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MC74LVXT4066DTR2 データシート(PDF) 4 Page - ON Semiconductor |
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MC74LVXT4066DTR2 データシート(HTML) 4 Page - ON Semiconductor |
4 / 12 page MC74LVXT4066 http://onsemi.com 4 DC ELECTRICAL CHARACTERISTICS Analog Section (Voltages Referenced to GND) Guaranteed Limit Symbol Parameter Test Conditions VCC V – 55 to 25 _C v 85_C v 125_C Unit Ron Maximum “ON” Resistance Vin = VIH VIS = VCC to GND IS v 2.0 mA (Figures 1, 2) 2.0† 3.0 4.5 5.5 — 40 25 20 — 45 28 25 — 50 35 30 W Vin = VIH VIS = VCC or GND (Endpoints) IS v 2.0 mA (Figures 1, 2) 2.0 3.0 4.5 5.5 — 30 25 20 — 35 28 25 — 40 35 30 DRon Maximum Difference in “ON” Resistance Between Any Two Channels in the Same Package Vin = VIH VIS = 1/2 (VCC − GND) IS v 2.0 mA 3.0 4.5 5.5 15 10 10 20 12 12 25 15 15 W Ioff Maximum Off−Channel Leakage Current, Any One Channel Vin = VIL VIO = VCC or GND Switch Off (Figure 3) 5.5 0.1 0.5 1.0 mA Ion Maximum On−Channel Leakage Current, Any One Channel Vin = VIH VIS = VCC or GND (Figure 4) 5.5 0.1 0.5 1.0 mA †At supply voltage (VCC) approaching 2 V the analog switch−on resistance becomes extremely non−linear. Therefore, for low−voltage operation, it is recommended that these devices only be used to control digital signals. AC ELECTRICAL CHARACTERISTICS (CL = 50 pF, ON/OFF Control Inputs: tr = tf = 6 ns) VCC Guaranteed Limit Symbol Parameter VCC V – 55 to 25 _C v 85_C v 125_C Unit tPLH, tPHL Maximum Propagation Delay, Analog Input to Analog Output (Figures 8 and 9) 2.0 3.0 4.5 5.5 4.0 3.0 1.0 1.0 6.0 5.0 2.0 2.0 8.0 6.0 2.0 2.0 ns tPLZ, tPHZ Maximum Propagation Delay, ON/OFF Control to Analog Output (Figures 10 and 11) 2.0 3.0 4.5 5.5 30 20 15 15 35 25 18 18 40 30 22 20 ns tPZL, tPZH Maximum Propagation Delay, ON/OFF Control to Analog Output (Figures 10 and 1 1) 2.0 3.0 4.5 5.5 20 12 8.0 8.0 25 14 10 10 30 15 12 12 ns C Maximum Capacitance ON/OFF Control Input — 10 10 10 pF Control Input = GND Analog I/O Feedthrough — — 35 1.0 35 1.0 35 1.0 Typical @ 25 °C, VCC = 5.0 V CPD Power Dissipation Capacitance (Per Switch) (Figure 13)* 15 pF * Used to determine the no−load dynamic power consumption: PD = CPD VCC2f + ICC VCC. |
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