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MM74HC4066MX

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MM74HC4066MX

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Part Number MM74HC4066MX
Manufacturer Fairchild/ON Semiconductor
Description IC SWITCH 1X1 14SOIC
Datasheet MM74HC4066MX Datasheet
Package 14-SOIC (0.154", 3.90mm Width)
In Stock 4,758 piece(s)
Unit Price Request a Quote
Lead Time Can Ship Immediately
Estimated Delivery Time Jun 8 - Jun 13 (Choose Expedited Shipping)
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Part Number # MM74HC4066MX (Interface - Analog Switches, Multiplexers, Demultiplexers) is manufactured by Fairchild/ON Semiconductor and distributed by Heisener. Being one of the leading electronics distributors, we carry many kinds of electronic components from some of the world’s top class manufacturers. Their quality is guaranteed by its stringent quality control to meet all required standards.

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MM74HC4066MX Specifications

ManufacturerFairchild/ON Semiconductor
CategoryIntegrated Circuits (ICs) - Interface - Analog Switches, Multiplexers, Demultiplexers
Datasheet MM74HC4066MXDatasheet
Package14-SOIC (0.154", 3.90mm Width)
Series-
Switch CircuitSPST - NO
Multiplexer/Demultiplexer Circuit1:1
Number of Circuits4
On-State Resistance (Max)70 Ohm
Channel-to-Channel Matching (ΔRon)5 Ohm
Voltage - Supply, Single (V+)2 V ~ 12 V
Voltage - Supply, Dual (V±)-
Switch Time (Ton, Toff) (Max)10ns, 30ns
-3db Bandwidth100MHz
Charge Injection-
Channel Capacitance (CS(off), CD(off))-
Current - Leakage (IS(off)) (Max)20nA
Crosstalk-50dB @ 1MHz
Operating Temperature-40°C ~ 85°C (TA)
Package / Case14-SOIC (0.154", 3.90mm Width)
Supplier Device Package14-SOIC

MM74HC4066MX Datasheet

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© 2005 Fairchild Semiconductor Corporation DS005355 www.fairchildsemi.com August 1984 Revised January 2005 M M 7 4 H C 4 0 6 6 Q u a d A n a lo g S w itc h MM74HC4066 Quad Analog Switch General Description The MM74HC4066 devices are digitally controlled analog switches utilizing advanced silicon-gate CMOS technology. These switches have low “ON” resistance and low “OFF” leakages. They are bidirectional switches, thus any analog input may be used as an output and visa-versa. Also the MM74HC4066 switches contain linearization circuitry which lowers the “ON” resistance and increases switch lin- earity. The MM74HC4066 devices allow control of up to 12V (peak) analog signals with digital control signals of the same range. Each switch has its own control input which disables each switch when LOW. All analog inputs and out- puts and digital inputs are protected from electrostatic damage by diodes to VCC and ground. Features ■Typical switch enable time: 15 ns ■Wide analog input voltage range: 0–12V ■Low “ON” resistance: 30 typ. (MM74HC4066) ■Low quiescent current: 80 µ A maximum (74HC) ■Matched switch characteristics ■ Individual switch controls Ordering Code: Devices also available in Tape and Reel. Specify by appending the suffix letter “X” to the ordering code. Pb-Free package per JEDEC J-STD-020B. Schematic Diagram Truth Table Connection Diagram Top View Order Number Package Package Description Number MM74HC4066M M14A 14-Lead Small Outline Integrated Circuit (SOIC), JEDEC MS-012, 0.150" Narrow MM74HC4066MX_NL M14A Pb-Free 14-Lead Small Outline Integrated Circuit (SOIC), JEDEC MS-012, 0.150" Narrow MM74HC4066SJ M14D Pb-Free 14-Lead Small Outline Package (SOP), EIAJ TYPE II, 5.3mm Wide MM74HC4066MTC MTC14 14-Lead Thin Shrink Small Outline Package (TSSOP), JEDEC MO-153, 4.4mm Wide MM74HC4066N N14A 14-Lead Plastic Dual-In-Line Package (PDIP), JEDEC MS-001, 0.300" Wide Input Switch CTL I/O–O/I L “OFF” H “ON”

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www.fairchildsemi.com 2 M M 7 4 H C 4 0 6 6 Absolute Maximum Ratings(Note 1) (Note 2) Recommended Operating Conditions Note 1: Absolute Maximum Ratings are those values beyond which dam- age to the device may occur. Note 2: Unless otherwise specified all voltages are referenced to ground. Note 3: Power Dissipation temperature derating — plastic “N” package: − 12 mW/° C from 65° C to 85° C. DC Electrical Characteristics (Note 4) Note 4: For a power supply of 5V ± 10% the worst case on resistance (RON) occurs for HC at 4.5V. Thus the 4.5V values should be used when designing with this supply. Worst case VIH and VIL occur at VCC = 5.5V and 4.5V respectively. (The VIH value at 5.5V is 3.85V.) The worst case leakage current occurs for CMOS at the higher voltage and so the 5.5V values should be used. Note 5: At supply voltages (VCC–GND) approaching 2V the analog switch on resistance becomes extremely non-linear. Therefore it is recommended that these devices be used to transmit digital only when using these supply voltages. Supply Voltage (VCC) − 0.5 to + 15V DC Control Input Voltage (VIN) − 1.5 to VCC + 1.5V DC Switch I/O Voltage (VIO) VEE− 0.5 to VCC + 0.5V Clamp Diode Current (IIK, IOK) ± 20 mA DC Output Current, per pin (IOUT) ± 25 mA DC VCC or GND Current, per pin (ICC) ± 50 mA Storage Temperature Range (TSTG) − 65° C to + 150° C Power Dissipation (PD) (Note 3) 600 mW S.O. Package only 500 mW Lead Temperature (TL) (Soldering 10 seconds) 260° C Min Max Units Supply Voltage (VCC) 2 12 V DC Input or Output Voltage (VIN, VOUT) 0 VCC V Operating Temperature Range (TA) − 40 + 85 ° C Input Rise or Fall Times (tr, tf) VCC = 2.0V 1000 ns VCC = 4.5V 500 ns VCC = 9.0V 400 ns Symbol Parameter Conditions VCC TA = 25° C TA = − 40 to 85° C TA = − 55 to 125° C Units Typ Guaranteed Limits VIH Minimum HIGH Level 2.0V 1.5 1.5 1.5 V Input Voltage 4.5V 3.15 3.15 3.15 V 9.0V 6.3 5.3 6.3 V 12.0V 8.4 8.4 8.4 V VIL Maximum LOW Level 2.0V 0.5 0.5 0.5 V Input Voltage 4.5V 1.35 1.35 1.35 V 9.0V 2.7 2.7 2.7 V 12.0V 3.6 3.6 3.6 V RON Maximum “ON” Resistance VCTL = VIH, IS = 2.0 mA 4.5V 100 170 200 220 Ω (Note 5) VIS = VCC to GND 9.0V 50 85 105 110 Ω (Figure 1) 12.0 30 70 85 90 Ω 2.0V 120 180 215 240 Ω VCTL = VIH, IS = 2.0 mA 4.5V 50 80 100 120 Ω VIS = VCCor GND 9.0V 35 60 75 80 Ω (Figure 1) 12.0V 20 40 60 70 Ω RON Maximum “ON” Resistance VCTL = VIH 4.5V 10 15 20 20 Ω Matching VIS = VCC to GND 9.0V 5 10 15 15 Ω 12.0V 5 10 15 15 Ω IIN Maximum Control VIN = VCC or GND ± 0.1 ± 1.0 ± 1.0 µ A Input Current VCC = 2− 6V IIZ Maximum Switch “OFF” VOS = VCC or GND 6.0V 10 ± 60 ± 600 ± 600 nA Leakage Current VIS = GND or VCC 9.0V 15 ± 80 ± 800 ± 800 nA VCTL = VIL (Figure 3) 12.0V 20 ± 100 ± 1000 ± 1000 nA IIZ Maximum Switch “ON” VIS = VCC to GND 6.0V 10 ± 40 ± 150 ± 150 nA Leakage Current VCTL = VIH 9.0V 15 ± 50 ± 200 ± 200 nA VOS = OPEN (Figure 2) 12.0V 20 ± 60 ± 300 ± 300 nA ICC Maximum Quiescent VIN = VCC or GND 6.0V 2.0 20 40 µ A Supply Current IOUT = 0 µ A 9.0V 4.0 40 80 µ A 12.0V 8.0 80 160 µ A

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3 www.fairchildsemi.com M M 7 4 H C 4 0 6 6 AC Electrical Characteristics VCC = 2.0V− 6.0V VEE = 0V− 12V, CL = 50 pF (unless otherwise specified) Note 6: Adjust 0 dBm for F = 1 kHz (Null RL/RON Attenuation). Note 7: VIS is centered at VCC/2. Note 8: Adjust input for 0 dBm. Symbol Parameter Conditions VCC TA = 25° C TA = − 40 to 85° C TA = − 55 to 125° C Units Typ Guaranteed Limits tPHL, tPLH Maximum Propagation 2.0V 25 50 30 75 ns Delay Switch In to Out 4.5V 5 10 13 15 ns 9.0V 4 8 10 12 ns 12.0V 3 7 11 13 ns tPZL, tPZH Maximum Switch Turn RL = 1 kΩ 2.0V 30 100 125 150 ns “ON” Delay 4.5V 12 20 25 30 ns 9.0V 6 12 15 18 ns 12.0V 5 10 13 15 ns tPHZ, tPLZ Maximum Switch Turn RL = 1 kΩ 2.0V 60 168 210 252 ns “OFF” Delay 4.5V 25 36 45 54 ns 9.0V 20 32 40 48 ns 12.0V 15 30 38 45 fMAX Minimum Frequency RL = 600Ω 4.5V 40 MHz Response (Figure 7) VIS = 2 VPP at (VCC/2) 9.0V 100 MHz 20 log (VO/VI) = − 3 dB (Note 6) (Note 7) Crosstalk Between RL = 600Ω , F = 1 MHz any Two Switches (Note 7) (Note 8) 4.5V − 52 dB (Figure 8) 9.0V − 50 dB Peak Control to Switch RL = 600Ω , F = 1 MHz 4.5V 100 mV Feedthrough Noise (Figure 9) CL = 50 pF 9.0V 250 mV Switch OFF Signal RL = 600Ω , F = 1 MHz Feedthrough V(CT)VIL Isolation (Note 7) (Note 8) 4.5V − 42 dB (Figure 10) 9.0V − 44 dB THD Total Harmonic RL = 10 kΩ , CL = 50 pF, Distortion F = 1 kHz (Figure 11) VIS = 4 VPP 4.5V .013 % VIS = 8 VPP 9.0V .008 % CIN Maximum Control 5 10 10 10 pF Input Capacitance CIN Maximum Switch 20 pF Input Capacitance CIN Maximum Feedthrough VCTL = GND 0.5 pF Capacitance CPD Power Dissipation 15 pF Capacitance

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www.fairchildsemi.com 4 M M 7 4 H C 4 0 6 6 AC Test Circuits and Switching Time Waveforms FIGURE 1. “ON” Resistance FIGURE 2. “ON” Channel Leakage Current FIGURE 3. “OFF” Channel Leakage Current FIGURE 4. tPHL, tPLH Propagation Delay Time Signal Input to Signal Output FIGURE 5. tPZL, tPLZ Propagation Delay Time Control to Signal Output FIGURE 6. tPZH, tPHZ Propagation Delay Time Control to Signal Output

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5 www.fairchildsemi.com M M 7 4 H C 4 0 6 6 AC Test Circuits and Switching Time Waveforms (Continued) FIGURE 7. Frequency Response FIGURE 8. Crosstalk: Control Input to Signal Output FIGURE 9. Crosstalk Between Any Two Switches FIGURE 10. Switch OFF Signal Feedthrough Isolation FIGURE 11. Sinewave Distortion

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www.fairchildsemi.com 6 M M 7 4 H C 4 0 6 6 Typical Performance Characteristics Typical “ON” Resistance Typical Crosstalk Between Any Two Switches Typical Frequency Response Special Considerations In certain applications the external load-resistor current may include both VCC and signal line components. To avoid drawing VCC current when switch current flows into the analog switch input pins, the voltage drop across the switch must not exceed 0.6V (calculated from the ON resis- tance).

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7 www.fairchildsemi.com M M 7 4 H C 4 0 6 6 Physical Dimensions inches (millimeters) unless otherwise noted 14-Lead Small Outline Integrated Circuit (SOIC), JEDEC MS-012, 0.150" Narrow Package Number M14A

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www.fairchildsemi.com 8 M M 7 4 H C 4 0 6 6 Physical Dimensions inches (millimeters) unless otherwise noted (Continued) Pb-Free 14-Lead Small Outline Package (SOP), EIAJ TYPE II, 5.3mm Wide Package Number M14D

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9 www.fairchildsemi.com M M 7 4 H C 4 0 6 6 Physical Dimensions inches (millimeters) unless otherwise noted (Continued) 14-Lead Thin Shrink Small Outline Package (TSSOP), JEDEC MO-153, 4.4mm Wide Package Number MTC14

MM74HC4066MX Reviews

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May 20, 2020

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May 18, 2020

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May 5, 2020

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April 28, 2020

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April 21, 2020

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April 14, 2020

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April 11, 2020

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April 11, 2020

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MM74HC4066MX Guarantees

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We provide 90 days warranty.

If the items you received were not in perfect quality, we would be responsible for your refund or replacement, but the items must be returned in their original condition.

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