PS9302L NEC | Alldatasheet

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The information in this document is subject to change without notice. Before using this document, please confirm that this is the latest version. Not all products and/or types are available in every country. Please check with an NEC Electronics sales representative for availability and additional information. PHOTOCOUPLER PS9302L

2.5 A OUTPUT CURRENT, HIGH CMR

8-PIN SDIP PHOTOCOUPLER −NEPOC Series− Document No. PN10744EJ02V0DS (2nd edition) Date Published August 2009 NS Printed in Japan 2009 PIN CONNECTION (Top View) 1. Anode 2. Cathode 3. Cathode 4. NC 5. V EE 6. VEE 7. VO 8. VCC 12 34 87 65 SHIELD The mark <R> shows major revised points. The revised points can be easily searched by copying an "<R>" in the PDF file and specifying it in the "Find what:" field.

DESCRIPTION

The PS9302L is an optically coupled is olator containing a GaAlAs LED on the input side and a photo diode, a signal processing circuit and a power output transistor on the output side on one chip. The PS9302L is designed specifically fo r high common mode transient immuni ty (CMR), high output current and high switching speed.

FEATURES

  • Large peak output current (2.5 A MAX., 2.0 A MIN.)  High speed switching (t PLH, tPHL = 0.5 μs MAX.)  Long creepage distance (8 mm MIN.)  UVLO (Under Voltage Lock Out) protection with hysteresis  High common mode transient immunity (CM H, CML = ±25 kV/μs MIN.)  Ordering number of tape pr oduct: PS9302L-E3: 2 000 pcs/reel  Pb-Free product  Safety standards  UL approved: No. E72422  CSA approved: No. CA 101391 (C A5A, CAN/CSA-C22.2 60065, 60950)  DIN EN60747-5-2 (VDE0884 Part2) approved: No. 40019182 (Option)

APPLICATIONS

 IGBT, Power MOS FET Gate Driver  Industrial inverter  IH (Induction Heating) <R> <R>

Data Sheet PN10744EJ02V0DS 2 PS9302L PACKAGE DIMENSIONS (UNIT: mm) 5.85±0.25 1.27 3.5±0.2 3.7±0.25 (0.82) 6.8±0.25 (7.62) 9.7±0.3 0.84±0.25 0.2±0.15 0.25±0.15 0.4±0.1 0.25 M

Data Sheet PN10744EJ02V0DS 3 PS9302L FUNCTIONAL DIAGRAM LED Output ON H OFF Tr. 1 ON OFF Tr. 2 OFF ON L Input H L (Tr. 2) (Tr. 1) SHIELD MARKING EXAMPLE 9302 N931 9N 31 No. 1 pin Mark Type Number Assembly Lot Year Assembled (Last 1 Digit) Rank Code Week Assembled PHOTOCOUPLER CONSTRUCTION Parameter PS9302L Air Distance (MIN.) 7 mm Outer Creepage Distance (MIN.) 8 mm Isolation Distance (MIN.) 0.4 mm

Data Sheet PN10744EJ02V0DS 4 PS9302L

ORDERING INFORMATION

Part Number Order Number Solder Plating Specification Packing Style Safety Standard Approval Application Part Number PS9302L PS9302L-AX Pb-Free 20 pcs (Tape 20 pcs cut) Standard products PS9302L PS9302L-E3 PS9302L-E3-AX (Ni/Pd/Au) Embossed Tape 2 000 pcs/reel (UL, CSA approved) PS9302L-V PS9302L-V-AX 20 pcs (Tape 20 pcs cut) DIN EN60747-5-2 PS9302L-V-E3 PS9302L-V-E3-AX Embossed T ape 2 000 pcs/reel (VDE0884 Part2) Approved (Option) *1 For the application of the Safety Standard, following part number should be used. ABSOLUTE MAXIMUM RATINGS (TA = 25°C, unless otherwise specified) Parameter Symbol Ratings Unit Diode Forward Current I F 25 mA Peak Transient Forward Current (Pulse Width < 1 μs) IF (TRAN) 1.0 A Reverse Voltage V R 5 V Power Dissipation P D 45 mW Detector High Level Peak Output Current IOH (PEAK) 2.5 A Low Level Peak Output Current IOL (PEAK) 2.5 A Supply Voltage (V CC - VEE) 0 to 35 V Output Voltage V O 0 to V CC V Power Dissipation P C 250 mW Isolation Voltage BV 5 000 Vr.m.s. Operating Frequency f 50 kHz Operating Ambient Temperature T A −40 to +100 °C Storage Temperature T stg −55 to +125 °C *1 Reduced to 1.6 mW/ °C at TA = 85°C or more. *2 Maximum pulse width = 10 μs, Maximum duty cycle = 0.2% *3 Reduced to 6.0 mW/ °C at TA = 80°C or more. *4 AC voltage for 1 minute at T A = 25°C, RH = 60% between input and output. Pins 1-4 shorted together, 5-8 shorted together. *5 I OH (PEAK) ≤ 2.0 A (≤ 0.3 μs), IOL (PEAK) ≤ 2.0 A (≤ 0.3 μs) <R> <R>

Data Sheet PN10744EJ02V0DS 5 PS9302L RECOMMENDED OPERATING CONDITIONS Parameter Symbol MIN. TYP. MAX. Unit Supply Voltage (V CC - VEE) 15 30 V Forward Current (ON) I F (ON) 7 10 16 mA Forward Voltage (OFF) V F (OFF) −2 0.8 V Operating Ambient Temperature T A −40 100 °C ELECTRICAL CHARACTERISTICS (TA = −40 to +100°C, VCC = 15 to 30 V, IF (ON) = 7 to 16 mA, VF (OFF) = −2 to 0.8 V, VEE = GND, unless otherwise specified) Parameter Symbol Conditions MIN. TYP. MAX. Unit Diode Forward Voltage V F I F = 10 mA, TA = 25°C 1.2 1.56 1.9 V Reverse Current I R V R = 3 V, TA = 25°C 10 μA Terminal Capacitance C t f = 1 MHz, V F = 0 V, TA = 25°C 30 pF Detector High Level Output Current I OH V O = (VCC − 4 V) 0.5 2.0 A V O = (VCC − 15 V) 2.0 Low Level Output Current I OL V O = (VEE + 2.5 V) 0.5 2.0 A V O = (VEE + 15 V) 2.0 High Level Output Voltage V OH I O = −100 mA V CC − 3.5 V CC − 2.5 V CC − 1.5 V Low Level Output Voltage V OL I O = 100 mA 0.1 0.5 V High Level Supply Current I CCH V O = open, IF = 10 mA 2.0 3.5 mA Low Level Supply Current I CCL V O = open, VF = 0 to +0.8 V 2.0 3.0 mA UVLO Threshold V UVLO+ V O > 5 V, IF = 10 mA 11.0 12.0 13.5 V V UVLO− 9.5 11.0 12.0 UVLO Hysteresis UVLO HYS V O > 5 V, IF = 10 mA 1.0 V Coupled Threshold Input Current (L → H) IFLH I O = 0 mA, VO > 5 V 2.0 5.0 mA Threshold Input Voltage (H → L) VFHL I O = 0 mA, VO < 5 V 0.8 V *1 Typical values at T A = 25°C. *2 Maximum pulse width = 50 μs, Maximum duty cycle = 0.5%. *3 Maximum pulse width = 10 μs, Maximum duty cycle = 0.2% *4 V OH is measured with the DC load current in this testing (Maximum pulse width = 2 ms, Maximum duty cycle = 20%).

Data Sheet PN10744EJ02V0DS 6 PS9302L SWITCHING CHARACTERISTICS (TA = −40 to +100°C, VCC = 15 to 30 V, IF (ON) = 7 to 16 mA, VF (OFF) = −2 to 0.8 V, VEE = GND, unless otherwise specified) Parameter Symbol Conditions MIN. TYP. MAX. Unit Propagation Delay Time (L → H) t PLH R g = 10 Ω, Cg = 10 nF, f = 10 kHz, 0.1 0.3 0.5 μs Propagation Delay Time (H → L) t PHL Duty Cycle = 50% , IF = 10 mA 0.1 0.3 0.5 μs Pulse Width Distortion (PWD) |t PHL−tPLH| 0.3 μs Propagation Delay Time (Difference Between Any Two Products) tPHL−tPLH −0.35 0.35 μs Rise Time t r 0.1 μs Fall Time t f 0.1 μs UVLO (Turn On Delay) t UVLO ON V O > 5 V, IF = 10 mA 0.8 μs UVLO (Turn Off Delay) t UVLO OFF V O < 5 V, IF = 10 mA 0.6 μs Common Mode Transient Immunity at High Level Output |CMH| T A = 25°C, IF = 10 mA, VCC = 30 V, VO (MIN.) = 26 V, VCM = 1.5k V 25 kV/ μs Common Mode Transient Immunity at Low Level Output |CML| T A = 25°C, IF = 0 mA, VCC = 30 V, VO (MAX.) = 1 V, VCM = 1.5k V 25 kV/ μs *1 Typical values at T A = 25°C. *2 This load condition is equivalent to the IGBT load at 1 200 V/75 A. *3 Connect pin 4 to the LED common.

Data Sheet PN10744EJ02V0DS 7 PS9302L TEST CIRCUIT Fig. 1 IOH Test Circuit Fig. 2 I OL Test Circuit Fig. 3 VOH Test Circuit Fig. 4 V OL Test Circuit Fig. 5 IFLH Test Circuit Fig. 6 UVLO Test Circuit VCC = 15 to 30 V VCC = 15 to 30 V IF = 7 to 16 mA VCC = 15 to 30 V VCC = 15 to 30 V IF = 7 to 16 mA VCC = 15 to 30 V 4 V 0.1 Fμ IOH SHIELD 2.5 V 0.1 Fμ IOL SHIELD 0.1 Fμ VOH 100 mA SHIELD 0.1 Fμ VOL 100 mA SHIELD IF VO > 5 V 0.1 Fμ SHIELD VO > 5 V IF = 10 mA VCC 0.1 Fμ SHIELD <R>

Data Sheet PN10744EJ02V0DS 8 PS9302L VCC = 15 to 30 V IF = 7 to 16 mA (Switch A: IF = 10 mA) (Switch B: IF = 0 mA) Fig. 7 tPLH, tPHL, tr, tf Test Circuit and Wave Forms Fig. 8 CMR Test Circuit and Wave Forms 10 kHz 50% DUTY CYCLE 0.1 Fμ VO 500 Ω 10 Ω 10 nF tPHLtPLH IF VOUT 90% 50% 10% tr tf SHIELD VCC = 30 V VCM = 1.5 kV 0.1 Fμ A B VO IF VOH VOL 1 V 26 V VCM 0 V VO VO Δt =δ V δ t VCM Δt SHIELD

Data Sheet PN10744EJ02V0DS 9 PS9302L TYPICAL CHARACTERISTICS (TA = 25°C, unless otherwise specified) Ambient Temperature TA (°C) Detector Power Dissipation PC (mW) DETECTOR POWER DISSIPATION vs. AMBIENT TEMPERATURE Ambient Temperature TA (°C) Threshold Input Current IFLH (mA) THRESHOLD INPUT CURRENT vs. AMBIENT TEMPERATURE Forward Current IF (mA) Output Voltage VO (V) OUTPUT VOLTAGE vs. FORWARD CURRENT Ambient Temperature TA (°C) Diode Power Dissipation PD (mW) DIODE POWER DISSIPATION vs. AMBIENT TEMPERATURE 20 40 60 80 120 1000 20 40 60 80 120 1000 300 250 200 150 100 Forward Voltage VF (V) Forward Current IF (mA) FORWARD CURRENT vs. FORWARD VOLTAGE 0.01 0.1 1.0 100 TA = +100°C +85°C +50°C +25°C 0°C –40°C 3.0 2.5 2.0 1.5 1.0 VCC = 30 V, VEE = GND, VO > 5 V –40 –20 0 20 40 60 100 80 102 4 35 High Level Output Voltage – Supply Voltage VOH – VCC (V) High Level Output Current IOH (A) HIGH LEVEL OUTPUT VOLTAGE – SUPPLY VOLTAGE vs. HIGH LEVEL OUTPUT CURRENT 0 0.5 1 1.5 2.5 2 VCC = 30 V, VEE = GND, IF = 10 mA Remark The graphs indicate nominal characteristics. <R>

Data Sheet PN10744EJ02V0DS 10 PS9302L Low Level Output Current IOL (A) Low Level Output Voltage VOL (V) LOW LEVEL OUTPUT VOLTAGE vs. LOW LEVEL OUTPUT CURRENT Forward Current IF (mA) PROPAGATION DELAY TIME, PULSE WIDTH DISTORTION vs. FORWARD CURRENT Propagation Delay Time tPHL, tPLH (ns), Pulse Width Distortion (PWD) tPHL – tPLH (ns) PROPAGATION DELAY TIME, PULSE WIDTH DISTORTION vs. SUPPLY VOLTAGE Supply Voltage VCC (V) Propagation Delay Time tPHL, tPLH (ns), Pulse Width Distortion (PWD) tPHL – tPLH (ns) Propagation Delay Time tPHL, tPLH (ns), Pulse Width Distortion (PWD) tPHL – tPLH (ns) PROPAGATION DELAY TIME, PULSE WIDTH DISTORTION vs. AMBIENT TEMPERATURE Ambient Temperature TA (°C) Propagation Delay Time tPHL, tPLH (ns), Pulse Width Distortion (PWD) tPHL – tPLH (ns) PROPAGATION DELAY TIME, PULSE WIDTH DISTORTION vs. LOAD CAPACITANCE Load Capacitance Cg (nF) 0 0.5 1 1.5 2.5 2 VCC = 30 V, VEE = GND, IF = 0 mA TA = +100°C +25°C –40°C 7 8 10 12 13 16 17 18 VCC = 30 V, VEE = GND, Rg = 10 Ω, Cg = 10 nF, f = 10 kHz, Duty cycle = 50% 500 400 300 200 100 t PHL tPLH 91 1 1 5 14 PWD 15 20 25 30 VEE = GND, IF = 10 mA, Rg = 10 Ω, Cg = 10 nF, f = 10 kHz, Duty cycle = 50% 500 400 300 200 100 t PHL PWD tPLH 0–40 –20 20 40 60 80 100 VCC = 30 V, VEE = GND, IF = 10 mA, Rg = 10 Ω, Cg = 10 nF, f = 10 kHz, Duty cycle = 50% 500 400 300 200 100 t PHL tPLH PWD 02 0 40 60 80 120 100 VCC = 30 V, VEE = GND, IF = 10 mA, Rg = 10 Ω, f = 10 kHz, Duty cycle = 50% 500 400 300 200 100 t PHL tPLH PWD 3.5 2.5 1.5 –20 0 20 40 100 8060–40 VCC = 30 V, VEE = GND, VO = OPEN ICCH (IF = 10 mA) ICCL (IF = 0 mA) Ambient Temperature TA (°C) SUPPLY CURRENT vs. AMBIENT TEMPERATURE High Level Supply Current ICCH (mA), Low Level Supply Current ICCL (mA) Remark The graphs indicate nominal characteristics.

Data Sheet PN10744EJ02V0DS 11 PS9302L Supply Voltage VCC (V) SUPPLY CURRENT vs. AMBIENT TEMPERATURE High Level Supply Current ICCH (mA), Low Level Supply Current ICCL (mA) Ambient Temperature TA (°C) High Level Output Voltage – Supply Voltage VOH – VCC (V) HIGH LEVEL OUTPUT VOLTAGE – SUPPLY VOLTAGE vs. AMBIENT TEMPERATURE Ambient Temperature TA (°C) Low Level Output Voltage VOL (V) LOW LEVEL OUTPUT VOLTAGE vs. AMBIENT TEMPERATURE Ambient Temperature TA (°C) High Level Output Current IOH (A) HIGH LEVEL OUTPUT CURRENT vs. AMBIENT TEMPERATURE Ambient Temperature TA (°C) Low Level Output Current IOL (A) LOW LEVEL OUTPUT CURRENT vs. AMBIENT TEMPERATURE PROPAGATION DELAY TIME, PULSE WIDTH DISTORTION vs. LOAD RESISTANCE Load Resistance Rg (Ω) Propagation Delay Time tPHL, tPLH (ns), Pulse Width Distortion (PWD) tPHL – tPLH (ns) 15 20 30 25 3.5 2.5 1.5 VEE = GND, VO = OPEN ICCH (IF = 10 mA) ICCL (IF = 0 mA) –20 0 20 40 100 8060–40 VCC = 30 V, VEE = GND, IF = 10 mA, IO = –100 mA –20 0 20 40 100 8060–40 0.25 0.2 0.15 0.1 0.05 VCC = 30 V, VEE = GND, IF = 0 mA, IO = 100 mA –20 0 20 40 100 8060–40 2.5 1.5 VCC = 30 V, VEE = GND, IF = 10 mA, VO = 26 V –20 0 20 40 100 8060–40 VCC = 30 V, VEE = GND, IF = 0 mA, VO = 2.5 V 01 0 2 0 3 0 4 0 5 0 6 0 VCC = 30 V, VEE = GND, IF = 10 mA, Cg = 10 nF, f = 10 kHz, Duty cycle = 50% 500 400 300 200 100 t PHL PWD tPLH Remark The graphs indicate nominal characteristics.

Data Sheet PN10744EJ02V0DS 12 PS9302L OUTPUT VOLTAGE vs. SUPPLY VOLTAGE Supply Voltage VCC – VEE (V) Output Voltage VO (V) 0 5 10 15 20 UVLOHYS VUVLO+VUVLO– (12.0 V)(11.0 V) Remark The graph indicates nominal characteristics.

Data Sheet PN10744EJ02V0DS 13 PS9302L TAPING SPECIFICATIONS (UNIT: mm) 330±2.0 100±1.0 2.0±0.5 13.0±0.2 R 1.0 21.0±0.8 2.0±0.5 17.5±1.0 21.5±1.0 2.0±0.1 4.0±0.1 6.35±0.1 8.0±0.1 1.5 +0.1 1.75±0.1 4.5 MAX. 7.5±0.1 10.2±0.1 16.0±0.3 0.35 1.5 +0.1 4.05±0.1 Outline and Dimensions (Tape) Packing: 2 000 pcs/reel 15.9 to 19.4 Outer edge of flange Tape Direction Outline and Dimensions (Reel) PS9302L-E3 <R>

Data Sheet PN10744EJ02V0DS 14 PS9302L RECOMMENDED MOUNT PAD DIMENSIONS (UNIT: mm) D CB A Part Number PS9302L Lead Bending A lead bending type (Gull-wing) for surface mount 8.2 B 1.27 C 0.8 D 2.2 <R>

Data Sheet PN10744EJ02V0DS 15 PS9302L NOTES ON HANDLING 1. Recommended soldering conditions (1) Infrared reflow soldering  Peak reflow temperature 260 °C or below (package surface temperature)  Time of peak reflow temperature 10 seconds or less  Time of temperature higher than 220°C 60 seconds or less  Time to preheat temperature from 120 to 180°C 120 ±30 s  Number of reflows Three  Flux Rosin flux containing small amount of chlorine (The flux with a maximum chlorine content of 0.2 Wt% is recommended.) 120±30 s (preheating) 220°C 180°C Package Surface Temperature T (°C) Time (s) Recommended Temperature Profile of Infrared Reflow (heating) to 10 s to 60 s 260°C MAX. 120°C (2) Wave soldering  Temperature 260 °C or below (molten solder temperature)  Time 10 seconds or less  Preheating conditions 120 °C or below (package surface temperature)  Number of times One (Allowed to be dipped in solder including plastic mold portion.)  Flux Rosin flux containing small amount of chlorine (The flux with a maximum chlorine content of 0.2 Wt% is recommended.) (3) Soldering by soldering iron  Peak temperature (lead part temperature) 350 °C or below  Time (each pins) 3 seconds or less  Flux Rosin flux containing small amount of chlorine (The flux with a maximum chlorine content of 0.2 Wt% is recommended.) (a) Soldering of leads should be made at the point 1.5 to 2.0 mm from the root of the lead. (b) Please be sure that the temperature of the package would not be heated over 100°C. <R>

Data Sheet PN10744EJ02V0DS 16 PS9302L (4) Cautions  Fluxes Avoid removing the residual flux with freon-based and chlorine-based cleaning solvent. 2. Cautions regarding noise Be aware that when voltage is app lied suddenly between the photocoupler’s input and output at startup, the output transistor may enter the on state, even if the voltage is within the absolute maximum ratings. USAGE CAUTIONS 1. This product is weak for static el ectricity by designed with hi gh-speed integrated circuit so protect against static electricity when handling. 2. Board designing (1) By-pass capacitor of more than 0.1 μF is used between V CC and GND near device. Al so, ensure that the distance between the leads of the photocoupler and capacitor is no more than 10 mm. (2) In older to avoid malfunctions and characteristics degr adation, IGBT collector or emitter traces should not be closed to the LED input. (3) Pin 4 (which is an NC pin) can either be connected directly to the GND pin on the LED side or left open. Unconnected pins should not be used as a bypass for si gnals or for any other similar purpose because this may degrade the internal noise environment of the device. *1 NC: Non-Connection (No Connection) 3. Make sure the rise/fall time of the forward current is 0.5 μs or less. 4. In order to avoid malfunctions, make sure the rise/fall slope of the supply voltage is 3 V/μs or less. 5. Avoid storage at a high te mperature and high humidity. <R>

Data Sheet PN10744EJ02V0DS 17 PS9302L SPECIFICATION OF VDE MARKS LICENSE DOCUMENT Parameter Symbol Spec. Unit Climatic test class (IEC 60068-1/DIN EN 60068-1) 55/100/21 Dielectric strength maximum operating isolation voltage Test voltage (partial discharge test, procedure a for type test and random test) U pr = 1.5 × UIORM, Pd < 5 pC UIORM Upr 1 130 1 695 V peak Vpeak Test voltage (partial discharge test, procedure b for all devices) Upr = 1.875 × UIORM, Pd < 5 pC Upr 2 119 V peak Highest permissible overvoltage U TR 8 000 V peak Degree of pollution (DIN EN 60664-1 VDE0110 Part 1) 2 Comparative tracking index (IEC 60112/DIN EN 60112 (VDE 0303 Part 11)) CTI 175 Material group (DIN EN 60664-1 VDE0110 Part 1) III a Storage temperature range T stg –55 to +125 °C Operating temperature range T A –40 to +100 °C Isolation resistance, minimum value VIO = 500 V dc at TA = 25°C VIO = 500 V dc at TA MAX. at least 100°C Ris MIN. Ris MIN. Ω Ω Safety maximum ratings (maximum permissible in case of fault, see thermal derating curve) Package temperature Current (input current I F, Psi = 0) Power (output or total power dissipation) Isolation resistance V IO = 500 V dc at TA = Tsi Tsi Isi Psi Ris MIN. 175 400 700 mA mW Ω <R>

Data Sheet PN10744EJ02V0DS 18 PS9302L The information in this document is current as of August, 2009. The information is subject to change without notice. For actual design-in, refer to the latest publications of NEC Electronics data sheets, etc., for the most up-to-date specifications of NEC Electronics products. Not all products and/or types are available in every country. Please check with an NEC Electronics sales representative for availability and additional information. No part of this document may be copied or reproduced in any form or by any means without the prior written consent of NEC Electronics. NEC Electronics assumes no responsibility for any errors that may appear in this document. NEC E lectronics does not assume any liability for infringement of patents, copyrights or other intellectual property rights of third parties by or arising from the use of NEC Electronics products listed in this document or any other liability arising from the use of such products. No license, express, implied or otherwise, is granted under any patents, copyrights or other intellectual property rights of NEC Electronics or others. Descriptions of circuits, software and other related information in this document are provided for illustrative purposes in semiconductor product operation and application examples. The incorporation of these circuits, software and information in the design of a customer's equipment shall be done under the full responsibility of the customer. NEC Electronics assumes no responsibility for any losses incurred by customers or third parties arising from the use of these circuits, software and information. While NEC Electronics endeavors to enhance the quality and safety of NEC Electronics products, customers agree and acknowledge that the possibility of defects thereof cannot be eliminated entirely. In addition, NEC Electronics products are not taken measures to prevent radioactive rays in the product design. When customers use NEC Electronics products with their products, customers shall, on their own responsibility, incorporate sufficient safety measures such as redundancy, fire-containment and anti-failure features to their products in order to avoid risks of the damages to property (including public or social property) or injury (including death) to persons, as the result of defects of NEC Electronics products. NEC Electronics products are classified into the following three quality grades: "Standard", "Special" and "Specific". The "Specific" quality grade applies only to NEC Electronics products developed based on a customer- designated "quality assurance program" for a specific application. The recommended applications of an NEC Electronics product depend on its quality grade, as indicated below. Customers must check the quality grade of each NEC Electronics product before using it in a particular application. The quality grade of NEC Electronics products is "Standard" unless otherwise expressly specified in NEC Electronics data sheets or data books, etc. If customers wish to use NEC Electronics products in applications not intended by NEC Electronics, they must contact an NEC Electronics sales representative in advance to determine NEC Electronics' willingness to support a given application. (Note) M8E0904E (1) (2) "NEC Electronics" as used in this statement means NEC Electronics Corporation and also includes its majority-owned subsidiaries. "NEC Electronics products" means any product developed or manufactured by or for NEC Electronics (as defined above). Computers, office equipment, communications equipment, test and measurement equipment, audio and visual equipment, home electronic appliances, machine tools, personal electronic equipment and industrial robots. Transportation equipment (automobiles, trains, ships, etc.), traffic control systems, anti-disaster systems, anti-crime systems, safety equipment and medical equipment (not specifically designed for life support). Aircraft, aerospace equipment, submersible repeaters, nuclear reactor control systems, life support systems and medical equipment for life support, etc. "Standard": "Special": "Specific":

Caution GaAs Products This product uses gallium arsenide (GaAs). GaAs vapor and powder are hazardous to human health if inhaled or ingested, so please observe the following points.  Follow related laws and ordinances when disposing of the product. If there are no applicable laws and/or ordinances, dispose of the product as recommended below. 1. Commission a disposal company able to (with a license to) collect, transport and dispose of materials that contain arsenic and other such industrial waste materials. 2. Exclude the product from general industrial waste and household garbage, and ensure that the product is controlled (as industrial waste subject to special control) up until final disposal.  Do not burn, destroy, cut, crush, or chemically dissolve the product.  Do not lick the product or in any way allow it to enter the mouth.