MC74VHC4051 ONSEMI | Alldatasheet

Document overview

  • Manufacturer or author: Provided By ALLDATASHEET.COM(FREE DATASHEET DOWNLOAD SITE)
  • PDF pages: 16

Technical content

 Semiconductor Components Industries, LLC, 1999 March, 2000 – Rev. 3

1 Publication Order Number:

/C0077/C0067/C0055/C0052/C0086/C0072/C0067/C0052/C0048/C0053/C0049/C0044 /C0077/C0067/C0055/C0052/C0086/C0072/C0067/C0052/C0048/C0053/C0050/C0044 /C0077/C0067/C0055/C0052/C0086/C0072/C0067/C0052/C0048/C0053/C0051 /C0065/C0110/C0097/C0108/C0111/C0103 /C0077/C0117/C0108/C0116/C0105/C0112/C0108/C0101/C0120/C0101/C0114/C0115 /C0047 /C0068/C0101/C0109/C0117/C0108/C0116/C0105/C0112/C0108/C0101/C0120/C0101/C0114/C0115 High–Performance Silicon–Gate CMOS The MC74VHC4051, MC74VHC4052 and MC74VHC4053 utilize silicon–gate CMOS technology to achieve fast propagation delays, low ON resistances, and low OFF leakage currents. These analog multiplexers/demultiplexers control analog voltages that may vary across the complete power supply range (from VCC to VEE ). The VHC4051, VHC4052 and VHC4053 are identical in pinout to the high–speed HC4051A, HC4052A and HC4053A, and the metal–gate MC14051B, MC14052B and MC14053B. The Channel–Select inputs determine which one of the Analog Inputs/Outputs is to be connected, by means of an analog switch, to the Common Output/Input. When the Enable pin is HIGH, all analog switches are turned off. The Channel–Select and Enable inputs are compatible with standard CMOS outputs; with pullup resistors they are compatible with LSTTL outputs. These devices have been designed so that the ON resistance (Ron) is more linear over input voltage than Ron of metal–gate CMOS analog switches.

  • Fast Switching and Propagation Speeds
  • Low Crosstalk Between Switches
  • Diode Protection on All Inputs/Outputs
  • Analog Power Supply Range (VCC – VEE ) = 2.0 to 12.0 V
  • Digital (Control) Power Supply Range (VCC – GND) = 2.0 to 6.0 V
  • Improved Linearity and Lower ON Resistance Than Metal–Gate Counterparts
  • Low Noise
  • Chip Complexity: VHC4051 — 184 FETs or 46 Equivalent Gates VHC4052 — 168 FETs or 42 Equivalent Gates VHC4053 — 156 FETs or 39 Equivalent Gates SO–16 D SUFFIX CASE 751B http://onsemi.com TSSOP–16 DT SUFFIX CASE 948F MARKING DIAGRAMS VHC405x AWLYWW A = Assembly Location WL = Wafer Lot YY = Year WW = Work Week VHC 405x ALYW See detailed ordering and shipping information in the package dimensions section on page 14 of this data sheet.

ORDERING INFORMATION

MC74VHC4051, MC74VHC4052, MC74VHC4053 http://onsemi.com LOGIC DIAGRAM MC74VHC4051 Single–Pole, 8–Position Plus Common Off X0 13 X1 14 X2 15 X3 12 X4 1 X5 5 X6 2 X7 4 A 11 B 10 C 9 ENABLE 6 MULTIPLEXER/ DEMULTIPLEXER ANALOG INPUTS/ CHANNEL INPUTS PIN 16 = VCC PIN 7 = VEE PIN 8 = GND COMMON OUTPUT/ INPUT 1516 14 13 12 11 10 21 34567 VCC X2 X1 X0 X3 A B C Pinout: MC74VHC4051 (Top View) OUTPUTS SELECT L L L L H H H H X L L H H L L H H X L H L H L H L H X FUNCTION TABLE – MC74VHC4051 Control Inputs ON ChannelsEnable Select CBA NONE L L L L L L L L H X = Don’t Care LOGIC DIAGRAM MC74VHC4052 Double–Pole, 4–Position Plus Common Off X0 12 X1 14 X2 15 X3 11 Y0 1 Y1 5 Y2 2 Y3 4 A 10 B 9 ENABLE 6 X SWITCH Y SWITCH X13 ANALOG INPUTS/OUTPUTS CHANNEL-SELECT INPUTS PIN 16 = VCC PIN 7 = VEE PIN 8 = GND COMMON OUTPUTS/INPUTS L L H H X L H L H X FUNCTION TABLE – MC74VHC4052 Control Inputs ON ChannelsEnable Select BA L L L L H X = Don’t Care Pinout: MC74VHC4052 (Top View) 1516 14 13 12 11 10 21 34567 VCC X2 X1 X X0 X3 A B Y0 Y2 Y Y3 Y1 Enable V EE GND NONE

MC74VHC4051, MC74VHC4052, MC74VHC4053 http://onsemi.com LOGIC DIAGRAM MC74VHC4053 Triple Single–Pole, Double–Position Plus Common Off X0 12 X1 13 A 11 B 10 C 9 ENABLE 6 X SWITCH Y SWITCH X14 ANALOG INPUTS/OUTPUTS CHANNEL-SELECT INPUTS PIN 16 = VCC PIN 7 = VEE PIN 8 = GND COMMON OUTPUTS/INPUTS L L L L H H H H X L L H H L L H H X L H L H L H L H X FUNCTION TABLE – MC74VHC4053 Control Inputs ON ChannelsEnable Select CBA L L L L L L L L H X = Don’t Care Pinout: MC74VHC4053 (Top View) 1516 14 13 12 11 10 21 34567 VCC Y X X1 X0 A B C Y1 Y0 Z1 Z Z0 Enable V EE GND NONE Y0 2 Y1 1 Y15 Z0 5 Z1 3 Z4Z SWITCH NOTE: This device allows independent control of each switch. Channel–Select Input A controls the X–Switch, Input B controls the Y–Switch and Input C controls the Z–Switch

MC74VHC4051, MC74VHC4052, MC74VHC4053 http://onsemi.com ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ MAXIMUM RATINGS* ÎÎÎÎ ÎÎÎÎ Symbol ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Parameter ÎÎÎÎÎ ÎÎÎÎÎ Value ÎÎÎ ÎÎÎ Unit ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ VCC ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Positive DC Supply Voltage (Referenced to GND) (Referenced to VEE ) ÎÎÎÎÎ Î ÎÎÎ Î ÎÎÎÎÎ – 0.5 to + 7.0 – 0.5 to + 14.0 ÎÎÎ Î Î Î ÎÎÎ V ÎÎÎÎ ÎÎÎÎ VEE ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Negative DC Supply Voltage (Referenced to GND) ÎÎÎÎÎ ÎÎÎÎÎ – 7.0 to + 5.0 ÎÎÎ ÎÎÎ V ÎÎÎÎ ÎÎÎÎ VIS ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Analog Input Voltage ÎÎÎÎÎ ÎÎÎÎÎ VEE – 0.5 to VCC + 0.5 ÎÎÎ ÎÎÎ V ÎÎÎÎ ÎÎÎÎ Vin ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Digital Input Voltage (Referenced to GND) ÎÎÎÎÎ ÎÎÎÎÎ – 0.5 to VCC + 0.5 ÎÎÎ ÎÎÎ V ÎÎÎÎ ÎÎÎÎ I ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ DC Current, Into or Out of Any Pin ÎÎÎÎÎ ÎÎÎÎÎ ± 25 ÎÎÎ ÎÎÎ mA ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ PD ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Power Dissipation in Still Air, SOIC Package† ÎÎÎÎÎ Î ÎÎÎ Î ÎÎÎÎÎ 500 450 ÎÎÎ Î Î Î ÎÎÎ mW ÎÎÎÎ ÎÎÎÎ Tstg ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Storage Temperature Range ÎÎÎÎÎ ÎÎÎÎÎ – 65 to + 150 ÎÎÎ ÎÎÎ /C0095C ÎÎÎÎ ÎÎÎÎ TL ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Lead Temperature, 1 mm from Case for 10 Seconds ÎÎÎÎÎ ÎÎÎÎÎ 260 ÎÎÎ ÎÎÎ /C0095C *Maximum Ratings are those values beyond which damage to the device may occur. Functional operation should be restricted to the Recommended Operating Conditions. †Derating — SOIC Package: – 7 mW//C0095C from 65/C0095 to 125/C0095C RECOMMENDED OPERATING CONDITIONS ÎÎÎÎ ÎÎÎÎ Symbol ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Parameter ÎÎÎ ÎÎÎ Min ÎÎ ÎÎ Max ÎÎÎ ÎÎÎ Unit ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ VCC ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Positive DC Supply Voltage (Referenced to GND) (Referenced to VEE ) ÎÎÎ Î Î Î ÎÎÎ 2.0 2.0 ÎÎ ÎÎ ÎÎ 6.0 12.0 ÎÎÎ Î Î Î ÎÎÎ V ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ VEE ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Negative DC Supply Voltage, Output (Referenced to GND) ÎÎÎ Î Î Î ÎÎÎ – 6.0 ÎÎ ÎÎ ÎÎ GND ÎÎÎ Î Î Î ÎÎÎ V ÎÎÎÎ ÎÎÎÎ VIS ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Analog Input Voltage ÎÎÎ ÎÎÎ VEE ÎÎ ÎÎ VCC ÎÎÎ ÎÎÎ V ÎÎÎÎ ÎÎÎÎ Vin ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Digital Input Voltage (Referenced to GND) ÎÎÎ ÎÎÎ GND ÎÎ ÎÎ VCC ÎÎÎ ÎÎÎ V ÎÎÎÎ ÎÎÎÎ VIO* ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Static or Dynamic Voltage Across Switch ÎÎÎ ÎÎÎ ÎÎ ÎÎ 1.2 ÎÎÎ ÎÎÎ V ÎÎÎÎ ÎÎÎÎ TA ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Operating Temperature Range, All Package Types ÎÎÎ ÎÎÎ – 55 ÎÎ ÎÎ + 125 ÎÎÎ ÎÎÎ /C0095C ÎÎÎÎ Î ÎÎ Î Î ÎÎ Î ÎÎÎÎ tr, tf ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎÎÎÎÎ Î Î ÎÎÎÎÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ Input Rise/Fall Time V CC = 2.0 V (Channel Select or Enable Inputs) VCC = 3.0 V VCC = 4.5 V VCC = 6.0 V ÎÎÎ Î Î Î Î Î Î ÎÎÎ ÎÎ ÎÎ ÎÎ ÎÎ 1000 800 500 400 ÎÎÎ Î Î Î Î Î Î ÎÎÎ ns *For voltage drops across switch greater than 1.2V (switch on), excessive VCC current may be drawn; i.e., the current out of the switch may contain both VCC and switch input components. The reliability of the device will be unaffected unless the Maximum Ratings are exceeded. This device contains protection circuitry to guard against damage due to high static voltages or electric fields. However, precautions must be taken to avoid applications of any voltage higher than maximum rated voltages to this high–impedance cir- cuit. For proper operation, Vin and Vout should be constrained to the range GND /C0118 (Vin or Vout) /C0118 VCC . Unused inputs must always be tied to an appropriate logic voltage level (e.g., either GND or VCC ). Unused outputs must be left open.

MC74VHC4051, MC74VHC4052, MC74VHC4053 http://onsemi.com DC CHARACTERISTICS — Digital Section (Voltages Referenced to GND) VEE = GND, Except Where Noted VCC Guaranteed Limit Symbol Parameter Condition VCC V –55 to 25°C ≤85°C ≤125°C Unit VIH Minimum High–Level Input Voltage, Channel–Select or Enable Inputs R on = Per Spec 2.0 3.0 4.5 6.0 1.50 2.10 3.15 4.20 1.50 2.10 3.15 4.20 1.50 2.10 3.15 4.20 V VIL Maximum Low–Level Input Voltage, Channel–Select or Enable Inputs R on = Per Spec 2.0 3.0 4.5 6.0 0.5 0.9 1.35 1.8 0.5 0.9 1.35 1.8 0.5 0.9 1.35 1.8 V Iin Maximum Input Leakage Current, Channel–Select or Enable Inputs Vin = VCC or GND, VEE = – 6.0 V ICC Maximum Quiescent Supply Current (per Package) Channel Select, Enable and VIS = VCC or GND; V EE = GND VIO = 0 V V EE = – 6.0 6.0 6.0 µA DC ELECTRICAL CHARACTERISTICS Analog Section ÎÎÎÎ ÎÎÎÎ ÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎ ÎÎÎ ÎÎÎ ÎÎÎ ÎÎÎ ÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎÎÎ Guaranteed Limit ÎÎ ÎÎ ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ Symbol ÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎ Parameter ÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎ Test Conditions ÎÎÎ Î Î Î ÎÎÎ VCC V ÎÎÎ Î Î Î ÎÎÎ VEE V ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ – 55 to 25/C0095C ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ /C0118 85/C0095C ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ /C0118 125/C0095C ÎÎ ÎÎ ÎÎ Unit ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ R on ÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎ Maximum “ON” Resistance ÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎ Vin = VIL or VIH VIS = VCC to VEE IS /C0118 2.0 mA (Figures 1, 2) ÎÎÎ Î Î Î ÎÎÎ 3.0 4.5 4.5 6.0 ÎÎÎ Î Î Î ÎÎÎ 0.0 0.0 – 4.5 – 6.0 ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ 200 160 120 100 ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ 240 200 150 125 ÎÎÎÎ Î ÎÎ Î ÎÎÎÎ 320 280 170 140 ÎÎ ÎÎ ÎÎ Ω ÎÎÎÎ Î ÎÎ Î Î ÎÎ Î ÎÎÎÎ ÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎ Î Î ÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎ ÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎ Î Î ÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎ Vin = VIL or VIH VIS = VCC or VEE (Endpoints) IS /C0118 2.0 mA (Figures 1, 2) ÎÎÎ Î Î Î Î Î Î ÎÎÎ 3.0 4.5 4.5 6.0 ÎÎÎ Î Î Î Î Î Î ÎÎÎ 0.0 0.0 – 4.5 – 6.0 ÎÎÎÎ Î ÎÎ Î Î ÎÎ Î ÎÎÎÎ 150 110 ÎÎÎÎ Î ÎÎ Î Î ÎÎ Î ÎÎÎÎ 180 140 120 100 ÎÎÎÎ Î ÎÎ Î Î ÎÎ Î ÎÎÎÎ 230 190 140 115 ÎÎ ÎÎ ÎÎ ÎÎ ÎÎÎÎ Î ÎÎ Î Î ÎÎ Î ÎÎÎÎ ΔR on ÎÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎ Î Î ÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎÎ Maximum Difference in “ON” Resistance Between Any Two Channels in the Same Package ÎÎÎÎÎÎÎÎ Î ÎÎÎÎÎÎ Î Î ÎÎÎÎÎÎ Î ÎÎÎÎÎÎÎÎ Vin = VIL or VIH VIS = 1/2 (VCC – VEE ) IS /C0118 2.0 mA ÎÎÎ Î Î Î Î Î Î ÎÎÎ 3.0 4.5 4.5 6.0 ÎÎÎ Î Î Î Î Î Î ÎÎÎ 0.0 0.0 – 4.5 – 6.0 ÎÎÎÎ Î ÎÎ Î Î ÎÎ Î ÎÎÎÎ ÎÎÎÎ Î ÎÎ Î Î ÎÎ Î ÎÎÎÎ ÎÎÎÎ Î ÎÎ Î Î ÎÎ Î ÎÎÎÎ ÎÎ ÎÎ ÎÎ ÎÎ Ω Ioff Maximum Off–Channel Leakage Current, Any One Channel Vin = VIL or VIH; VIO = VCC – VEE ; Switch Off (Figure 3) µA Maximum Off–Channel VHC4051 Leakage Current, VHC4052 Common Channel VHC4053 Vin = VIL or VIH; VIO = VCC – VEE ; Switch Off (Figure 4) 6.0 6.0 6.0 – 6.0 – 6.0 – 6.0 0.2 0.1 0.1 2.0 1.0 1.0 4.0 2.0 2.0 Ion Maximum On–Channel VHC4051 Leakage Current, VHC4052 Channel–to–Channel VHC4053 Vin = VIL or VIH; Switch–to–Switch = VCC – VEE ; (Figure 5) 6.0 6.0 6.0 – 6.0 – 6.0 – 6.0 0.2 0.1 0.1 2.0 1.0 1.0 4.0 2.0 2.0 µA

MC74VHC4051, MC74VHC4052, MC74VHC4053 http://onsemi.com AC CHARACTERISTICS (CL = 50 pF, Input tr = tf = 6 ns) VCC Guaranteed Limit Symbol Parameter VCC V –55 to 25°C ≤85°C ≤125°C Unit tPLH , tPHL Maximum Propagation Delay, Channel–Select to Analog Output (Figure 9) 2.0 3.0 4.5 6.0 270 320 110 350 125 ns tPLH , tPHL Maximum Propagation Delay, Analog Input to Analog Output (Figure 10) 2.0 3.0 4.5 6.0 ns tPLZ , tPHZ Maximum Propagation Delay, Enable to Analog Output (Figure 11) 2.0 3.0 4.5 6.0 160 200 220 110 ns tPZL , tPZH Maximum Propagation Delay, Enable to Analog Output (Figure 11) 2.0 3.0 4.5 6.0 245 115 315 145 345 155 ns C in Maximum Input Capacitance, Channel–Select or Enable Inputs 10 10 10 pF C I/O Maximum Capacitance Analog I/O 35 35 35 pF (All Switches Off) Common O/I: VHC4051 VHC4052 VHC4053 130 130 130 Feedthrough 1.0 1.0 1.0 Typical @ 25°C, VCC = 5.0 V, VEE = 0 V C PD Power Dissipation Capacitance (Figure 13)* VHC4051 VHC4052 VHC4053 pF * Used to determine the no–load dynamic power consumption: PD = CPD VCC 2f + ICC VCC .

MC74VHC4051, MC74VHC4052, MC74VHC4053 http://onsemi.com ADDITIONAL APPLICATION CHARACTERISTICS (GND = 0 V) VCC VEE Limit* Symbol Parameter Condition VCC V VEE V 25°C Unit BW Maximum On–Channel Bandwidth Mi i F R fin = 1MHz Sine Wave; Adjust fin Voltage to Obt i 0dB t V I f ‘51 ‘52 ‘53 MHz or Minimum Frequency R esponse (Figure 6) Ob tain 0dBm at VOS ; Increase fin Frequency Until dB Meter Reads –3dB; R L = 50Ω , CL = 10pF 2.25 4.50 6.00 –2.25 –4.50 –6.00 120 120 120 — Off–Channel Feedthrough Isolation (Figure 7) fin = Sine Wave; Adjust fin Voltage to Obtain 0dBm at VIS fin = 10kHz, RL = 600Ω , CL = 50pF 2.25 4.50 6.00 –2.25 –4.50 –6.00 –50 –50 –50 dB fin = 1.0MHz, RL = 50Ω , CL = 10pF 2.25 4.50 6.00 –2.25 –4.50 –6.00 –40 –40 –40 — Feedthrough Noise. Channel–Select Input to Common I/O (Figure 8) Vin ≤ 1MHz Square Wave (tr = tf = 6ns); Adjust RL at Setup so that IS = 0A; Enable = GND R L = 600Ω , CL = 50pF 2.25 4.50 6.00 –2.25 –4.50 –6.00 105 135 mV PP R L = 10kΩ , CL = 10pF 2.25 4.50 6.00 –2.25 –4.50 –6.00 145 190 — Crosstalk Between Any Two Switches (Figure 12) (Test does not apply to VHC4051) fin = Sine Wave; Adjust fin Voltage to Obtain 0dBm at VIS fin = 10kHz, RL = 600Ω , CL = 50pF 2.25 4.50 6.00 –2.25 –4.50 –6.00 –50 –50 –50 dB fin = 1.0MHz, RL = 50Ω , CL = 10pF 2.25 4.50 6.00 –2.25 –4.50 –6.00 –60 –60 –60 THD Total Harmonic Distortion (Figure 14) fin = 1kHz, RL = 10kΩ , CL = 50pF THD = THD measured – THDsource VIS = 4.0VPP sine wave VIS = 8.0VPP sine wave VIS = 11.0VPP sine wave 2.25 4.50 6.00 –2.25 –4.50 –6.00 0.10 0.08 0.05 *Limits not tested. Determined by design and verified by qualification. Figure 1a. Typical On Resistance, VCC – VEE = 2.0 V Figure 1b. Typical On Resistance, VCC – VEE = 3.0 V 250 200 150 100 VIS, INPUT VOLTAGE (VOLTS), REFERENCED TO VEE Ron , ON RESISTANCE (OHMS) 100 VIS, INPUT VOLTAGE (VOLTS), REFERENCED TO VEE Ron , ON RESISTANCE (OHMS) 25°C –5 5°C 125°C 25°C –5 5°C 125°C 2.00 300 180 160 140 120 0 2.5 2.75 3.0

MC74VHC4051, MC74VHC4052, MC74VHC4053 http://onsemi.com ORDERING & SHIPPING INFORMATION Device Package Shipping MC74VHC4051D SOIC–16 48 Units / Rail MC74VHC4051DR2 SOIC–16 2500 Units / Tape & Reel MC74VHC4051DT TSSOP–16 96 Units / Rail MC74VHC4051DTR2 TSSOP–16 2500 Units / Tape & Reel MC74VHC4052D SOIC–16 48 Units / Rail MC74VHC4052DR2 SOIC–16 2500 Units / Tape & Reel MC74VHC4052DT TSSOP–16 96 Units / Rail MC74VHC4052DTR2 TSSOP–16 2500 Units / Tape & Reel MC74VHC4053D SOIC–16 48 Units / Rail MC74VHC4053DR2 SOIC–16 2500 Units / Tape & Reel MC74VHC4053DT TSSOP–16 96 Units / Rail MC74VHC4053DTR2 TSSOP–16 2500 Units / Tape & Reel

MC74VHC4051, MC74VHC4052, MC74VHC4053 http://onsemi.com PACKAGE DIMENSIONS 0.25 (0.010) T B AM S S MIN MIN MAX MAX MILLIMETERS INCHES DIM A B C D F G J K M P R 9.80 3.80 1.35 0.35 0.40 0.19 0.10 5.80 0.25 10.00 4.00 1.75 0.49 1.25 0.25 0.25 6.20 0.50 0.386 0.150 0.054 0.014 0.016 0.008 0.004 0.229 0.010 0.393 0.157 0.068 0.019 0.049 0.009 0.009 0.244 0.019 1.27 BSC 0.050 BSC NOTES: 1. DIMENSIONING AND TOLERANCING PER ANSI Y14.5M, 1982. 2. CONTROLLING DIMENSION: MILLIMETER. 3. DIMENSIONS A AND B DO NOT INCLUDE MOLD PROTRUSION. 4. MAXIMUM MOLD PROTRUSION 0.15 (0.006) PER SIDE. 5. DIMENSION D DOES NOT INCLUDE DAMBAR PROTRUSION. ALLOWABLE DAMBAR PROTRUSION SHALL BE 0.127 (0.005) TOTAL IN EXCESS OF THE D DIMENSION AT MAXIMUM MATERIAL CONDITION. 1 8 916 D 16 PL K C G –SEATING PLANE R X 45° M J F P 8 PL 0.25 (0.010) BM M SOIC–16 D SUFFIX CASE 751B–05 ISSUE J TSSOP–16 DT SUFFIX CASE 948F–01 ISSUE O ÇÇÇ ÇÇÇ ÇÇÇ DIM MIN MAX MIN MAX INCHESMILLIMETERS A 4.90 5.10 0.193 0.200 B 4.30 4.50 0.169 0.177 D 0.05 0.15 0.002 0.006 F 0.50 0.75 0.020 0.030 G 0.65 BSC 0.026 BSC H 0.18 0.28 0.007 0.011 J 0.09 0.20 0.004 0.008 J1 0.09 0.16 0.004 0.006 K 0.19 0.30 0.007 0.012 K1 0.19 0.25 0.007 0.010 L 6.40 BSC 0.252 BSC M 0 8 0 8 NOTES: 1. DIMENSIONING AND TOLERANCING PER ANSI Y14.5M, 1982. 2. CONTROLLING DIMENSION: MILLIMETER. 3. DIMENSION A DOES NOT INCLUDE MOLD FLASH. PROTRUSIONS OR GATE BURRS. MOLD FLASH OR GATE BURRS SHALL NOT EXCEED 0.15 (0.006) PER SIDE. 4. DIMENSION B DOES NOT INCLUDE INTERLEAD FLASH OR PROTRUSION. INTERLEAD FLASH OR PROTRUSION SHALL NOT EXCEED 0.25 (0.010) PER SIDE. 5. DIMENSION K DOES NOT INCLUDE DAMBAR PROTRUSION. ALLOWABLE DAMBAR PROTRUSION SHALL BE 0.08 (0.003) TOTAL IN EXCESS OF THE K DIMENSION AT MAXIMUM MATERIAL CONDITION. 6. TERMINAL NUMBERS ARE SHOWN FOR REFERENCE ONLY. 7. DIMENSION A AND B ARE TO BE DETERMINED AT DATUM PLANE –W–. /C0095/C0095/C0095/C0095 SECTION N–N SEATING PLANE IDENT. PIN 1 1 8 16 9 DETAIL E J B C D A K H G ÉÉÉ ÉÉÉ DETAIL E F M L 2X L/2 –U– SU0.15 (0.006) T SU0.15 (0.006) T SUM0.10 (0.004) V ST 0.10 (0.004) –T– –V– –W– 0.25 (0.010) 16X REFK N N

MC74VHC4051, MC74VHC4052, MC74VHC4053 http://onsemi.com ON Semiconductor and are trademarks of Semiconductor Components Industries, LLC (SCILLC). SCILLC reserves the right to make changes without further notice to any products herein. SCILLC makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does SCILLC assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages. “Typical” parameters which may be provided in SCILLC data sheets and/or specifications can and do vary in different applications and actual performance may vary over time. All operating parameters, including “Typicals” must be validated for each customer application by customer’s technical experts. SCILLC does not convey any license under its patent rights nor the rights of others. SCILLC products are not designed, intended, or authorized for use as components in systems intended for surgical implant into the body, or other applications intended to support or sustain life, or for any other application in which the failure of the SCILLC product could create a situation where personal injury or death may occur. Should Buyer purchase or use SCILLC products for any such unintended or unauthorized application, Buyer shall indemnify and hold SCILLC and its officers, employees, subsidiaries, affiliates, and distributors harmless against all claims, costs, damages, and expenses, and reasonable attorney fees arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized use, even if such claim alleges that SCILLC was negligent regarding the design or manufacture of the part. SCILLC is an Equal Opportunity/Affirmative Action Employer. PUBLICATION ORDERING INFORMATION CENTRAL/SOUTH AMERICA: Spanish Phone: 303–308–7143 (Mon–Fri 8:00am to 5:00pm MST) Email: ONlit–spanish@hibbertco.com ASIA/PACIFIC: LDC for ON Semiconductor – Asia Support Phone : 303–675–2121 (Tue–Fri 9:00am to 1:00pm, Hong Kong Time) Toll Free from Hong Kong & Singapore: 001–800–4422–3781 Email: ONlit–asia@hibbertco.com JAPAN : ON Semiconductor, Japan Customer Focus Center 4–32–1 Nishi–Gotanda, Shinagawa–ku, Tokyo, Japan 141–8549 Phone : 81–3–5740–2745 Email: r14525@onsemi.com ON Semiconductor Website: http://onsemi.com For additional information, please contact your local Sales Representative. MC74VHC4051/D NORTH AMERICA Literature Fulfillment: Literature Distribution Center for ON Semiconductor P.O. Box 5163, Denver, Colorado 80217 USA Phone : 303–675–2175 or 800–344–3860 Toll Free USA/Canada Fax: 303–675–2176 or 800–344–3867 Toll Free USA/Canada Email: ONlit@hibbertco.com Fax Response Line: 303–675–2167 or 800–344–3810 Toll Free USA/Canada N. American Technical Support: 800–282–9855 Toll Free USA/Canada EUROPE: LDC for ON Semiconductor – European Support German Phone : (+1) 303–308–7140 (M–F 1:00pm to 5:00pm Munich Time) Email: ONlit–german@hibbertco.com French Phone : (+1) 303–308–7141 (M–F 1:00pm to 5:00pm Toulouse Time) Email: ONlit–french@hibbertco.com English Phone: (+1) 303–308–7142 (M–F 12:00pm to 5:00pm UK Time) Email: ONlit@hibbertco.com EUROPEAN TOLL–FREE ACCESS*: 00–800–4422–3781 *Available from Germany, France, Italy, England, Ireland