external resistors between the power supply and this pin. This may cause a voltage drop and so reduce the available voltage at this pin.

Data Sheet 10 Rev. 4.0, 2008-04-28 TLE6250 Figure 6 Application Circuits TLE6250GV 33 Used for 3.3 V and 5 V Logic AEA 03299.VSD µP e. g. TLE 4270 INH VCC 100 nF 100 nF VQ 5 V GND GND GND VI 22 µF100 nF + 22 µF TLE6250GV33RxD TxD V 33 V 5 V CANH CANL AEA 03300 .VSD e. g. TLE 4476 INH RxD 4 TxD 5V 33 V 100 nF GND GND VI TLE6250GV33 VCC 100 nF VQ1 5 V +100 nF + 22 µF + 22 µF VQ2 3. 3 V 3. 3 V µP GND100 nF 22 µF CANH CANL Application with 3.3 V I/O supply Application with 5 V I/O supply

Data Sheet 11 Rev. 4.0, 2008-04-28 Figure 6 (cont.) Application Circuits TLE6250GV33 Used for 3.3 V and 5 V Logic Application with separate 5V power supplies, AEA 13299.VSD µP e. g. TLE 4270 INH VCC 100 nF100 nF VQ 5 V GND GND GND VI 22 µF100 nF + 22 µF TLE6250GV33RxD TxD V 33 V 5 V CANH CANL e. g. TLE 4270 VQ GND VI 100 nF + 22 µF +5 V for applications with switchable transceiver supply

Data Sheet 12 Rev. 4.0, 2008-04-28 TLE6250 Note: Maximum ratings are absolute ratings; exceeding any one of these values may cause irreversible damage to the integrated circuit. Table 3 Absolute Maximum Ratings Parameter Symbol Limit Values Unit Remarks Min. Max. Voltages Supply voltage VCC -0.3 6.5 V – CAN input voltage (CANH, CANL) VCANH/L -40 40 V – Logic voltages at INH, RM, TxD, RxD VI -0.3 VCC V0 V < VCC < 5.5 V Electrostatic discharge voltage at CANH, CANL VESD -6 6 kV human body model (100 pF via 1.5 kΩ) Electrostatic discharge voltage VESD -2 2 kV human body model (100 pF via 1.5 kΩ) Temperatures Junction temperature Tj -40 160 °C– Table 4 Operating Range Parameter Symbol Limit Values Unit Remarks Min. Max. Supply voltage VCC 4.5 5.5 V – Junction temperature Tj -40 150 °C– Thermal Resistances Junction ambient Rthj-a – 185 K/W – Thermal Shutdown (junction temperature) Thermal shutdown temperature TjsD 160 200 °C 10 °C hysteresis

Data Sheet 13 Rev. 4.0, 2008-04-28 Table 5 Electrical Characteristics 4.5 V < VCC < 5.5 V; RL = 60 Ω; VINH < VINH,ON; -40 °C < Tj < 150 °C; all voltages with respect to ground; positive current flowing into pin; unless otherwise specified. Parameter Symbol Limit Values Unit Remarks Min. Typ. Max. Current Consumption Current consumption ICC – 6 10 mA recessive state; VTxD = VCC Current consumption ICC – 45 70 mA dominant state; VTxD = 0 V Current consumption ICC – 6 10 mA receive-only mode; RM = low Current consumption ICC,stb –11 0 µA stand-by mode; TxD = RM = high Receiver Output RxD HIGH level output current IRD,H – - 4- 2m A VRD = 0.8 × VCC, Vdiff < 0.4 V1) LOW level output current IRD,L 24–m A VRD = 0.2 × VCC, Vdiff > 1 V1) Transmission Input TxD HIGH level input voltage threshold VTD,H –0 . 5 × VCC 0.7 × VCC V recessive state LOW level input voltage threshold VTD,L 0.3 × VCC 0.4 × VCC – V dominant state TxD pull-up resistance RTD 10 25 50 k Ω – Inhibit Input (pin INH) HIGH level input voltage threshold VINH,H –0 . 5 × VCC 0.7 × VCC V stand-by mode; LOW level input voltage threshold VINH,L 0.3 × VCC 0.4 × VCC – V normal mode INH pull-up resistance RINH 10 25 50 k Ω –

Data Sheet 14 Rev. 4.0, 2008-04-28 TLE6250 Receive only Input (pin RM) (5 V version only) HIGH level input voltage threshold VRM,H –0 . 5 × VCC 0.7 × VCC V normal mode; LOW level input voltage threshold VRM,L 0.3 × VCC 0.4 × VCC – V receive-only mode RM pull-up resistance RRM 10 25 50 k Ω – Bus Receiver Differential receiver threshold voltage, recessive to dominant edge Vdiff,d – 0.75 0.90 V -20 V < ( VCANH, VCANL) < 25 V Vdiff = VCANH - VCANL Differential receiver threshold voltage dominant to recessive edge Vdiff,r 0.50 0.60 – V -20 V < ( VCANH, VCANL) < 25 V Vdiff = VCANH - VCANL Common Mode Range CMR -20 – 25 V VCC = 5 V Differential receiver hysteresis Vdiff,hys – 150 – mV – CANH, CANL input resistance Ri 10 20 30 k Ω recessive state Differential input resistance Rdiff 20 40 60 k Ω recessive state Table 5 Electrical Characteristics (cont’d) 4.5 V < VCC < 5.5 V; RL = 60 Ω; VINH < VINH,ON; -40 °C < Tj < 150 °C; all voltages with respect to ground; positive current flowing into pin; unless otherwise specified. Parameter Symbol Limit Values Unit Remarks Min. Typ. Max.

Data Sheet 15 Rev. 4.0, 2008-04-28 Bus Transmitter CANL/CANH recessive output voltage VCANL/H 0.4 × VCC –0 . 6 × VCC V VTxD = VCC CCANH, CANL recessive output voltage difference Vdiff = VCANH - VCANL, no load2) Vdiff -1 – 0.05 V VTxD = VCC CANL dominant output voltage VCANL ––2 . 0 V VTxD = 0 V; VCC = 5 V CANH dominant output voltage VCANH 2 . 8 ––V VTxD = 0 V; VCC = 5 V CANH, CANL dominant output voltage difference Vdiff = VCANH - VCANL Vdiff 1.5 – 3.0 V VTxD = 0 V; VCC = 5 V CANL short circuit current ICANLsc 50 120 200 mA VCANLshort = 18 V – 150 – mA VCANLshort = 36 V CANH short circuit current ICANHsc -200 -120 -50 mA VCANHshort = 0 V CANH short circuit current ICANHsc –- 1 2 0 –m A VCANHshort = -5 V Output current ICANH,lk -50 -300 -400 µA VCC = 0 V, VCANH = VCANL = -7 V -50 -100 -150 µA VCC = 0 V, VCANH = VCANL = -2 V Output current ICANH,lk 50 280 400 µA VCC = 0 V, VCANH = VCANL = 7 V 50 100 150 µA VCC = 0 V, VCANH = VCANL = 2 V Table 5 Electrical Characteristics (cont’d) 4.5 V < VCC < 5.5 V; RL = 60 Ω; VINH < VINH,ON; -40 °C < Tj < 150 °C; all voltages with respect to ground; positive current flowing into pin; unless otherwise specified. Parameter Symbol Limit Values Unit Remarks Min. Typ. Max.

Data Sheet 16 Rev. 4.0, 2008-04-28 TLE6250 Dynamic CAN-Transceiver Characteristics Propagation delay TxD-to- RxD LOW (recessive to dominant) td(L),TR – 150 280 ns CL = 47 pF; RL = 60 Ω; VCC = 5 V; CRxD = 20 pF Propagation delay TxD-to- RxD HIGH (dominant to recessive) td(H),TR – 150 280 ns CL = 47 pF; RL = 60 Ω; VCC = 5 V; CRxD = 20 pF Propagation delay TxD LOW to bus dominant td(L),T – 100 140 ns CL = 47 pF; RL = 60 Ω; VCC = 5 V Propagation delay TxD HIGH to bus recessive td(H),T – 100 140 ns CL = 47 pF; RL = 60 Ω; VCC = 5 V Propagation delay bus dominant to RxD LOW td(L),R –5 0 1 4 0 n s CL = 47 pF; RL = 60 Ω; VCC = 5 V; CRxD = 20 pF Propagation delay bus recessive to RxD HIGH td(H),R –5 0 1 4 0 n s CL = 47 pF; RL = 60 Ω; VCC = 5 V; CRxD = 20 pF 1) Vdiff = VCANH - VCANL 2) Deviation from ISO/DIS 11898 Table 5 Electrical Characteristics (cont’d) 4.5 V < VCC < 5.5 V; RL = 60 Ω; VINH < VINH,ON; -40 °C < Tj < 150 °C; all voltages with respect to ground; positive current flowing into pin; unless otherwise specified. Parameter Symbol Limit Values Unit Remarks Min. Typ. Max.

Data Sheet 17 Rev. 4.0, 2008-04-28 Note: Maximum ratings are absolute ratings; exceeding any one of these values may cause irreversible damage to the integrated circuit. Table 6 Absolute Maximum Ratings Parameter Symbol Limit Values Unit Remarks Min. Max. Voltages Supply voltage VCC -0.3 6.5 V – 3.3 V supply V33V -0.3 6.5 V – CAN input voltage (CANH, CANL) VCANH/L -40 40 V – Logic voltages at INH, RM, TxD, RxD VI -0.3 VCC V0 V < VCC < 5.5 V Electrostatic discharge voltage at CANH, CANL VESD -6 6 kV human body model (100 pF via 1.5 kΩ) Electrostatic discharge voltage VESD -2 2 kV human body model (100 pF via 1.5 kΩ) Temperatures Junction temperature Tj -40 160 °C– Table 7 Operating Range Parameter Symbol Limit Values Unit Remarks Min. Max. Supply voltage VCC 4.5 5.5 V – 3.3 V supply voltage V33V 3.0 5.5 V – Junction temperature Tj -40 150 °C– Thermal Resistances Junction ambient Rthj-a – 185 K/W – Thermal Shutdown (junction temperature) Thermal shutdown temperature TjsD 160 200 °C 10 °C hysteresis

Data Sheet 18 Rev. 4.0, 2008-04-28 TLE6250 Table 8 Electrical Characteristics -40 °C < Tj < 150 °C; all voltages with respect to ground; positive current flowing into pin; unless otherwise specified. Parameter Symbol Limit Values Unit Remarks Min. Typ. Max. Current Consumption (3.3 V version) Current consumption ICC+33V – 6 10 mA recessive state; VTxD = V33V Current consumption ICC+33V – 45 70 mA dominant state; VTxD = 0 V Current consumption I33V ––2m A – Current consumption ICC+33V,stb –11 0 µA stand-by mode, TxD = high Receiver Output RxD HIGH level output current IRD,H – - 2- 1m A VRD = 0.8 × V33V, Vdiff < 0.4 V1) LOW level output current IRD,L 12–m A VRD = 0.2 × V33V, Vdiff > 1 V1) Transmission Input TxD HIGH level input voltage threshold VTD,H –0 . 5 5 × V33V 0.7 × V33V V recessive state LOW level input voltage threshold VTD,L 0.3 × V33V 0.45 × V33V – V dominant state TxD pull-up resistance RTD 10 25 50 k Ω – Inhibit Input (pin INH) HIGH level input voltage threshold VINH,H –0 . 5 5 × V33V 0.7 × V33V V stand-by mode; LOW level input voltage threshold VINH,L 0.3 × V33V 0.45 × V33V – V normal mode; INH pull-up resistance RINH 10 25 50 k Ω –

Data Sheet 19 Rev. 4.0, 2008-04-28 Bus Receiver Differential receiver threshold voltage, recessive to dominant edge Vdiff,d – 0.75 0.90 V -20 V < ( VCANH, VCANL) < 25 V Vdiff = VCANH - VCANL Differential receiver threshold voltage, dominant to recessive edge Vdiff,r 0.50 0.60 – V -20 V < ( VCANH, VCANL) < 25 V Vdiff = VCANH - VCANL Common Mode Range CMR -20 – 25 V VCC = 5 V Differential receiver hysteresis Vdiff,hys –1 5 0 –m V – CANH, CANL input resistance Ri 10 20 30 k Ω recessive state Differential input resistance Rdiff 20 40 60 k Ω recessive state Table 8 Electrical Characteristics (cont’d) -40 °C < Tj < 150 °C; all voltages with respect to ground; positive current flowing into pin; unless otherwise specified. Parameter Symbol Limit Values Unit Remarks Min. Typ. Max.

Data Sheet 20 Rev. 4.0, 2008-04-28 TLE6250 Bus Transmitter CANL/CANH recessive output voltage VCANL/H 0.4 × VCC –0 . 6 × VCC V VTxD = V33V CANH, CANL recessive output voltage difference Vdiff = VCANH - VCANL, no load2) Vdiff -1 – 0.05 V VTxD = V33V CANL dominant output voltage VCANL ––2 . 0 V VTxD = 0 V; VCC = 5 V CANH dominant output voltage VCANH 2.8 – – V VTxD = 0 V; VCC = 5 V CANH, CANL dominant output voltage difference Vdiff = VCANH - VCANL Vdiff 1.5 – 3.0 V VTxD = 0 V; VCC = 5 V CANL short circuit current ICANLsc 50 120 200 mA VCANLshort = 18 V –1 5 0 –m A VCANLshort = 36 V CANH short circuit current ICANHsc -200 -120 -50 mA VCANHshort = 0 V CANH short circuit current ICANHsc –- 1 2 0 –m A VCANHshort = -5 V Output current ICANH/L,lk -50 -300 -400 µA VCC = 0 V, VCANH = VCANL = -7 V -50 -100 -150 µA VCC = 0 V, VCANH =VCANL = -2 V Output current ICANH/L,lk 50 280 400 µA VCC = 0 V, VCANH = VCANL = 7 V 50 100 150 µA VCC = 0 V, VCANH = VCANL = 2 V Table 8 Electrical Characteristics (cont’d) -40 °C < Tj < 150 °C; all voltages with respect to ground; positive current flowing into pin; unless otherwise specified. Parameter Symbol Limit Values Unit Remarks Min. Typ. Max.

Data Sheet 21 Rev. 4.0, 2008-04-28 Dynamic CAN-Transceiver Characteristics Propagation delay TxD-to-RxD LOW (recessive to dominant) td(L),TR – 150 280 ns CL = 47 pF; RL = 60 Ω; VCC = 5 V; CRxD = 20 pF Propagation delay TxD-to-RxD HIGH (dominant to recessive) td(H),TR – 150 280 ns CL = 47 pF; RL = 60 Ω; VCC = 5 V; CRxD = 20 pF Propagation delay TxD LOW to bus dominant td(L),T – 100 140 ns CL = 47 pF; RL = 60 Ω; VCC = 5 V Propagation delay TxD HIGH to bus recessive td(H),T – 100 140 ns CL = 47 pF; RL = 60 Ω; VCC = 5 V Propagation delay bus dominant to RxD LOW td(L),R – 50 140 ns CL = 47 pF; RL = 60 Ω; VCC = 5 V; CRxD = 20 pF Propagation delay bus recessive to RxD HIGH td(H),R – 50 140 ns CL = 47 pF; RL = 60 Ω; VCC = 5 V; CRxD = 20 pF 1) Vdiff = VCANH - VCANL 2) Deviation from ISO/DIS 11898 Table 8 Electrical Characteristics (cont’d) -40 °C < Tj < 150 °C; all voltages with respect to ground; positive current flowing into pin; unless otherwise specified. Parameter Symbol Limit Values Unit Remarks Min. Typ. Max.

Data Sheet 22 Rev. 4.0, 2008-04-28 TLE6250 Diagrams Figure 7 Test Circuit for Dynamic Characteristics (5 V Version) Figure 8 Test Circuit for Dynamic Characteristics (GV33 Version) AEA03328.VSD GND VCC INH TxD 1 RM 100 nF 5 V

6 CANL

7 CANH

60 Ω47 pF RxD 20 pF AEA03329.VSD GND VCC 5V33 V INH TxD 1 RxD 100 nF 5 V 3.3 V 100 nF 20 pF 60 Ω47 pF

Data Sheet 23 Rev. 4.0, 2008-04-28 Figure 9 Timing Diagrams for Dynamic Characteristics AET02926 TxDV VCC(33V) GND VDIFF d(L), Tt d(H), Tt VDIFF(d) DIFF(r)V t t GND CC(33V)V VRxD t d(L), Rt d(H), Rt CC(33V)V0.7

0.3 CC(33V)V

d(L), TRt d(H), TRt

Data Sheet 24 Rev. 4.0, 2008-04-28 TLE6250 Application Figure 10 Application Circuit TLE6250G with TLE6250GV33 ECU 1 ECU X µP e. g. TLE 4270 e. g. TLE 4476 µP 120 Ω AEA03308 .VSD RM INH RxD 4 TxD VCC CANH CANL 100 nF 100 nF VQ 5 V GND GND GND V I 22 µF100 nF + 22 µF TLE6250G INH RxD 4 TxD 5V33 V CANH CANL 100 nF GND GND V I TLE6250GV33 VCC GND100 nF 100 nF V Q1 5 V +100 nF + 22 µF + 22 µF V Q2 3.3 V 22 µF CAN Bus VBat 120 Ω

Data Sheet 25 Rev. 4.0, 2008-04-28 Package Outlines Figure 11 PG-DSO-8 (PG-DSO-8-16 Plastic Dual Small Outline) Green Product (RoHS compliant) To meet the world-wide customer requireme nts for environmentally friendly products and to be compliant with government regulations the device is available as a green product. Green products are RoHS-Compliant (i.e Pb-free finish on leads and suitable for Pb-free soldering according to IPC/JEDEC J-STD-020). +0.06 0.19 0.35 x 45˚ -0.24 C 8 MAX. 0.64 ±0.26 ±0.25 0.2 8xM C 1.27 +0.10.41

0.2 M A

-0.06 1.75 MAX. (1.45) ±0.070.175 B 8xB Index Marking 5-0.2 A 1) Does not include plastic or metal protrusion of 0.15 max. per side 2) Lead width can be 0.61 max. in dambar area GPS01181 0.1 Y ou can find all of our packages, sorts of packing and others in our Infineon Internet Page “Products”: http://www.infineon.com/products. Dimensions in mmSMD = Surface Mounted Device

Template: central_tmplt_a5.fm / 5 / 2003-04-01 TLE6250 Revision History: 2008-04-28 Rev. 4.0 Previous Version:Rev. 3.9 (Data Sheet) Page Correction inside the TLE6250GV33 characteristics Page 20 Changed symbol for the leakage current CANH/L: From ICANH,lk to ICANH/L,lk Changed maximum limit for the parameter: Output current, ICANH/L,lk, VCC = 0 V,VCANH = VCANL = 7 V: From 300 µA to 400 µA Page 26 updated Revision History