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IMP706PESA Fiches technique(PDF) 3 Page - A1 PROs co., Ltd. |
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IMP706PESA Fiches technique(HTML) 3 Page - A1 PROs co., Ltd. |
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3 / 9 page ![]() © 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 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. 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 it i d n o Cn i Mp y Tx a Ms ti 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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