IL600A NVE | Alldatasheet

Document overview

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  • PDF pages: 19

Technical content

Features

  • 10 Mbps data rate
  • Flexible inputs with very wide input voltage range
  • 5 mA input current
  • Failsafe output (logic high output for zero coil cu rrent)
  • No carrier or clock for low EMI emissions and susceptibility
  • 3 V to 5 V power supplies
  • 44000 year barrier life
  • Low power dissipation
  • −40 °C to 85 °C temperature range
  • 2500 V RMS isolation
  • IEC 60747-17 (VDE 0884-17):2021-10; UL 1577
  • 8-pin MSOP, SOIC, and PDIP packages

Applications

  • General purpose optocoupler replacement
  • Wired-OR alarms
  • SPI interface
  • I2C
  • RS-485, RS-422, or RS-232
  • Space-critical multi-channel applications
  • Isolated relays and actuators

Description

The IL600A-Series are isolated signal couplers with open- drain outputs. They have a similar interface but be tter performance and higher package density than optocou plers. The devices are manufactured with NVE’s patented* IsoLoop ® spintronic Giant Magnetoresistive (GMR) technology for small size, high speed, and low powe r. A unique ceramic/polymer composite barrier provides excellent isolation and virtually unlimited barrier life. A resistor sets the input current; a capacitor in parallel with the current-limit resistor provides improved dynami c performance. These versatile components simplify inventory requi rements by replacing a variety of optocouplers, functioning over a wide range of data rates, edge speeds, and power su pply levels. The devices are available in MSOP, SOIC, and PDIP packages, as well as bare die.

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com Absolute Maximum Ratings (1) Parameters Symbol Min. Typ. Max. Units Test Conditions Storage Tem perature TS −5 5(2) 150 °C Junction Temperature TJ −55 150 °C Ambient Operating Temperature TA −40 (3) 85 °C Supply Voltage VDD −0.5 7 V DC Input Current IIN −25 25 mA AC Input Current (Single -Ended Input) IIN −35 35 mA AC Input Current ( Di fferential I nput) IIN −75 75 mA Output Voltage VO −0.5 VDD +1.5 V Maximum Output Current IO −10 10 mA ESD (IL610A Output Enable CMOS input) 2 kV HBM Note 1: Operating at absolute maximum ratings will not damage the device. Parametric performance is not guaranteed at absolute maximum ratings. Note 2: -55 oC applies to all except IL611A-1E, IL611A-1ETR7 and IL611A-1ETR13. -20 oC applies to IL611A-1E, IL611A-1ETR7 and IL611A-1ETR13 Note 3: -40 oC applies to all except IL611A-1E, IL611A-1ETR7 and IL611A-1ETR13. -20 oC applies to IL611A-1E, IL611A-1ETR7 and IL611A-1ETR13 Recommended Operating Conditions Parameters Symbol Min. Typ. Max. Units Test Conditions Ambient Operating Temperature TA −40 (3) 85 °C Junction Temperature TJ −40 100 °C Supply Voltage VDD 3.0 5.5 V Open Drain Reverse Voltage VSD −0.5 V Open Drain Voltage VDS 6.5 V Open Drain Load Current IOD 7 mA Common Mode Input Voltage VCM 400 VRMS

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com Safety and Approvals IEC 60747-17 (VDE 0884-17):2021-10 (Basic Isolation; VDE File Number 5016933-4880-0001):

  • Isolation voltage (VISO ): 2500 VRMS
  • Transient overvoltage (V IOTM ): 4000 VPK
  • Surge rating 4000 V
  • Each part tested at 1590 VPK for 1 second, 5 pC partial discharge limit
  • Samples tested at 4000 VPK for 60 sec.; then 1358 VPK for 10 sec. with 5 pC partial discharge limit
  • Working Voltage (V IORM ; pollution degree 2): Package Part No. Suffix Working Voltage MSOP8 -1 800 V RMS SOIC8 -3 700 V RMS PDI P8 -2 900 V RMS Safety-Limiting Values Symbol Value Units Safety rating ambient temperature TS 180 °C Safety rating power (180°C) PS 270 mW Supply current safety rating (total of supplies) IS 54 mA UL 1577 (Component Recognition Program File Number E207481)
  • 2500 V rating for all types other than MSOP.
  • Each part other than MSOP tested at 3000 V RMS (4240 VPK ) for 1 second; each lot sample tested at2500 VRMS (3530 VPK ) for 1 minute.
  • MSOP rating 1000 V; tested at 1200 VRMS (1768 VPK ) for 1 second; each lot sample tested at 1500 VRMS (2121 VPK ) for 1 minute. Soldering Profile Per JEDEC J-STD-020C; MSL 1 Electrostatic Discharge Sensitivity This product has been tested for electrostatic sensitivity to the limits stated in the specifications. However, NVE recommends that all integrated circuits be handled with appropriate care to avoid damage. Damage caused by inappropriate handling or storage could range from performance degradation to complete failure.

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com IL610A Pin Connections

1 NC No internal connection

2 IN+ Coil connection

3 IN − Coil connection

4 NC No internal connection

5 GND Ground return for V DD

6 OUT Data out

Output enable. Internally held low with 100 k Ω

8 VDD Supply Voltage

1 IN1+ Channel 1 c oil connection

2 IN 1− Channel 1 coil connection

3 IN 2+ Channel 2 coil connection

4 IN 2− Channel 2 coil connection

6 OUT 2 Data out, channel 2

7 OUT 1 Data out, channel 1

1 IN 1 Data in, channel 1

2 VDD1 Supply Voltage 1

3 OUT 2 Data out, channel 2

4 GND 1 Ground return for V DD1

5 GND 2 Ground return for V DD2

6 IN 2 Data in, channel 2

7 VDD2 Supply Voltage 2

8 OUT 1 Data out, channel 1

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com Operating Specifications Input Specifications (V DD = 3 V − 5.5 V; T = −40°C (2) − 85°C unless otherwise stated) Parameters Symbol Min. Typ. Max. Units Test Conditions Coil Input Resistance R COIL 47 85 112 Ω T = 25°C 31 85 128 Ω T = −40°C − 85°C Coil Resistance Temperature Coefficient TC R COIL 0.2 0. 25 Ω/°C Coil Inductance LCOIL 9 nH DC Input Threshold (5 V) IINH-DC 0.5 1 mA Test Circuit 1; V DD = 4.5 V − 5.5 V IINL-DC 3.5 5 mA DC Input Threshold (3 V) IINH-DC 0.5 0.3 mA Test Circuit 1; V DD = 3V − 3.6 V; no boost cap IINL-DC 5 8 mA Dynamic Input Threshold (3 V) IINH-BOOST 0.5 1 mA VDD = 3V − 3.6 V; tIR = tIF = 3 ns; CBOOST = 16 pF IINL-BOOST 3.5 5 mA Differential Input Threshold IINH-DIFF 0.5 1 mA Test Circuit 2; V DD = 3V − 5.5 V; input current reverses; boost cap not required IINL-DIFF 3.5 5 mA Failsafe Input Current (1) (5 V) IFS-HIGH −25 0.5 mA Test Circuit 1; V DD = 4.5 V − 5.5 V IFS-LOW 5 25 mA Failsafe Input Current (1) (3 V) IFS-HIGH −25 0.3 mA Test Circuit 1; V DD = 3 V − 3.6 V IFS-LOW 8 25 mA VOE Logic Hi gh Inpu t Voltage VIH 2.4 VDD 1 V VOE Logic Low Input Voltage VIL 0 0.8 V Input Signal Rise and Fall Times tIR , t IF 1 μs Common Mode Transient Immunity |CM H|,|CM L| 15 20 kV/ μs VT = 300 V peak Notes: 1. Failsafe Operation is defined as the guaranteed output state which will be achieved if the DC input current falls between the input levels specified (see Test Circuit 1 for details). Note if Failsafe to Logic Low is required, the DC current supplied to the coil must be at least 8 mA using 3.3 V supplies versus 5 mA for 5 V supplies. 2. -20 oC for IL611A-1E, IL611A-1ETR7 and IL611A-1ETR13 /K2B/K56 /K56 /K44/K44 /K47/K4E/K44 /K31 /K47/K4E/K44 /K33 /K32 /K35 /K36 /K37 /K38 /K31/K35/K70/K46 /K31/K30/K6E/K46 /K52 /K6C/K69/K6D/K69/K74 /K43 /K62/K6F/K6F/K73/K74 /K31 /K32 /K32/K4B /K49/K4C/K36/K31/K30/K41 /K2D /K2B GND1 2 +V VDD GND 15 pF 10 nF IL610ARlimit Test Circuit 1 (Single-Ended) Test Circuit 2 (Diffe rential)

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com Electrical Specifications (V DD = 3 V − 5.5 V; T = −40°C (3) − 85°C unless otherwise stated) Parameters Symbol Min. Typ. Max. Units Test Conditions Quiescent Supply Current (5 V) IL610A IDD 2 3 mA VDD = 5 V, I IN =0 Rpullup = open circuit IL611A IDD 4 6 mA IL612A IDD1 2 3 mA IL61 2A IDD2 2 3 mA Quiescent Supply Current (3.3 V) IL610A IDD 1.3 2 mA VDD = 3.3 V, I IN =0 Rpullup = open circuit IL611A IDD 2.6 4 mA IL612A IDD1 1.3 2 mA IL612A IDD2 1.3 2 mA Logic High Output Voltage (1) VOH VDD V Off State Logic Low Output Voltage V OL 0 0.1 V IO = −20 µ A 0.4 0.8 V IO = −4 mA Logic Output Current |I O| 7 10 mA Switching Specifications (V DD = 3 V − 5.5 V; T = −40°C (3) − 85°C unless otherwise stated) Parameters Symbol Min. Typ. Max. Units Test Conditions Input Signal Rise and Fall Times t IR , tIF 10 µ s Test Circuit 1; t IR = tIF = 3 ns; CBOOST = 16 pF Data Rate 10 Mbps Minimum Pulse Width PW 100 ns Propagation Delay Input to Output (High to Low) tPHL 20 25 ns Propagation Delay Input to Output (Low to High) tPLH 50 75 ns Notes: 1. VDD refers to the supply voltage on the output side of the isolated channel. 2. Failsafe Operation is defined as the guaranteed output state which will be achieved if the DC input current falls between the input levels specified (see Test Circuit 1 for details). Note if Failsafe to Logic Low is required, the DC current supplied to the coil must be at least 8 mA using 3.3 V supplies versus 5 mA for 5 V supplies. 3. -20 oC for IL611A-1E, IL611A-1ETR7 and IL611A-1ETR13

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com Insulation Specifications Parameters Symbol Min. Typ. Max. Units Test Conditions Creepage Distance (external) MSOP 3.01 mm SOIC 4.03 mm PDIP 7.08 mm Total Barrier Thickness 0.012 0.013 mm Leakage Current 0.2 µ A 240 V RMS , 60 Hz Barrier Resistance R IO >10 14 Ω 500 V Barrier Capacitance CIO 7 pF f = 1 MHz Comparative Tracking Index CTI ≥175 V Per IEC 60112 High Voltage Endurance (Maximum Barrier Voltage for Indefinite Life) AC DC VIO 1000 1500 VRMS VDC At maximum operating temperature Barrier Life 44000 Years 100°C, 1000 V RMS , 60% CL activation energy Thermal Characteristics Parameter Symbol Min. Typ. Max. Units Test Conditions Junction–Ambient Thermal Resistance MSOP SOIC PDIP θ JA 184 134 114 °C/W Double-sided PCB in free air Junction–Case (Top) Thermal Resistance MSOP SOIC PDIP θ JC Power Dissipation MSOP SOIC PDIP PD 500 675 800 mW

low (output pulled to ground), and zero input curre nt results in an output logic high (the open drain state). The device switches to logic low if current flows f rom (In−) to (In+). input voltages because there are no semiconductor i nput structures. external resistor for 5 mA coil current. other application specifics. the absolute maximum current. structure is required for a differential signal. directly for a fraction of the cost of an isolated RS-485 node (see Illustrative Applications ). Figure 1. Typical IL600-Series Transfer Function Figure 2. Limiting Resistor Calculation

3.3 V 510 Ω

5 V 820 Ω

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com Dynamic Power Consumption Power consumption is proportional to duty cycle, no t data rate. The use of NRZ coding minimizes power dissipation since no additional power is consumed when the output is in the high state. In differential mode, where the logic high condition may still require a current to be forced through the coil, po wer consumption will be higher than a typical NRZ single ended configuration. Power Supply Decoupling 0.1 µF typical (0.047 µF minimum) ceramic capacitor s are recommended to decouple the power supplies. The capacitors should be placed as close as possible to the appropriate V DD pin. Maintaining Creepage Creepage distances are often critical in isolated circuits. In addition to meeting JEDEC standards, NV E isolator packages have unique creepage specifications. Standard pad librar ies often extend under the package, compromising cr eepage and clearance. Similarly, ground planes, if used, should be spaced to avoid compromising clearance. Package drawings and recommended pad layouts are included in this datasheet. Electromagnetic Compatibility and Magnetic Field Im munity Because IL600-Series Isolators are completely static, they have the lowest emitted noise of any non-op tical isolators. IsoLoop Isolators operate by imposing a magnetic fi eld on a GMR sensor, which translates the change in field into a change in logic state. A magnetic shield and a Wheatstone Bridge configuration provide good immunity to external magnetic fields. Immunity to external magnetic fields can be enhance d by proper orientation of the device with respect to the field direction, the use of differential signaling, and boost capacitors. 1. Orientation of the device with respect to the field direction An applied field in the “H1” direction is the worst case for magnetic immunity. In this case the external field is in the same direction as the applied internal field. In one direction it will tend to help switching; in the other it will hinder switching. This can cause unpredictable operation. An applied field in direction “H2” has considerably less effect and results in higher magnetic immunity. NC V DD IN+ V OE IN- OUT NC GND 2. Differential Signaling and Boost Capacitors Regardless of orientation, driving the coil differe ntially improves magnetic immunity. This is because the logic high state is driven by an applied field instead of zero field, as is th e case with single-ended operation. The higher the coil current, the higher the internal field, and the higher the immunity to external fields. Optimal magnetic immunity is achieved by adding the boost capacitor. Method Approximate Immunity Immunity Description Field applied in H1 direction ±20 Gauss A DC current of 16 A flowing in a conductor 1 cm from the device could cause disturbance. Field applied in H2 direction ±70 Gauss A DC current of 56 A flowing in a conductor 1 cm from the device could cause disturbance. Field applied in any direction but with boost capacitor (16 pF) in circuit ±250 Gauss A DC current of 200 A flowing in a conductor 1 cm from the device could cause disturbance. Data Rate and Magnetic Field Immunity It is easier to disrupt an isolated DC signal with an external magnetic field than it is to disrupt an isolated AC signal. Similarly, a DC magnetic field will have a greater effect on the device than an AC magnetic field of the same effec tive magnitude. For example, signals with pulses longer than 100 μs are more susceptible to magnetic fields than shorter pulse widths.

IsoLoop ® is a registered trademark of NVE Corporation. *U.S. Patent numbers 5,831,426; 6,300,617 and others. NVE Corporation 11409 Valley View Road, Eden Prairie, MN 55344-3617 Phone: (952) 829-9217 Fax: (952) 829-9189 www.isoloop.com iso-apps@nve.com Illustrative Applications GND2 VDD2 Cboost IL610A B/Z ISL8485 D VDD1 GND1 /K4E/K6F/K74/K65/K73/K3A /K20/K20/K20/K43 /K62/K6F/K6F/K73/K74 /K20/K69/K73/K20/K61/K70/K70/K6C/K69/K63/K61/K74/K69/K6F/K6E/K20/K73/K70/K65/K63/K69/K66/K69/K63/K20 /K20/K20/K20 /K41/K6C/K6C/K20/K6F/K74/K68/K65/K72/K20/K63/K61/K70/K61/K63/K69/K74/K6F/K72/K73/K20/K61/K72/K65/K20/K34/K37/K20/K6E/K46/K20/K63/K65/K72/K61/K6D/K69/K63 A/Y R Isolated RS-485 and RS-422 Receivers Using IL610As IL610As can be used as simple isolated RS-485 or RS -422 receivers, terminating signals at the IL610A for a fraction of the cost of an isolated node. Cabling is greatly simplified by eliminating the need to power the input side of the receiving board. No current-limiting resistor is needed for a single receiver because it will draw less current than the driver maximum. Current limiting resistors allow at least eight nodes without exceeding the maximum load of the transceiver chip. Placement of the current-limiting resistors on both lines provides better dynamic signal balance. There is no need for line termination resistors because the IL610A coil resistance of approximately 85 Ω is close to the characteristic impedance of most cables. The circuit is intrinsically open circuit failsafe because the IL610A is guaranteed to switch to the high state wh en the coil input current is less than 500 µA. For higher speed, a faster output device (s uch the CMOS-output IL600-Series Isolators) are needed as well as possibly better impedance matching. Number of Nodes Current Limit Resistors ( ΩΩ ΩΩ )

1 None

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com +5 V Neutral Load 47nF IL610A GND 1 10K 0.5W 120V Hot 74HC123 100K 1µF Monitor Out 10K 0.5W Isolated 120V Line Monitor The wide input voltage range of IL600 Isolators allows connection to line voltage through current-limi ting resistors. Unlike optocouplers, input voltage can reverse without dam aging the inputs. In this illustrative circuit, “Mo nitor Out” goes low when line voltage drops significantly. The 74HC123 monos table converts the 60 Hz isolator output to a monitor signal. System Error R +5 V GND1 Notes: Cboost is application specific All other capacitors are 47 nF ceramic L +5 V Sensor 3 Cboost IL610A Sensor 2 Cboost IL610A Sensor 1 Cboost IL610A Multi-channel Isolated Alarm Monitor The open-drain outputs of IL600A-Series Isolators a llow wired-OR outputs. The inputs can be configured for inverting or non- inverting operation (see Applications Information), and a very wide input voltage range is possible. This illustrative circuit provides fail-safe output (logic high output for zero coil current) and typical logic output sink current of 10 mA for each isolator.

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com 5V5V GND1 GND 2K2 10K 750R 750R ½ P82B96 SDA 270 pF 16 pF SDA_iso Notes: C1, C2, and C3 are 47nF ceramic Resistor values change for 3 V operation 750R VDD2 VDD1 IL612A Isolation of I 2C Nodes This circuit provides bidirectional isolation of I²C bus signals with no restrictions on data rate and none of the I²C bus latch-up problems common with other isolation circuits. The SCL section is similar as shown in the schematic using the other half of the P82B96.

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com Package Drawings 8-pin MSOP (-1 suffix) 0.114 (2.90) 0.114 (2.90) 0.016 (0.40) 0.005 (0.13) 0.009 (0.23) 0.027 (0.70) 0.010 (0.25) 0.002 (0.05) 0.043 (1.10) 0.032 (0.80) 0.006 (0.15) 0.016 (0.40) 0.189 (4.80) 0.197 (5.00) 0.122 (3.10) 0.122 (3.10) Dimensions in inches (mm); scale = approx. 5X 0.024 (0.60) 0.028 (0.70) NOTE: Pin spacing is a BASIC dimension; tolerances do not accumulate 8-pin SOIC Package (-3 suffix) 0.188 (4.77) 0.197 (5.00) 0.012 (0.3) NOTE: Pin spacing is a BASIC dimension; tolerances do not accumulate 0.054 (1.37) 0.072 (1.83) 0.228 (5.8) 0.244 (6.2) 0.150 (3.8) 0.157 (4.0) 0.052 (1.32) 0.062 (1.57) 0.013 (0.3) 0.020 (0.5) 0.007 (0.2) 0.013 (0.3) 0.016 (0.4) 0.050 (1.3) NOM Dimensions in inches (mm); scale = approx. 5X 8-pin PDIP (-2 suffix) 0.28 (7.1) 0.33 (8.4) 0.30 (7.6) 0.38 (9.7) 0.008 (0.2) 0.015 (0.4) Dimensions in inches (mm); scale = approx. 2.5X 0.345 (8.76) 0.40 (10.2) 0.27 (6.9) 0.24 (6.1) 0.055 (1.40) 0.065 (1.65) 0.030 (0.76) 0.045 (1.14) 0.014 (0.36) 0.045 (1.14) 0.070 (1.78) 0.09 (2.3) 0.11 (2.8) 0.015 (0.38) 0.040 (1.02) 0.13 (3.30) 0.17 (4.32) 0.023 (0.58) NOTE: Pin spacing is a BASIC dimension; tolerances do not accumulate Recommended Pad Layouts

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com 8-pin MSOP Pad Layout 0.025 (0.65) 0.227 (5.77) 0.017 (0.43)

8 PLCS

0.120 (3.05) Dimensions in inches (mm); scale = approx. 5X 8-pin SOIC Pad Layout 0.275 (6.99) 0.050 (1.27) 0.020 (0.51) Dimensions in inches (mm); scale = approx. 5X 0.160 (4.05)

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com Ordering Information and Valid Part Numbers IL 610 A - 1 E TR13 IL610A Valid Part Numbers IL610A-1E IL610A-2E IL610A-3E IL610A-5 IL610A-1ETR7 IL610A-3ETR7 IL610A-1ETR13 IL610A-3ETR13 IL611A Valid Part Numbers IL611A-1E IL611A-2E IL611A-3E IL611A-1ETR7 IL611A-3ETR7 IL611A-1ETR13 IL611A-3ETR13 IL612A Valid Part Numbers IL612A-2E IL612A-3E IL612A-3ETR7 IL612A-3ETR13 Bulk Packaging Blank = Tube TR7 = 7'' Tape and Reel TR13 = 13'' Tape and Reel Package E = RoHS Compliant Package Type -1 = MSOP -2 = PDIP -3 = SOIC -5 = Bare die Output Type Blank = CMOS Output A = Open Drain Output Base Part Number 610 = Single Channel 611 = 2 Transmit Channels 612 = 1 Transmit Channel,

1 Receive Channel

IL = Isolators RoHS COMPLIANT

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com

Revision History

Jan. 2023 Changes

  • Clarified output states (p. 8).
  • Clarified IL612A operation (p. 9). ISB-DS-001-IL600A-AB Changes
  • Upgrade to VDE 0884-17 (p. 3).
  • Increased Working Voltage ratings based on latest VDE testing (p. 3).
  • Added VOE logic high and low input voltage specifications (p. 5).
  • Added thermal characteristics (p. 7). ISB-DS-001-IL600A-AA Changes
  • Corrected 8-pin SOIC package outline dimensions.
  • Changed low temperature specification for IL611A-1E, IL611A-1ETR7 and IL611A-1ETR13. Changes IEC 60747-5-5 (VDE 0884) certification.
  • Upgraded from MSL 2 to MSL 1.
  • Rearranged input threshold specifications so maximum is more than minimum. ISB-DS-001-IL600A-Z ISB-DS-001-IL600A-Y Changes Added VDE 0884 pending.
  • Added monostable to line monitor circuit (p. 11).
  • Clarified circuit polarities.
  • Updated package drawings.
  • Added recommended solder pad layouts (p. 14). ISB-DS-001-IL600A-X Change
  • Detailed isolation and barrier specifications. ISB-DS-001-IL600A-W Change
  • Clarified Test Circuit 2 differential operation diagram (p.4). ISB-DS-001-IL600A-V Changes
  • Separated and clarified Input Specifications.
  • Added minimum/maximum coil resistance specifications.
  • Merged and simplified “Operation” and “Applications ” sections. ISB-DS-001-IL600A-U Change
  • Update terms and conditions. ISB-DS-001-IL600A-T Change
  • Additional changes to pin spacing specification on MSOP package drawing. ISB-DS-001-IL600A-S Change
  • Changed pin spacing specification on MSOP package drawing.

NVE Corporation 11409 Valley View Road, Ed en Prairie, MN 55344-3617 (952) 829-9217 www.nve.com YouTube.com/NveCorpora tion iso-apps@nve.com Datasheet Limitations The information and data provided in datasheets shall define the specification of the product as agreed between NVE and its customer, unless NVE and customer have explicitly agreed otherwise in writing. All specifications are based on NVE test protocols. In no event however, shall an agreement be valid in which the NVE product is deemed to offer functions and qualities beyond those described in the datasheet. Limited Warranty and Liability Information in this document is believed to be accurate and reliable. However, NVE does not give any representations or warranties, expressed or implied, as to the accuracy or completeness of such information and shall have no liability for the consequences of use of such information. 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Limiting values are stress ratings only and operation of the device at these or any other conditions above those given in the recommended operating conditions of the datasheet is not warranted. Constant or repeated exposure to limiting values will permanently and irreversibly affect the quality and reliability of the device. Terms and Conditions of Sale In case an individual agreement is concluded only the terms and conditions of the respective agreement shall apply. NVE hereby expressly objects to applying the customer’s general terms and conditions with regard to the purchase of NVE products by customer. No Offer to Sell or License Nothing in this document may be interpreted or construed as an offer to sell products that is open for acceptance or the grant, conveyance or implication of any license under any copyrights, patents or other industrial or intellectual property rights. Export Control This document as well as the items described herein may be subject to export control regulations. Export might require a prior authorization from national authorities. Automotive Qualified Products Unless the datasheet expressly states that a specific NVE product is automotive qualified, the product is not suitable for automotive use. It is neither qualified nor tested in accordance with automotive testing or application requirements. NVE accepts no liability for inclusion or use of non-automotive qualified products in automotive equipment or applications. In the event that customer uses the product for design-in and use in automotive applications to automotive specifications and standards, customer (a) shall use the product without NVE’s warranty of the product for such automotive applications, use and specifications, and (b) whenever customer uses the product for automotive applications beyond NVE’s specifications such use shall be solely at customer’s own risk, and (c) customer fully indemnifies NVE for any liability, damages or failed product claims resulting from customer design and use of the product for automotive applications beyond NVE’s standard warranty and NVE’s product specifications.

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11409 Valley View Road

Eden Prairie, MN 55344-3617 USA Telephone: (952) 829-9217 www.nve.com e-mail: iso-info@nve.com ©NVE Corporation All rights are reserved. Reproduction in whole or i n part is prohibited without the prior written consent of the copyright owner. ISB-DS-001-IL600A-AC January 2023