P6SMB6.8AT3G Series, SZP6SMB6.8AT3G Series. 600 Watt Peak Power Zener Transient Voltage Suppressors. Unidirectional*

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1 P66.8AT3G Series, SZP66.8AT3G Series 600 Watt Peak Power Zener Transient Voltage Suppressors Unidirectional* The series is designed to protect voltage sensitive components from high voltage, high energy transients. They have excellent clamping capability, high surge capability, low zener impedance and fast response time. The series is supplied in the Littelfuse exclusive, cost-effective, highly reliable package and is ideally suited for use in communication systems, automotive, numerical controls, process controls, medical equipment, business machines, power supplies and many other industrial/consumer applications. Specification Features: Working Peak Reverse Voltage Range.8 to 7 V Standard Zener Breakdown Voltage Range 6.8 to 200 V Peak Power 600 ms ESD Rating of Class 3 (> 6 kv) per Human Body Model Maximum Clamp Peak Pulse Current Low Leakage < A Above 0 V UL 497B for Isolated Loop Circuit Protection Response Time is Typically < ns SZ Prefix for Automotive and Other Applications Requiring Unique Site and Control Change Requirements; AEC Q0 Qualified and PPAP Capable These Devices are Pb Free and are RoHS Compliant Mechanical Characteristics: CASE: Void-free, transfer-molded, thermosetting plastic FINISH: All external surfaces are corrosion resistant and leads are readily solderable MAXIMUM CASE TEMPERATURE FOR SOLDERING PURPOSES: 260 C for 0 Seconds LEADS: Modified L Bend providing more contact area to bond pads POLARITY: Cathode indicated by polarity band MOUNTING POSITION: Any PLASTIC SURFACE MOUNT ZENER OVERVOLTAGE TRANSIENT SUPPRESSORS.8 7 VOLTS 600 WATT PEAK POWER Cathode CASE 403A PLASTIC Anode A = Assembly Location Y = Year WW = Work Week xx = Device Code (Refer to page 3) = Pb Free Package (Note: Microdot may be in either location) ORDERING INFORMATION Device Package Shipping P6xxxAT3G SZP6xxxAT3G Littelfuse.com MARKING DIAGRAM AYWW xx (Pb Free) (Pb Free) 2,00 / Tape & Reel 2,00 / Tape & Reel *Please see P6CAT3 to P69CAT3 for Bidirectional devices. Specifications subject to change without notice. 206 Littelfuse, Inc. September 9, 206 Rev. 4 Publication Order Number:

2 MAXIMUM RATINGS Rating Symbol Value Unit Peak Power Dissipation (Note T L = 2 C, Pulse Width = ms P PK 600 W DC Power T L = 7 C Measured Zero Lead Length (Note 2) Derate Above 7 C Thermal Resistance from Junction to Lead P D R JL W mw/ C C/W DC Power Dissipation (Note T A = 2 C Derate Above 2 C Thermal Resistance from Junction to Ambient P D R JA W mw/ C C/W Forward Surge Current (Note T A = 2 C I FSM 00 A Operating and Storage Temperature Range T J, T stg 6 to +0 C Stresses exceeding those listed in the Maximum Ratings table may damage the device. If any of these limits are exceeded, device functionality should not be assumed, damage may occur and reliability may be affected.. 0 X 000 s, non repetitive 2. square copper pad, FR 4 board 3. FR 4 board, using Littelfuse minimum recommended footprint, as shown in 403A case outline dimensions spec. 4. /2 sine wave (or equivalent square wave), PW = 8.3 ms, duty cycle = 4 pulses per minute maximum. ELECTRICAL CHARACTERISTICS (T A = 2 C unless otherwise noted, V F = 3. V I F (Note 4) = 30 A, V F =.3 V I F (Note 4) = 3 A) (Note ) Symbol I PP Parameter Maximum Reverse Peak Pulse Current I F I V C Clamping I PP V RWM Working Peak Reverse Voltage I R V BR I T Maximum Reverse Leakage V RWM Breakdown I T Test Current V RWM V C V BR I R I T V F V V BR I F Maximum Temperature Coefficient of V BR Forward Current V F Forward I F. /2 sine wave or equivalent, PW = 8.3 ms, non repetitive duty cycle I PP Uni Directional TVS Specifications subject to change without notice. 206 Littelfuse, Inc. September 9, 206 Rev. 4 2 Publication Order Number:

3 ELECTRICAL CHARACTERISTICS Device* P66.8AT3G P67.AT3G P68.2AT3G P69.AT3G P60AT3G P62AT3G P63AT3G P6AT3G P66AT3G P68AT3G P620AT3G P622AT3G P624AT3G P627AT3G P630AT3G P633AT3G P636AT3G P639AT3G P643AT3G P647AT3G P6AT3G P66AT3G P662AT3G P668AT3G P67AT3G P69AT3G P600AT3G P620AT3G P630AT3G P60AT3G P660AT3G P680AT3G Device Marking 6V8A 7VA 8V2A 9VA 0A 2A 3A A 6A 8A 20A 22A 24A 27A 30A 33A 36A 39A 43A 47A A 6A 62A 68A 7A 9A 00A 20A 30A 0A 60A 80A V RWM (Note 6) Breakdown Voltage V I PP (Note 8) I V RWM V BR V (Note I T V C I PP V BR C typ (Note 9) V A Min Nom Max ma V A %/ C pf P6200AT3G 200A A transient suppressor is normally selected according to the working peak reverse voltage (V RWM ), which should be equal to or greater than the DC or continuous peak operating voltage level. 7. V BR measured at pulse test current I T at an ambient temperature of 2 C. 8. Surge current waveform per Figure 2 and derate per Figure Bias Voltage = 0 V, F = MHz, T J = 2 C * Include SZ-prefix devices where applicable. Specifications subject to change without notice. 206 Littelfuse, Inc. September 9, 206 Rev. 4 3 Publication Order Number:

4 P P, PEAK POWER (kw) 00 0 NONREPETITIVE PULSE WAVEFORM SHOWN IN FIGURE 2 VALUE (%) 00 0 t r 0 s PEAK VALUE - I PP PULSE WIDTH (t P ) IS DEFINED AS THAT POINT WHERE THE PEAK CURRENT DECAYS TO 0% OF I PP. HALF VALUE - I PP 2 t P s s 0 s 00 s ms 0 ms t P, PULSE WIDTH t, TIME (ms) Figure. Pulse Rating Curve Figure 2. Pulse Waveform 60 0,000 PEAK PULSE DERATING IN % OF PEAK POWER OR TA = 2 C T A, AMBIENT TEMPERATURE ( C) C, CAPACITANCE (pf) T J = 2 C f = MHz P66.8AT3G P68AT3G P6AT3G P6200AT3G BIAS VOLTAGE (VOLTS) Figure 3. Pulse Derating Curve Figure 4. Typical Junction Capacitance vs. Bias Voltage TYPICAL PROTECTION CIRCUIT Z in V in LOAD VL Specifications subject to change without notice. 206 Littelfuse, Inc. September 9, 206 Rev. 4 4 Publication Order Number:

5 APPLICATION NOTES Response Time In most applications, the transient suppressor device is placed in parallel with the equipment or component to be protected. In this situation, there is a time delay associated with the capacitance of the device and an overshoot condition associated with the inductance of the device and the inductance of the connection method. The capacitive effect is of minor importance in the parallel protection scheme because it only produces a time delay in the transition from the operating voltage to the clamp voltage as shown in Figure. The inductive effects in the device are due to actual turn-on time (time required for the device to go from zero current to full current) and lead inductance. This inductive effect produces an overshoot in the voltage across the equipment or component being protected as shown in Figure 6. Minimizing this overshoot is very important in the application, since the main purpose for adding a transient suppressor is to clamp voltage spikes. The series have a very good response time, typically < ns and negligible inductance. However, external inductive effects could produce unacceptable overshoot. Proper circuit layout, minimum lead lengths and placing the suppressor device as close as possible to the equipment or components to be protected will minimize this overshoot. Some input impedance represented by Z in is essential to prevent overstress of the protection device. This impedance should be as high as possible, without restricting the circuit operation. Duty Cycle Derating The data of Figure applies for non-repetitive conditions and at a lead temperature of 2 C. If the duty cycle increases, the peak power must be reduced as indicated by the curves of Figure 7. Average power must be derated as the lead or ambient temperature rises above 2 C. The average power derating curve normally given on data sheets may be normalized and used for this purpose. At first glance the derating curves of Figure 7 appear to be in error as the 0 ms pulse has a higher derating factor than the 0 s pulse. However, when the derating factor for a given pulse of Figure 7 is multiplied by the peak power value of Figure for the same pulse, the results follow the expected trend. V V in (TRANSIENT) V OVERSHOOT DUE TO INDUCTIVE EFFECTS V in (TRANSIENT) V L V L V in t d t D = TIME DELAY DUE TO CAPACITIVE EFFECT t t Figure. Figure 6. DERATING FACTOR s PULSE WIDTH 0 ms ms 00 s D, DUTY CYCLE (%) Figure 7. Typical Derating Factor for Duty Cycle Specifications subject to change without notice. 206 Littelfuse, Inc. September 9, 206 Rev. 4 Publication Order Number:

6 UL RECOGNITION The entire series has Underwriters Laboratory Recognition for the classification of protectors (QVGQ2) under the UL standard for safety 497B and File #E Many competitors only have one or two devices recognized or have recognition in a non-protective category. Some competitors have no recognition at all. With the UL497B recognition, our parts successfully passed several tests including Strike Voltage Breakdown test, Endurance Conditioning, Temperature test, Dielectric Voltage-Withstand test, Discharge test and several more. Whereas, some competitors have only passed a flammability test for the package material, we have been recognized for much more to be included in their Protector category. Specifications subject to change without notice. 206 Littelfuse, Inc. September 9, 206 Rev. 4 6 Publication Order Number:

7 PACKAGE DIMENSIONS CASE 403A 03 ISSUE J H E E b POLARITY INDICATOR OPTIONAL AS NEEDED D NOTES:. DIMENSIONING AND TOLERANCING PER ANSI Y4.M, CONTROLLING DIMENSION: INCH. 3. DIMENSION b SHALL BE MEASURED WITHIN DIMENSION L. MILLIMETERS INCHES DIM MIN NOM MAX MIN NOM MAX A A b c D E H E L L 0. REF REF A L L c A SOLDERING FOOTPRINT SCALE 8: mm inches Littelfuse products are not designed for, and shall not be used for, any purpose (including, without limitation, automotive, military, aerospace, medical, life-saving, life-sustaining or nuclear facility applications, devices intended for surgical implant into the body, or any other application in which the failure or lack of desired operation of the product may result in personal injury, death, or property damage) other than those expressly set forth in applicable Littelfuse product documentation. Warranties granted by Littelfuse shall be deemed void for products used for any purpose not expressly set forth in applicable Littelfuse documentation. Littelfuse shall not be liable for any claims or damages arising out of products used in applications not expressly intended by Littelfuse as set forth in applicable Littelfuse documentation. The sale and use of Littelfuse products is subject to Littelfuse Terms and Conditions of Sale, unless otherwise agreed by Littelfuse. Specifications subject to change without notice. 206 Littelfuse, Inc. September 9, 206 Rev. 4 7 Publication Order Number:

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