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IMP708SESA Datasheet(PDF) 3 Page - IMP, Inc |
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IMP708SESA Datasheet(HTML) 3 Page - IMP, Inc |
3 / 8 page Pin Terminal Voltage with Respect to Ground VCC . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . –0.3V to 6.0V All other inputs . . . . . . . . . . . . . . . . . . . . . . . . –0.3V to (VCC + 0.3V) Input Current at VCC and GND . . . . . . . . . . 20mA Output Current: All outputs . . . . . . . . . . . . . 20mA Rate of Rise at VCC . . . . . . . . . . . . . . . . . . . . . 100V/ µs Plastic DIP Power Dissipation . . . . . . . . . . . 700mW (Derate 9mW/ °C above 70°C) SO Power Dissipation . . . . . . . . . . . . . . . . . . 470mW (Derate 5.9mW/ °C above 70°C) MicroSO Power Dissipation . . . . . . . . . . . . . 330mW (Derate 4.1mW/ °C above 70°C) Operating Temperature Range IMP706xE, IMP708xE . . . . . . . . . . . . . . . . . . –40 °C to +85°C IMP706xC, IMP708xC . . . . . . . . . . . . . . . . . . 0 °C to +70°C Storage Temperature Range . . . . . . . . . . . . . . –65 °C to +160°C Lead Temperature Soldering (10 sec) . . . . . . 300 °C These are stress ratings only and functional operation is not implied. Exposure to absolute maximum ratings for prolonged time periods may affect device reliability. © 1999 IMP, Inc. 408-432-9100/www.impweb.com 3 IMP706P/R/S/T/J, IMP708R/S/T/J IMP706P/R/S/T/J, IMP708R/S/T/J Absolute Maximum Ratings Electrical Characteristics Unless otherwise noted, specifications are over the operating temperature range and VCC supply voltages are 2.7V to 5.5V (IMP706P, IMP708R), 3.0V to 5.5V (IMP706/8S), 3.15V to 5.5V (IMP706/8T) and 4.1V to 5.5V (IMP706/8J). r e t e m a r a Pl o b m y Ss n o i t i d n o Cn i Mp y Tx a Ms t i n U e g a t l o V g n i t a r e p O e g n a R V C C C x 8 0 7 P M I , C x 6 0 7 P M I E x 8 0 7 P M I , E x 6 0 7 P M I 1 . 1 2 . 1 5 . 5 5 . 5 V t n e r r u C y l p p u S V C C V 6 . 3 < I C C V = R M , E x 6 0 7 P M I , C x 6 0 7 P M I C C g n i t a o l F I D W ,5 70 4 1 µA V = R M , E x 8 0 7 P M I , C x 8 0 7 P M I C C g n i t a o l F I D W ,0 50 4 1 t n e r r u C y l p p u S V C C V 5 . 5 < I C C V = R M , E x 6 0 7 P M I , C x 6 0 7 P M I C C g n i t a o l F I D W ,5 70 4 1 µA V = R M , E x 8 0 7 P M I , C x 8 0 7 P M I C C g n i t a o l F I D W ,0 50 4 1 d l o h s e r h T T E S E RV T R s e c i v e d R d n a P s e c i v e d S s e c i v e d T s e c i v e d J 5 5 . 2 5 8 . 2 0 0 . 3 9 8 . 3 3 6 . 2 3 9 . 2 8 0 . 3 0 0 . 4 0 7 . 2 0 0 . 3 5 1 . 3 0 1 . 4 V d l o h s e r h T T E S E R s i s e r e t s y H 0 4V m h t d i W e s l u P T E S E Rt S R V C C , ) s e c i v e d R / P , 8 / 6 0 7 P M I ( V 3 = V C C ) s e c i v e d T / S , 8 / 6 0 7 P M I ( V 3 . 3 = V C C ) s e c i v e d J , 8 / 6 0 7 P M I ( V 4 . 4 = 0 4 10 0 20 8 2s m V C C V 5 =0 0 2 h t d i W e s l u P R Mt R M V < V 5 . 4 C C V 5 . 5 <0 5 1s n V < V 6 . 3 C C ) s e c i v e d J 8 / 6 0 7 P M I ( V 5 . 4 < V ) X A M ( T S R V < C C ) s e c i v e d T / S / R / P 8 / 6 0 7 P M I ( V 6 . 3 < 0 0 5 y a l e D t u O T E S E R o t R Mt D M V < V 6 . 3 C C ) s e c i v e d J 8 / 6 0 7 P M I ( V 5 . 4 < V ) X A M ( T S R V < C C ) s e c i v e d T / S / R / P 8 / 6 0 7 P M I ( V 6 . 3 < 0 5 7s n V < V 5 . 4 C C V 5 . 5 <0 5 2 d l o h s e r h T t u p n I R MV H I V ) X A M ( T S R V < C C V 5 . 4 <V 7 . 0 C C V V L I V ) X A M ( T S R V < C C V 5 . 4 <6 . 0 V H I V < V 5 . 4 C C V 5 . 5 <0 . 2 V L I V < V 5 . 4 C C V 5 . 5 <8 . 0 r o t s i s e R p u - ll u P R MRP 0 10 20 4k Ω e g a t l o V t u p t u O T E S E R ) s e c i v e d J / T / S / R ll A ( V H O I E C R U O S 0 0 8 = µ V < V 5 . 4 , A C C V 5 . 5 <V C C V 5 . 1 – V V L O I K N I S V < V 5 . 4 , A m 2 . 3 = C C V 5 . 5 <4 . 0 V H O I E C R U O S 0 0 5 = µ V , A ) X A M ( T S R V < C C V 5 . 4 <V 8 . 0 C C V L O I K N I S V , A m 2 . 1 = ) X A M ( T S R V < C C V 5 . 4 <3 . 0 V L O I K N I S 0 5 = µ V , A C C ) s e c i v e d C x 8 0 7 P M I , C x 6 0 7 P M I ( V 1 . 1 =3 . 0 I K N I S 0 0 1 = µ V , A C C ) s e c i v e d E x 8 0 7 P M I , E x 6 0 7 P M I ( V 2 . 1 =3 . 0 |
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