• Part: HD74LV2G74A
  • Description: Single D-type Flip Flops
  • Manufacturer: Hitachi Semiconductor
  • Size: 160.68 KB
Download HD74LV2G74A Datasheet PDF
Hitachi Semiconductor
HD74LV2G74A
HD74LV2G74A is Single D-type Flip Flops manufactured by Hitachi Semiconductor.
Description The HD74LV2G74A has independent data, preset, clear, and clock inputs Q and Q outputs in a 8 pin package. The input data is transferred to the output at the rising edge of clock pulse CLK. Low voltage and high speed operation is suitable for the battery powered products (e.g., notebook puters), and the low power consumption extends the battery life. Features - The basic gate function is lined up as hitachi uni logic series. - Supplied on emboss taping for high speed automatic mounting. - Electrical characteristics equivalent to the HD74LV74A Supply voltage range : 1.65 to 5.5 V Operating temperature range : - 40 to +85°C - All inputs VIH (Max.) = 5.5 V (@VCC = 0 V to 5.5 V) All outputs VO (Max.) = 5.5 V (@VCC = 0 V) - Output current ±6 m A (@VCC = 3.0 V to 3.6 V), ±12 m A (@VCC = 4.5 V to 5.5 V) - All the logical input has hysteresis voltage for the slow transition. Outline and Article Indication .. - HD74LV2G74A Index band Lot No. Y M W L 7 4 SSOP- 8 Type No. Y : Year code (the last digit of year) M : Month code W : Week code Function Table Inputs PRE L H L H H H CLR H L L H H H CLK X X X ↑ ↑ ↓ D X X X H L X Outputs Q H L H H L Q0 - 1 Q L H H L H Q0 - 1 H : High level L : Low level X : Immaterial ↑ : Low to high transition ↓ : High to low transition Q0 : The level of Q immediately before the input conditions shown in the above table are determined. Note : 1. Q and Q will remain high as long as preset and clear are low, but Q and Q are unpredictable, if preset and clear go high simultaneously. Rev.3, Jul. 2001, page 2 of 12 Pin Arrangement .. (Top view) Rev.3, Jul. 2001, page 3 of 12 Absolute Maximum Ratings .. Item Supply voltage range Input voltage range - 1 - 1, 2 Symbol VCC VI VO IIK IOK IO ICC or IGND PT Tstg Ratings - 0.5 to 7.0 - 0.5 to 7.0 - 0.5 to VCC + 0.5 - 0.5 to...