MM74C906M SS | Alldatasheet
Document overview
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Technical content
www.siliconsupplies.com CMOS High Voltage Logic - MM74C906M Hex Open Drain N-Channel Buffers in Plastic Small-Outline Package (SOIC) Rev 1.0 16/07/2021 Wide supply voltage range: 3V to 15V Guaranteed noise margin: 1V High noise immunity: 0.45 V CC (typ.) High current sourcing and sinking open-drain outputs Features: The MM74C906M buffer employs monolithic CMOS technology in achieving open drain outputs. The MM74C906M consists of six inverters driving six N-channel devices. The open-drain feature of these buffers makes level shifting or wire-AND and wire-OR functions by just the addition of pull-up or pull-down resistors. All inputs are protected from static discharge by diode clamps to VCC and to ground.
Description
Schematic & Connection Diagram Absolute Maximum Ratings1 PARAMETER SYMBOL VALUE UNIT Voltage at any input pin VIN -0.3 to VCC + 0.3 V Voltage at any output pin VOUT -0.3 to VCC + 0.3 V Operating VCC range VCC 3 to 15 V Absolute maximum VCC V CC(MAX) 18 V Maximum Power Dissipation PD 700 mW Operating Temperature Range TA -40 to +85 °C Storage Temperature Range TSTG -65 to +150 °C Lead Temperature (Soldering, 10 seconds) TL 260 °C VCC 1 2 3 4 5 6 7 14 13 12 11 10 9 8 GND
Ordering Information
The following part suffixes apply: MM74C906M - 14 Lead Plastic SOIC Package INPUT OUTPUT 1. Operation above the absolute maximum rating may cause device failure. Operation at the absolute maximum ratings, for extended periods, may reduce device reliability. A ll data sheet.com
d CMOS High Voltage Logic - MM74C906M Rev 1.0 16/07/2021 PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNITS CMOS TO CMOS VCC = 5V 3.5 - - V Logical “1” Input Voltage VIN(1) VCC = 10V 8.0 - - V VCC = 5V - - 1.5 V Logical “0” Input Voltage VIN(0) VCC = 10V - - 2.0 V Logical “1” Input Current IIN(1) VCC = 15V, VIN = 15V - 0.005 1 µA Logical “0” Input Current IIN(0) VCC = 15V, VIN = 0V -1.0 -0.005 - µA Supply Current ICC VCC = 15V,Output Open - 0.05 15 µA Output Leakage Current VCC = 4.75V, VIN = VCC – 1.5V, VCC=4.75V,VOUT =18V - 0.005 5 µA CMOS/LPTTL INTERFACE Logical “1” Input Voltage VIN(1) VCC = 4.75V VCC -1.5V - - V Logical “0” Input Voltage VIN(0) VCC = 4.75V - - 0.8 V OUTPUT DRIVE CURRENT VCC = 4.75V, VIN = 1V + 0.1 VCC, 2.1 VCC=4.75V,VOUT =0.5V 8.0 - mA VCC = 4.75V, VIN = 1V + 0.1 VCC, VCC=4.75V,VOUT =1.0V 4.2 12.0 - mA VCC = 10V, VIN = 2V, VCC= 10V,VOUT =0.5V 4.2 20 - mA VCC = 10V, VIN = 2V, VCC= 10V,VOUT =1V 8.4 30 - mA Dynamic Electrical Characteristics2 TA = 25°C unless otherwise stated PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNITS Propagation Delay Time to Logical “0” tpd VCC = 5.0V, R = 10kΩ, CL = 50pF - - 150 ns Propagation Delay Time to Logical “1” tpd VCC = 10V, R = 10kΩ, CL = 50pF - - 75 ns Input Capacitance CIN - - 5.0 - pF Output Capacitance COUT - - 20 - pF Power Dissipation Capacitance2 CPD - - 30 - pF 2. Per Buffer, used to determine the no-load dynamic power consumption: PD = CPD VCC f + ICC VCC. Page 2 of 4 www.siliconsupplies.com A ll data sheet.com
CMOS High Voltage Logic - MM74C906M Rev 1.0 16/07/2021Typical Applications Note: Can be extended to more than 2 inputs Page 3 of 4 www.siliconsupplies.com A ll data sheet.com
CMOS High Voltage Logic - MM74C906M Rev 1.0 16/07/2021 Page 4 of 4 www.siliconsupplies.com DISCLAIMER: The information given in this document shall in no event be regarded as a guarantee of conditions or characteristics. With respect to any examples or hints given herein, any typical values stated herein and/or any information regarding the application of the device, Silicon Supplies Ltd hereby disclaims any and all warranties and liabilities of any kind. LIFE SUPPORT POLICY: Silicon Supplies Ltd components may be used in life support devices or systems only with the express written approval of Silicon Supplies Ltd, if a failure of such components can reasonably be expected to cause the failure of that life support device or system or to affect the safety or effectiveness of that device or system. Life support devices or systems are intended to be implanted in the human body or to support and/or maintain and sustain and/or protect human life. If they fail, it is reasonable to assume that the health of the user or other persons may be endangered. A ll data sheet.com