Precision, 16-Channel/Dual 8-Channel, High-Performance, CMOS Analog Multiplexers

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1 9-27; Rev 3; 3/ Precision, 6-Channel/Dual 8-Channel, General Description The MA36/MA37 precision, monolithic, CMOS analog multiplexers (muxes) offer low on-resistance (less than Ω), which is matched to within Ω between channels and remai flat over the specified analog signal range (7Ω, max). They also offer low leakage over temperature (I NO(OFF) less than 2.nA at +8 C) and fast switching speeds (t TRANS less than 2). The MA36 is a single-ended -of-6 device, and the MA37 is a differential 2-of-8 device. The MA36/MA37 are fabricated with Maxim s improved 44V silicon-gate process. Design improvements yield extremely low charge injection (less than pc) and guarantee electrostatic discharge (ESD) protection greater than 2V. These muxes operate with a single +V to +3V supply, or bipolar ±4.V to ±2V supplies, while retaining TTL/CMOS-logic input compatibility and fast switching. CMOS inputs provide reduced input loading. These improved parts are plug-in upgrades for the industrystandard DG46, DG47, DG6A, and DG7A. Applicatio Sample-and-Hold Circuits Test Equipment Heads-Up Displays Guidance and Control Systems Military Radios Communicatio Systems Battery-Operated Systems PB, PAB Audio Signal Routing Features Guaranteed On-Resistance Match Between Channels, <Ω Max Low On-Resistance, <Ω Max Guaranteed Flat On-Resistance over Specified Signal Range, 7Ω Max Guaranteed Charge Injection, <pc I NO(OFF) Leakage <2.nA at +8 C I (OFF) Leakage <2nA at +8 C ESD Protection >2V Plug-In Upgrade for Industry-Standard DG46/DG47/DG6A/DG7A Single-Supply Operation (+V to +3V) Bipolar-Supply Operation (±4.V to ±2V) Low Power Coumption, <.2mW Rail-to-Rail Signal Handling TTL/CMOS-Logic Compatible Ordering Information PART TEMP RANGE PIN-PACKAGE MA36CPI MA36CWI C to +7 C C to +7 C 28 Plastic DIP 28 Wide SO MA36C/D C to +7 C Dice* MA36EPI -4 C to +8 C 28 Plastic DIP MA36EWI -4 C to +8 C 28 Wide SO MA36EQI -4 C to +8 C 28 PLCC MA36EUI -4 C to +8 C 28 TSSOP MA36MJI - C to +2 C 28 CERDIP Ordering Information continued at end of data sheet. *Contact factory for dice specificatio. Pin Configuratio/Functional Diagrams/Truth Tables MA36/MA37 TOP VIEW 28 A A NO6 NO NO4 NO3 NO2 NO NO NO MA NO8 NO7 NO6 NO NO4 NO3 NO2 NO A A None MA36 LOGIC V AL.8V, LOGIC = V AH 2.4V 4 DIP/SO/TSSOP Pin Configuratio/Functional Diagrams/Truth Tables continued at end of data sheet. Maxim Integrated Products For pricing, delivery, and ordering information, please contact Maxim Direct at , or visit Maxim s website at This datasheet has been downloaded from at this page

2 Precision, 6-Channel/Dual 8-Channel, MA36/MA37 ABSOLUTE MAIMUM RATINGS (Voltage Referenced to )...-.3V, +44V...-.3V, +2V Digital Inputs, NO, (Note )...( - 2V) to ( + 2V) or 3mA (whichever occurs first) Continuous Current (any terminal)...3ma Peak Current, NO or (pulsed at ms, % duty cycle max)...ma Continuous Power Dissipation (T A = +7 C) 28-Pin Plastic DIP (derate 9.9mW/ C above +7 C)...727mW 28-Pin Wide SO (derate 2.mW/ C above +7 C)...mW 28-Pin PLCC (derate.3mw/ C above +7 C)...842mW 28-Pin CERDIP (derate 6.67mW/ C above +7 C)..333mW 28-Pin TSSOP (derate 2.8mW/ C above +7 C)...2mW Note : Operating Temperature Ranges MA3_C... C to +7 C MA3_E...-4 C to +8 C MA3_MJI...- C to +2 C Storage Temperature Range...-6 C to + C Lead Temperature (soldering, s)...+3 C Soldering Temperature (reflow) PDIP lead(pb)-free C PDIP containing lead(pb) C Wide SO lead(pb)-free C Wide SO containing lead(pb) C PLCC lead(pb)-free C PLCC containing lead(pb) C CERDIP C TSSOP lead(pb)-free C TSSOP containing lead(pb) C Signals on NO,, A, A,,, or exceeding or are clamped by internal diodes. Limit forward current to maximum current ratings. Stresses beyond those listed under Absolute Maximum Ratings may cause permanent damage to the device. These are stress ratings only, and functional operation of the device at these or any other conditio beyond those indicated in the operational sectio of the specificatio is not implied. Exposure to absolute maximum rating conditio for extended periods may affect device reliability. ELECTRICAL CHARACTERISTICS Dual Supplies ( = +V, = -V, = V, V AH = +2.4V, V AL = +.8V,, unless otherwise noted.) SWITCH PARAMETER Analog Signal Range On-Resistance On-Resistance Matching Between Channels On-Resistance Flatness NO Off-Leakage Current (Note ) Off-Leakage Current (Note ) SYMBOL V NO, V R ON ΔR ON R FLAT I NO(OFF) I (OFF) I NO = -.ma, V = ±V I NO = -.ma, V = ±V (Note 4) I NO = -.ma, V = ±V or V V = +V, V NO = ±V, V = V V NO = ±V, V = +V, V = V V NO = +V, V = ±V, V = V CONDITIONS MA36 MA37 MIN TYP MA (Note 2) T A = T MIN C, E to T MA M T A = T MIN C, E to T MA M T A = T MIN C, E - + to T MA M UNITS V Ω Ω Ω na na 2

3 Precision, 6-Channel/Dual 8-Channel, ELECTRICAL CHARACTERISTICS Dual Supplies (continued) ( = +V, = -V, = V, V AH = +2.4V, V AL = +.8V,, unless otherwise noted.) PARAMETER On-Leakage Current (Note ) INPUT Input Current with Input Voltage High Input Current with Input Voltage Low SYMBOL I (ON) I AH I AL V = ±V, V NO = ±V, sequence each switch on V A = 2.4V or V V = V or 2.4V, V A = V CONDITIONS MA36 MA37 T A = T MIN to T MA T A = T MIN to T MA C, E M C, E M MIN TYP MA (Note 2) UNITS na µa µa MA36/MA37 SUPPLY Power-Supply Range Positive Supply Current Negative Supply Current DYNAMIC Traition Time Break-Before-Make Interval Enable Turn-On Time Enable Turn-Off Time I+ I- t TRANS t OP t ON() t OFF() V = V A = V or.v V = 2.4V, V A(ALL) = V V = 2.4V, V A(ALL) = V Figure 2 Figure 4 Figure 3 Figure 3 ±4. ± V µa ma µa Charge Injection Q C L =.nf, V NO = V, R S = Ω, Figure 2 pc Off-Isolation (Note 6) V ISO V = V, R L = kω, f = khz, Figure 6 V = 2.4V, Crosstalk Between Channels V CT f = khz, V G = V P-P, -92 db R L = kω, Figure 7 Logic Input Capacitance C IN f = MHz 8 pf f = MHz, NO Off-Capacitance C NO(OFF) V = V NO = V, 8 pf Figure 8-69 db 3

4 Precision, 6-Channel/Dual 8-Channel, MA36/MA37 ELECTRICAL CHARACTERISTICS Single Supply ( = +2V, = V, = V, V AH = +2.4V, V AL = +.8V,, unless otherwise noted.) PARAMETER Traition Time Enable Turn-On Time Enable Turn-Off Time Charge Injection SYMBOL f = MHz, MA36 V Off-Capacitance C =.8V, (OFF) V = V, MA37 Figure 8 f = MHz, MA36 V On-Capacitance C = 2.4V, (ON) V = V, MA37 Figure 8 SWITCH Analog Signal Range V NO, V On-Resistance R ON I NO = -.ma V = 3V or V DYNAMIC t TRANS t ON() t OFF() Q V NO = 8V, V NO8 = V, V IN = 2.4V, Figure V INH = 2.4V, V INL = V, V NO = V, Figure 3 V INH = 2.4V, V INL = V, V NO = V, Figure 3 C L =.nf, V NO = V, R S = Ω CONDITIONS MIN TYP MA (Note 2) UNITS pf pf V Ω pc Note 2: The algebraic convention where the most negative value is a minimum and the most positive value a maximum is used in this data sheet. Note 3: Guaranteed by design. Note 4: ΔR ON = R ON(MA) - R ON(MIN). On-resistance match between channels and flatness are guaranteed only with specified voltages. Flatness is defined as the difference between the maximum and minimum value of on-resistance as measured at the extremes of the specified analog signal range. Note : Leakage parameters are % tested at the maximum-rated hot temperature and guaranteed by correlation at +2 C. Note 6: Off-isolation = 2log V /V NO, where V = output and V NO = input to off switch. 4

5 Precision, 6-Channel/Dual 8-Channel, Typical Operating Characteristics (, unless otherwise noted.) RON (Ω) ON-RESISTANCE vs. V (DUAL SUPPLIES) V (V) ±V ±V ±V ±2V MA36/7 TOC- RON (Ω) ON-RESISTANCE vs. V AND TEMPERATURE (DUAL SUPPLIES) = +V = -V +2 C +8 C +2 C - C V (V) MA36/7 TOC-2 RON (Ω) ON-RESISTANCE vs. V (SINGLE SUPPLY) V V V (V) V 2V MA36/7 TOC-3 2 MA36/MA37 RON (Ω) ON-RESISTANCE vs. V AND TEMPERATURE (SINGLE SUPPLY) = +V = V +2 C +8 C +2 C - C MA36/7 TOC-4 OFF LEAKAGE (na)... OFF LEAKAGE vs. TEMPERATURE = +V = -V I (ON) I NO (OFF) MA36/7 TOC- ON LEAKAGE (na)... ON LEAKAGE vs. TEMPERATURE = +V = -V I (ON) MA36/7 TOC-6 V (V) TEMPERATURE ( C) TEMPERATURE ( C) Qj (pc) CHARGE INJECTION vs. V V (V) = +V = -V = 2V = V MA36/7 TOC-7 I+, I- (μa). SUPPLY CURRT vs. TEMPERATURE I+ I-. = +V = -V V = V A = V, 4.V TEMPERATURE ( C) MA36/7 TOC-8

6 Precision, 6-Channel/Dual 8-Channel, MA36/MA37 Pin Descriptio MA36 PIN 2, 3, NAME NO6 NO9 A NO NO8 Ground Address Inputs Enable Inputs FUNCTION Positive Supply Voltage Input No Connection. Not internally connected. Analog Inputs bidirectional Analog Inputs bidirectional Negative Supply Voltage Input MA37 PIN 2 3, 3, 4 4 2, 6, NAME B NO8B NOB, A, A NOA NO8A Ground Address Inputs Enable Input FUNCTION Positive Supply Voltage Input Output B bidirectional No Connection. Not internally connected. Analog Inputs bidirectional Analog Inputs bidirectional 28 Output bidirectional 27 Negative Supply Voltage Input 28 A Output A bidirectional Applicatio Information Operation with Supply Voltages Other than ±V Using supply voltages other than ±V will reduce the analog signal range. The MA36/MA37 switches operate with ±4.V to ±2V bipolar supplies or with a +V to +3V single supply; connect to when operating with a single supply. Also, both device types can operate with unbalanced supplies such as +24V and -V. The Typical Operating Characteristics graphs show typical on-resistance with 2V, V, V, and V supplies. (Switching times increase by a factor of two or more for operation at V.) Overvoltage Protection Proper power-supply sequencing is recommended for all CMOS devices. Do not exceed the absolute maximum ratings because stresses beyond the listed ratings may cause permanent damage to the devices. Always sequence on first, then, followed by either the logic inputs, NO or. If power-supply sequencing is not possible, add two small-signal diodes in series with supply pi for overvoltage protection (Figure ). Adding diodes reduces the analog signal range to V above and V below, but low switch resistance and low leakage characteristics are unaffected. Device operation is unchanged, and the difference between and should not exceed +44V. V g NO Figure. Overvoltage Protection Using External Blocking Diodes 6

7 Precision, 6-Channel/Dual 8-Channel, Test Circuits/Timing Diagrams Ω Ω A A A A +V MA36 -V +V NO NO2-NO NO6 -V NOB NOA-NO8A NO8B MA37 B 3Ω 3Ω ±V +V ±V +V 3pF 3pF LOGIC INPUT SWITCH OUTPUT +3V V V NO V V NO6 t TRANS ON % 9% tr < 2 t f < 2 9% t TRANS MA36/MA37 Figure 2. Traition Time +V Ω A A NO NO2-NO6 MA36 kω -V 3pF LOGIC INPUT +3V V % tr < 2 t f < 2 A -V +V NOB NOA-NO8A NO2B-NO8B, A -V SWITCH OUTPUT t ON() V 9% % t OFF() Ω A MA37 B kω 3pF -V Figure 3. Enable Switching Time 7

8 Precision, 6-Channel/Dual 8-Channel, MA36/MA37 Test Circuits/Timing Diagrams (continued) +2.4V Ω A A +V MA36 NO-NO6 -V 3Ω +V 3pF LOGIC INPUT SWITCH OUTPUT +3V V V % 8% t OP tr < 2 t f < 2 Figure 4. Break-Before-Make Interval +V R S V S CHANNEL SELECT NO-NO6 A A MA36 -V C L = nf LOGIC INPUT +3V V OFF ON OFF Δ Δ IS THE MEASURED VOLTAGE DUE TO CHARGE TRANSFER ERROR Q WH THE CHANNEL TURNS OFF. Q = C L = Δ Figure. Charge Injection 8

9 Precision, 6-Channel/Dual 8-Channel, Test Circuits/Timing Diagrams (continued) R S = Ω V IN NO NO6 A A +V MA36 nf nf -V R L = kω R L = kω R S = Ω NO NO2 NO6 A A +V MA36 nf nf -V MA36/MA37 OFF-ISOLATION = 2log V IN CROSSTALK = 2log V IN Figure 6. Off-Isolation Figure 7. Crosstalk +V CHANNEL SELECT A A MA36 NO NO6 Meter Impedance Analyzer f = MHz -V Figure 8. NO/ Capacitance 9

10 Precision, 6-Channel/Dual 8-Channel, MA36/MA37 Pin Configuratio/Functional Diagrams/Truth Tables (continued) TOP VIEW B 2 3 NO8B 4 NO7B NO6B 6 NOB 7 NO4B 8 NO3B 9 NO2B NOB MA37 28 A NO8A 2 NO7A 24 NO6A 23 NOA 22 NO4A 2 NO3A NO2A NOA A A A A MA37 None LOGIC V AL.8V, LOGIC = V AH 2.4V DIP/SO TOP VIEW NO6 NO8 NO NO4 NO3 NO2 NO NO NO MA NO7 NO6 NO NO4 N3 N2 N NO NO2 NO3 NO4 NO NO6 NO7 NO8 NO9 NO NO NO2 NO3 NO4 NO NO CMOS DECODERS/DRIVERS A PLCC = NO INTERNAL CONNECTION A A A MA36 6-CHANNEL SINGLE-DED MULTIPLEER

11 Precision, 6-Channel/Dual 8-Channel, Pin Configuratio/Functional Diagrams/Truth Tables (continued) TOP VIEW NO7B NO6B NOB NO4B NO3B NO2B NOB NO8B B A NO8A MA NO7A NO6A NOA NO4A N3A N2A NA NOA NO2A NO3A NO4A NOA NO6A NO7A NO8A NOB NO2B NO3B NO4B NOB NO6B NO7B NO8B CMOS DECODERS/DRIVERS A B MA36/MA37 A A PLCC = NO INTERNAL CONNECTION A A MA37 8-CHANNEL DIFFERTIAL MULTIPLEER _Ordering Information (continued) PART TEMP RANGE PIN-PACKAGE MA37CPI MA37CWI C to +7 C C to +7 C 28 Plastic DIP 28 Wide SO MA37C/D C to +7 C Dice* MA37EPI -4 C to +8 C 28 Plastic DIP MA37EWI -4 C to +8 C 28 Wide SO MA37EQI -4 C to +8 C 28 PLCC MA37EUI -4 C to +8 C 28 TSSOP MA37MJI - C to +2 C 28 CERDIP * Contact factory for dice specificatio. Package Information For the latest package outline information and land patter, go to Note that a +, #, or - in the package code indicates RoHS status only. Package drawings may show a different suffix character, but the drawing pertai to the package regardless of RoHS status. PACKAGE TYPE PACKAGE CODE DOCUMT NO. 28 PDIP P Wide SO W PLCC Q CDIP J TSSOP U

12 Precision, 6-Channel/Dual 8-Channel, MA36/MA37 Chip Topographies NO NO2 MA36 A A.84" (4.67mm) NO9 NO NOA NO2A MA37 A A.84" (4.67mm) NOB NO2B NO3 NO NO3A NO3B N4 NO2 N4A NO4B NO N3 NOA NB NO6 NO4 NO6A NO6B NO7 NO NO7A NO7B NO8 NO6 NO8A NO8B B.78" (.98mm) A.78" (.98mm) = NO INTERNAL CONNECTION TRANSISTOR COUNT: 269 SUBSTRATE IS INTERNALLY CONNECTED TO TRANSISTOR COUNT: 269 SUBSTRATE IS INTERNALLY CONNECTED TO 2

13 Precision, 6-Channel/Dual 8-Channel, REVISION NUMBER REVISION DATE 3 3/ DESCRIPTION Changed the single-supply operating voltage minimum from +4.V to +V in the General Description, Features, and Applicatio Information sectio. Added the soldering temperatures for all packages to the Absolute Maximum Ratings section. Revision History PAGES CHANGED, 6 2 MA36/MA37 Maxim cannot assume respoibility for use of any circuitry other than circuitry entirely embodied in a Maxim product. No circuit patent licees are implied. Maxim reserves the right to change the circuitry and specificatio without notice at any time. Maxim Integrated Products, 2 San Gabriel Drive, Sunnyvale, CA Maxim Integrated Products Maxim is a registered trademark of Maxim Integrated Products, Inc.

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