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74AVC4T245PW Datasheet(PDF) 6 Page - NXP Semiconductors |
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74AVC4T245PW Datasheet(HTML) 6 Page - NXP Semiconductors |
6 / 25 page 74AVC4T245_1 © NXP B.V. 2009. All rights reserved. Product data sheet Rev. 01 — 20 July 2009 6 of 25 NXP Semiconductors 74AVC4T245 4-bit dual supply translating transceiver; 3-state 8. Recommended operating conditions [1] VCCO is the supply voltage associated with the output port. [2] VCCI is the supply voltage associated with the input port. 9. Static characteristics [1] VCCO is the supply voltage associated with the output port. [2] VCCI is the supply voltage associated with the data input port. [3] For I/O ports, the parameter IOZ includes the input leakage current. Table 5. Recommended operating conditions Symbol Parameter Conditions Min Max Unit VCC(A) supply voltage A 0.8 3.6 V VCC(B) supply voltage B 0.8 3.6 V VI input voltage 0 3.6 V VO output voltage Active mode [1] 0VCCO V Suspend or 3-state mode 0 3.6 V Tamb ambient temperature −40 +125 °C ∆t/∆V input transition rise and fall rate VCCI =0.8 V to 3.6 V [2] - 5 ns/V Table 6. Typical static characteristics at Tamb = 25 °C[1][2] At recommended operating conditions; voltages are referenced to GND (ground = 0 V). Symbol Parameter Conditions Min Typ Max Unit VOH HIGH-level output voltage VI = VIH or VIL IO = −1.5 mA; VCC(A) =VCC(B) = 0.8 V - 0.69 - V VOL LOW-level output voltage VI = VIH or VIL IO = 1.5 mA; VCC(A) =VCC(B) = 0.8 V - 0.07 - V II input leakage current nDIR, nOE input; VI = 0 V or 3.6 V; VCC(A) =VCC(B) = 0.8 V to 3.6 V - ±0.025 ±0.25 µA IOZ OFF-state output current A or B port; VO = 0 V or VCCO; VCC(A) =VCC(B) = 3.6 V [3] - ±0.5 ±2.5 µA suspend mode A port; VO =0V orVCCO; VCC(A) = 3.6 V; VCC(B) =0V [3] - ±0.5 ±2.5 µA suspend mode B port; VO =0V orVCCO; VCC(A) = 0 V; VCC(B) = 3.6 V [3] - ±0.5 ±2.5 µA IOFF power-off leakage current A port; VI or VO = 0 V to 3.6 V; VCC(A) =0V;VCC(B) = 0.8 V to 3.6 V - ±0.1 ±1 µA B port; VI or VO = 0 V to 3.6 V; VCC(B) =0V;VCC(A) = 0.8 V to 3.6 V - ±0.1 ±1 µA CI input capacitance nDIR, nOE input; VI = 0 V or 3.3 V; VCC(A) =VCC(B) = 3.3 V - 1.0 - pF CI/O input/output capacitance A and B port; VO = 3.3 V or 0 V; VCC(A) =VCC(B) = 3.3 V - 4.0 - pF |
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