W www.ti.com SCDS191 − MARCH 2005 Description The TS5A3154 is a single-pole double-throw (SPDT) analog switch that is designed to operate from 1.65 V to 5.5 V. The device offers a low ON-state resistance and an excellent channel-to-channel ON-state resistance matching. The device has excellent total harmonic distortion (THD) performance and consumes very low power. These features make this device suitable for portable audio applications. Applications D Cell Phones D PDAs D Portable Instrumentation D Audio and Video Signal Routing D Low-Voltage Data-Acquisition Systems D Communication Circuits D Modems D Hard Drives D Computer Peripherals D Wireless Terminals and Peripherals SSOP OR SOT PACKAGE (TOP VIEW) Features D Specified Make-Before-Break Switching D Low ON-State Resistance (0.9 W) D Control Inputs Are 5.5-V Tolerant D Low Charge Injection D Excellent ON-State Resistance Matching D Low Total Harmonic Distortion (THD) D 1.65-V to 5.5-V Single-Supply Operation D Latch-Up Performance Exceeds 100 mA Per JESD 78, Class II D ESD Performance Tested Per JESD 22 − 2000-V Human-Body Model (A114-B, Class II) − 1000-V Charged-Device Model (C101) Summary of Characteristics V+ = 5 V, TA = 25°C Single Pole, Double Throw 2:1 Multiplexer/ Demultiplexer (SPDT) Configuration Number of channels 1 ON-state resistance (ron) 0.9 Ω ON-state resistance match (∆ron) 0.1 Ω ON-state resistance flatness (ron(flat)) 0.15 Ω COM 1 8 V+ EN 2 7 NC GND 3 6 NO Make-before-break time (tMBB) 12 ns 5 IN Charge injection (QC) 10 pC Logic Control GND 4 Turn-on/turn-off time (tON/tOFF) Bandwidth (BW) YEA, YEP, YZA, OR YZP PACKAGE (BOTTOM VIEW) 8 ns/12.5 ns 100 MHz OFF isolation (OISO) −64 dB at 1 MHz Crosstalk (XTALK) −64 dB at 1 MHz Total harmonic distortion (THD) 0.004% 5 IN Leakage current(ICOM(OFF)/INC(OFF)) ±20 nA 3 6 NO Power-supply current (I+) 0.1 µA EN 2 7 NC COM 1 8 V+ GND 4 GND Logic Control Package option 8-pin SSOP, SOT, or DSBGA FUNCTION TABLE EN IN NC TO COM, COM TO NC NO TO COM, COM TO NO L L ON OFF L H OFF ON H X OFF OFF Please be aware that an important notice concerning availability, standard warranty, and use in critical applications of Texas Instruments semiconductor products and disclaimers thereto appears at the end of this data sheet. NanoFree and NanoStar are trademarks of Texas Instruments. !"#$%&'#! ( )*$$+!' &( #" ,*-.)&'#! /&'+ $#/*)'( )#!"#$% '# (,+)")&'#!( ,+$ '0+ '+$%( #" +1&( !('$*%+!'( ('&!/&$/ 2&$$&!'3 $#/*)'#! ,$#)+((!4 /#+( !#' !+)+((&$.3 !).*/+ '+('!4 #" &.. ,&$&%+'+$( Copyright 2005, Texas Instruments Incorporated W www.ti.com SCDS191 − MARCH 2005 ORDERING INFORMATION PACKAGE(1) TA ORDERABLE PART NUMBER NanoStar − WCSP (DSBGA) 0.17−mm Small Bump − YEA TS5A3154YEAR NanoFree − WCSP (DSBGA) 0.17-mm Small Bump − YZA (Pb-free) −40°C to 85°C NanoStar − WCSP (DSBGA) 0.23-mm Large Bump − YEP TOP-SIDE MARKING(2) TS5A3154YZAR Tape and reel TS5A3154YEPR NanoFree − WCSP (DSBGA) 0.23-mm Large Bump − YZP (Pb-free) TS5A3154YZPR SSOP − DCT (Pb-free) Tape TS5A3154DCTRE6 JCF___ DCU (Pb-free) Tape and reel TS5A3154DCURE6 JCF___, ____ (1) Package drawings, standard packing quantities, thermal data, symbolization, and PCB design guidelines are available at www.ti.com/sc/package. (2) DBV/DCK: The actual top-side marking has one additional character that designates the assembly/test site. YEP/YZP: The actual top-side marking has three preceding characters to denote year, month, and sequence code, and one following character to designate the assembly/test site. Pin 1 identifier indicates solder-bump composition (1 = SnPb, • = Pb-free). 2 www.ti.com W SCDS191 − MARCH 2005 Absolute Minimum and Maximum Ratings(1)(2) over operating free-air temperature range (unless otherwise noted) MIN MAX V+ VNC VNO VCOM IK Supply voltage range(3) −0.5 6.5 V Analog voltage range(3)(4)(5) −0.5 V+ + 0.5 V −50 50 INC INO ICOM VI On-state switch current −200 200 −400 400 −0.5 6.5 IIK I+ Digital input clamp current IGND Continuous current through GND θJA Analog port diode current On-state peak switch current(6) VNC, VNO, VCOM < 0 or VNC, VNO, VCOM > V+ VNC, VNO, VCOM = 0 to V+ Digital input voltage range(3)(4) VI < 0 mA mA −50 Continuous current through V+ Package thermal impedance(7) UNIT −100 V mA 100 mA 100 mA DCT package 220 DCU package 227 YEA/YZA package 140 YEP/YZP package 102 °C/W Tstg Storage temperature range −65 150 °C (1) Stresses above these ratings may cause permanent damage. Exposure to absolute maximum conditions for extended periods may degrade device reliability. These are stress ratings only, and functional operation of the device at these or any other conditions beyond those specified is not implied. (2) The algebraic convention, whereby the most negative value is a minimum and the most positive value is a maximum (3) All voltages are with respect to ground, unless otherwise specified. (4) The input and output voltage ratings may be exceeded if the input and output clamp-current ratings are observed. (5) This value is limited to 5.5 V maximum. (6) Pulse at 1-ms duration < 10% duty cycle. (7) The package thermal impedance is calculated in accordance with JESD 51-7. 3 W www.ti.com SCDS191 − MARCH 2005 Electrical Characteristics for 5-V Supply(1) V+ = 4.5 V to 5.5 V, TA = −40°C to 85°C (unless otherwise noted) PARAMETER TEST CONDITIONS SYMBOL TA V+ MIN TYP MAX UNIT Analog Switch Analog signal range VCOM, VNO, VNC 0 ≤ (VNO or VNC) ≤ V+, ICOM = −100 mA, Switch ON, See Figure 13 25 °C VNO or VNC = 2.5 V, ICOM = −100 mA, Switch ON, See Figure 13 25°C ron VNO or VNC = 2.5 V, ICOM = −100 mA, Switch ON, See Figure 13 25°C ∆ron 0 ≤ (VNO or VNC) ≤ V+, ICOM = −100 mA, Switch ON, See Figure 13 25°C VNO or VNC = 1 V, 1.5 V, 2.5 V, ICOM = −100 mA, Switch ON, See Figure 13 25°C VNC or VNO = 1 V, VCOM = 4.5 V, or VNC or VNO = 4.5 V, VCOM = 1 V, Switch OFF, See Figure 14 25°C Switch OFF, See Figure 14 25°C Peak ON resistance rpeak ON-state resistance ON-state resistance match between channels ON-state resistance flatness NC, NO OFF leakage current NC, NO ON leakage current COM OFF leakage current COM ON leakage current 0 ron(flat) INC(OFF), INO(OFF) INC(PWROFF), VNC or VNO = 0 to 5.5 V, INO(PWROFF) VCOM = 5.5 V to 0, Full Full 0.8 4.5 V 0.9 1.1 0.05 0.1 4.5 V 0.09 0.15 −20 Full VCOM = 1 V, VNC or VNO = 4.5 V, or VCOM = 4.5 V, VNC or VNO = 1 V, Switch OFF See Figure 14 25°C ICOM(OFF) Switch OFF, See Figure 14 25°C 2 Switch ON, See Figure 15 25°C Ω Ω 20 nA −150 −5 0V 150 0.7 −25 −20 5 25 2 Full nA −150 −20 150 2 20 5.5 V Full nA −150 −5 0V µA A 20 5.5 V Full Ω 0.15 5.5 V 25°C Ω 0.15 Full Full V 0.1 Full Switch ON, See Figure 15 VCOM = 1 V, VNC or VNO = Open, or VCOM = 4.5 V, VNC or VNO = Open 1.1 1.3 Full VNC or VNO = 1 V, VCOM = Open, or VNC or VNO = 4.5 V, VCOM = Open, ICOM(ON) 0.9 4.5 V 4.5 V INC(ON), INO(ON) VNC or VNO = 0 to 5.5 V, ICOM(PWROFF) VCOM = 5.5 V to 0, V+ 150 0.7 −25 −20 5 25 2 µA A 20 5.5 V nA Full −150 150 Full 2.4 5.5 V Full 0 0.8 V 25°C −100 Digital Control Inputs (IN, EN)(2) Input logic high Input logic low Input leakage current VIH VIL IIH, IIL VI = 5.5 V or 0 Full 5.5 V −100 25 100 100 nA (1) The algebraic convention, whereby the most negative value is a minimum and the most positive value is a maximum (2) All unused digital inputs of the device must be held at V+ or GND to ensure proper device operation. Refer to the TI application report, Implications of Slow or Floating CMOS Inputs, literature number SCBA004. 4 W www.ti.com SCDS191 − MARCH 2005 Electrical Characteristics for 5-V Supply(1) (continued) V+ = 4.5 V to 5.5 V, TA = −40°C to 85°C (unless otherwise noted) PARAMETER TEST CONDITIONS SYMBOL TA V+ MIN TYP MAX 5.2 8 UNIT Dynamic Turn-on time, IN or OE VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 17 25°C 5V 1 tON Full 4.5 V to 5.5 V 1 Turn-off time, IN or OE VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 17 25°C 5V 5 tOFF Full 4.5 V to 5.5 V 4 Make-beforebreak time VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 18 25°C 5V 4 tMBB Full 4.5 V to 5.5 V 4 VGEN = 0, RGEN = 0, CL = 1 nF, See Figure 22 25°C 5V 10 pC Charge injection QC 9 9.5 12.5 13.5 6.3 ns ns 12 13 ns NC, NO OFF capacitance CNC(OFF), CNO(OFF) VNC or VNO = V+ or GND, Switch OFF, See Figure 16 25°C 5V 19 pF NC, NO ON capacitance CNC(ON), CNO(ON) VNC or VNO = V+ or GND, Switch ON, See Figure 16 25°C 5V 57 pF COM OFF capacitance CCOM(OFF) VCOM = V+ or GND, Switch ON, See Figure 16 25°C 5V 36 pF COM ON capacitance CCOM(ON) VCOM = V+ or GND, Switch ON, See Figure 16 25°C 5V 57 pF VI = V+ or GND, See Figure 16 25°C 5V 2 pF BW RL = 50 Ω, Switch ON, See Figure 19 25°C 5V 100 MHz OISO RL = 50 Ω, f = 1 MHz, Switch OFF, See Figure 20 25°C 5V −64 dB XTALK RL = 50 Ω, f = 1 MHz, Switch ON, See Figure 21 25°C 5V −64 dB THD RL = 600 Ω, CL = 50 pF, f = 20 Hz to 20 kHz, See Figure 23 25°C 5V 0.004 % Digital input capacitance Bandwidth OFF isolation Crosstalk Total harmonic distortion CI Supply 25°C Positive supply I+ VI = V+ or GND, Switch ON or OFF 5.5 V current Full (1) The algebraic convention, whereby the most negative value is a minimum and the most positive value is a maximum 0.02 0.1 0.5 µA A 5 W www.ti.com SCDS191 − MARCH 2005 Electrical Characteristics for 3.3-V Supply(1) V+ = 3 V to 3.6 V, TA = −40°C to 85°C (unless otherwise noted) PARAMETER TEST CONDITIONS SYMBOL TA V+ MIN TYP MAX UNIT Analog Switch Analog signal range VCOM, VNO, VNC Peak ON resistance rpeak ON-state resistance ron ON-state resistance match between channels ∆ron ON-state resistance flatness NC, NO OFF leakage current NC, NO ON leakage current COM OFF leakage current COM ON leakage current ron(flat) INO(OFF), INC(OFF) 0 0 ≤ (VNO or VNC) ≤ V+, ICOM = −100 mA, Switch ON, See Figure 13 25 °C VNO or VNC = 2 V, ICOM = −100 mA, Switch ON, See Figure 13 25°C VNO or VNC = 2 V, 0.8 V, ICOM = −100 mA, Switch ON, See Figure 13 25°C 0 ≤ (VNO or VNC) ≤ V+, ICOM = −100 mA, Switch ON, See Figure 13 25°C VNO or VNC = 2 V, 0.8 V, ICOM = −100 mA, Switch ON, See Figure 13 25°C VNC or VNO = 1 V, VCOM = 3 V, or VNC or VNO = 3 V, VCOM = 1 V, Switch OFF, See Figure 14 25°C Switch OFF, See Figure 14 25°C INO(PWROFF), VNC or VNO = 0 to 3.6 V, INC(PWROFF) VCOM = 3.6 V to 0, Full Full 1.2 3V 1.5 1.7 0.08 0.15 3V 0.09 0.15 −20 Full VCOM = 1 V, VNC or VNO = 3 V, or VCOM = 3 V, VNC or VNO = 1 V, Switch OFF, See Figure 14 25°C ICOM(OFF) Switch OFF, See Figure 14 25°C 2 Switch ON, See Figure 15 25°C Ω Ω 20 nA −50 −1 0V 50 0.2 −15 −20 1 15 2 Full nA −50 −20 50 2 20 3.6 V Full nA −50 −1 0V µA A 20 3.6 V Full Ω 0.15 3.6 V 25°C Ω 0.3 Full Full V 0.15 Full Switch ON, See Figure 15 VCOM = 1 V, VNC or VNO = Open, or VCOM = 3 V, VNC or VNO = Open 1.6 1.9 Full VNC or VNO = 1 V, VCOM = Open, or VNC or VNO = 3 V, VCOM = Open, ICOM(ON) 1.3 3V 3V INC(ON), INO(ON) VCOM = 0 to 3.6 V, ICOM(PWROFF) VNC or VNO = 3.6 V to 0, V+ 50 0.2 −15 −20 1 15 2 µA A 20 3.6 V nA Full −50 50 Full 2 5.5 V Full 0 0.8 V 25°C −100 Digital Control Inputs (IN, EN)(2) Input logic high Input logic low Input leakage current VIH VIL IIH, IIL VI = 5.5 V or 0 Full 3.6 V −100 25 100 100 nA (1) The algebraic convention, whereby the most negative value is a minimum and the most positive value is a maximum (2) All unused digital inputs of the device must be held at V+ or GND to ensure proper device operation. Refer to the TI application report, Implications of Slow or Floating CMOS Inputs, literature number SCBA004. 6 W www.ti.com SCDS191 − MARCH 2005 Electrical Characteristics for 3.3-V Supply(1) (continued) V+ = 3 V to 3.6 V, TA = −40°C to 85°C (unless otherwise noted) PARAMETER TEST CONDITIONS SYMBOL TA V+ MIN TYP 6 MAX UNIT Dynamic Turn-on time VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 17 25°C 3.3 V 3 tON Full 3 V to 3.6 V 2 10 Turn-off time VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 17 25°C 3.3 V 5 tOFF Full 3 V to 3.6 V 4 Make-beforebreak time VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 18 25°C 3.3 V 4 tMBB Full 3 V to 3.6 V 4 CL = 1 nF, See Figure 22 25°C 3.3 V 9 pC See Figure 16 25°C 3.3 V 19 pF 10.5 10 15 17 5.7 ns ns 12 13 ns Charge injection QC NC, NO OFF capacitance CNC(OFF), CNO(OFF) VGEN = 0, RGEN = 0, VNC or VNO = V+ or GND, Switch OFF, NC, NO ON capacitance CNC(ON), CNO(ON) VNC or VNO = V+ or GND, Switch ON, See Figure 16 25°C 3.3 V 57 pF COM OFF capacitance CCOM(OFF) VCOM = V+ or GND, Switch ON, See Figure 16 25°C 3.3 V 36 pF COM ON capacitance CCOM(ON) VCOM = V+ or GND, Switch ON, See Figure 16 25°C 3.3 V 57 pF pF Digital input capacitance CI VI = V+ or GND, See Figure 16 25°C 3.3 V 2 Bandwidth BW RL = 50 Ω, Switch ON, See Figure 19 25°C 3.3 V 100 MHz OFF isolation OISO RL = 50 Ω, f = 1 MHz, Switch OFF, See Figure 20 25°C 3.3 V −64 dB Crosstalk XTALK RL = 50 Ω, f = 1 MHz, Switch ON, See Figure 21 25°C 3.3 V −64 dB THD RL = 600 Ω, CL = 50 pF, f = 20 Hz to 20 kHz, See Figure 23 25°C 3.3 V 0.010 % Total harmonic distortion Supply 25°C Positive supply I+ VI = V+ or GND, Switch ON or OFF 3.6 V current Full (1) The algebraic convention, whereby the most negative value is a minimum and the most positive value is a maximum 0.01 0.1 0.25 µA A 7 W www.ti.com SCDS191 − MARCH 2005 Electrical Characteristics for 2.5-V Supply(1) V+ = 2.3 V to 2.7 V, TA = −40°C to 85°C (unless otherwise noted) PARAMETER TEST CONDITIONS SYMBOL TA V+ MIN TYP MAX UNIT Analog Switch Analog signal range VCOM, VNO, VNC 0 ≤ (VNO or VNC) ≤ V+, ICOM = −8 mA, Switch ON, See Figure 13 25 °C VNO or VNC = 1.8 V, ICOM = −8 mA, Switch ON, See Figure 13 25°C ron VNO or VNC = 1.8 V, ICOM = −8 mA, Switch ON, See Figure 13 25°C ∆ron 0 ≤ (VNO or VNC) ≤ V+, ICOM = −8 mA, Switch ON, See Figure 13 25°C VNO or VNC = 0.8 V, 1.8 V, ICOM = −8 mA, Switch ON, See Figure 13 25°C VNC or VNO = 0.5 V, VCOM = 2.3 V, or VNC or VNO = 2.3 V, VCOM = 0.5 V, Switch OFF, See Figure 14 25°C Switch OFF, See Figure 14 25°C Peak ON resistance rpeak ON-state resistance ON-state resistance match between channels ON-state resistance flatness NC, NO OFF leakage current NC, NO ON leakage current COM OFF leakage current COM ON leakage current 0 ron(flat) INO(OFF), INC(OFF) INO(PWROFF), VNC or VNO = 0 to 2.7 V, INC(PWROFF) VCOM = 2.7 V to 0, Full Full 1.6 2.3 V 2.1 2.5 0.12 0.2 2.3 V 0.5 1 −20 Full VCOM = 0.5 V, VNC or VNO = 2.3 V, or VCOM = 2.3 V, VNC or VNO = 0.5 V, Switch OFF, See Figure 14 25°C ICOM(OFF) Switch OFF, See Figure 14 25°C 2 Switch ON, See Figure 15 25°C Ω Ω 20 nA −50 −1 0V 50 0.1 −10 −20 1 10 2 Full nA −50 −20 50 2 20 2.7 V Full nA −50 −1 0V µA A 20 2.7 V Full Ω 1 2.7 V 25°C Ω 0.65 Full Full V 0.2 Full Switch ON, See Figure 15 VCOM = 0.5 V, VNC or VNO = Open, or VCOM = 2.3 V, VNC or VNO = Open, 2.5 2.7 Full VNC or VNO = 0.5 V, VCOM = Open, or VNC or VNO = 2.3 V, VCOM = Open, ICOM(ON) 1.9 2.3 V 2.3 V INC(ON), INO(ON) VCOM = 0 to 2.7 V, ICOM(PWROFF) VNC or VNO = 2.7 V to 0, V+ 50 0.1 −10 −20 1 10 2 µA A 20 2.7 V nA Full −50 50 Full 1.8 5.5 V Full 0 0.6 V 25°C −100 Digital Control Inputs (IN, EN)(2) Input logic high Input logic low Input leakage current VIH VIL IIH, IIL VI = 5.5 V or 0 Full 2.7 V −100 25 100 100 nA (1) The algebraic convention, whereby the most negative value is a minimum and the most positive value is a maximum (2) All unused digital inputs of the device must be held at V+ or GND to ensure proper device operation. Refer to the TI application report, Implications of Slow or Floating CMOS Inputs, literature number SCBA004. 8 W www.ti.com SCDS191 − MARCH 2005 Electrical Characteristics for 2.5-V Supply(1) (continued) V+ = 2.3 V to 2.7 V, TA = −40°C to 85°C (unless otherwise noted) PARAMETER TEST CONDITIONS SYMBOL TA V+ MIN TYP MAX 4 7.0 11.5 UNIT Dynamic Turn-on time VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 17 25°C 2.5 V tON Full 2.3 V to 2.7 V Turn-off time VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 17 25°C 2.5 V 5 tOFF Full 2.3 V to 2.7 V 4 Make-beforebreak time VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 18 25°C 2.5 V 4 tMBB Full 2.3 V to 2.7 V 4 CL = 1 nF, See Figure 22 25°C 2.5 V 7 pC See Figure 16 25°C 2.5 V 19 pF 3.5 12 11.5 18.5 21 6.3 ns ns 15 16 ns Charge injection QC NC, NO OFF capacitance CNC(OFF), CNO(OFF) VGEN = 0, RGEN = 0, VNC or VNO = V+ or GND, Switch OFF, NC, NO ON capacitance CNC(ON), CNO(ON) VNC or VNO = V+ or GND, Switch ON, See Figure 16 25°C 2.5 V 57 pF COM OFF capacitance CCOM(OFF) VCOM = V+ or GND, Switch ON, See Figure 16 25°C 2.5 V 36 pF COM ON capacitance CCOM(ON) VCOM = V+ or GND, Switch ON, See Figure 16 25°C 2.5 V 57 pF VI = V+ or GND, See Figure 16 25°C 2.5 V 2 pF BW RL = 50 Ω, Switch ON, See Figure 19 25°C 2.5 V 100 MHz OISO RL = 50 Ω, f = 1 MHz, Switch OFF, See Figure 20 25°C 2.5 V −64 dB XTALK RL = 50 Ω, f = 1 MHz, Switch ON, See Figure 21 25°C 2.5 V −64 dB THD RL = 600 Ω, CL = 50 pF, f = 20 Hz to 20 kHz, See Figure 23 25°C 2.5 V 0.020 % Digital input capacitance Bandwidth OFF isolation Crosstalk Total harmonic distortion CI Supply 25°C 0.001 Positive supply I+ VI = V+ or GND, Switch ON or OFF 2.7 V current Full (1) The algebraic convention, whereby the most negative value is a minimum and the most positive value is a maximum 0.05 0.15 µA A 9 W www.ti.com SCDS191 − MARCH 2005 Electrical Characteristics for 1.8-V Supply(1) V+ = 1.65 V to 1.95 V, TA = −40°C to 85°C (unless otherwise noted) PARAMETER TEST CONDITIONS SYMBOL TA V+ MIN TYP MAX UNIT Analog Switch Analog signal range VCOM, VNO, VNC Peak ON resistance rpeak ON-state resistance ron ON-state resistance match between channels ON-state resistance flatness NC, NO OFF leakage current NC, NO ON leakage current COM OFF leakage current COM ON leakage current ∆ron ron(flat) INO(OFF), INC(OFF) 0 0 ≤ (VNO or VNC) ≤ V+, ICOM = −2 mA, Switch ON, See Figure 13 25 °C VNO or VNC = 1.5 V, ICOM = −2 mA, Switch ON, See Figure 13 25°C VNO or VNC = 0.6 V, 1.5 V, ICOM = −2 mA, Switch ON, See Figure 13 0 ≤ (VNO or VNC) ≤ V+, ICOM = −2 mA, Switch ON, See Figure 13 VNO or VNC = 0.6 V, 1.5 V, ICOM = −2 mA, Switch ON, See Figure 13 25°C VNC or VNO = 0.3 V, VCOM = 1.65 V, Switch OFF, or See Figure 14 VNC or VNO = 1.65 V, VCOM = 0.3 V, 25°C Full Full 30 2.0 1.65 V 2.7 3.1 0.16 0.3 1.65 V 3 20 1.5 20 VNC or VNO = 1.65 V, VCOM = 0.3 V, Switch OFF, or See Figure 14 VNC or VNO = 0.3 V, VCOM = 1.65 V, 25°C nA −50 Full ICOM(OFF) −1 0V 50 0.1 −10 −20 1 10 1.5 Full nA −50 −20 50 1.5 20 1.95 V 25°C VNC or VNO = Open, VCOM = 0.3 V, Switch ON, or See Figure 15 VNC or VNO = Open, VCOM = 1.65 V, 25°C Full nA −50 Full −1 0V µA A 20 1.95 V Switch OFF, See Figure 14 Ω 25 −20 1.95 V 25°C Ω 3 Full VNC or VNO = 0.3 V, VCOM = Open, Switch ON, or See Figure 15 VNC or VNO = 1.65 V, VCOM = Open, Ω Ω 25°C Full V 0.3 Full INC(ON), INO(ON) ICOM(ON) 25 1.65 V 25°C VNC or VNO = 1.95 V to 0, ICOM(PWROFF) VCOM = 0 to 1.95 V, 5.5 1.65 V 25°C Switch OFF, See Figure 14 INO(PWROFF), VNC or VNO = 0 to 1.95 V, INC(PWROFF) VCOM = 1.95 V to 0, V+ 50 0.06 −10 −20 1 10 1.5 µA A 20 1.95 V nA Full −50 50 Full 1.5 5.5 V 0.6 V Digital Control Inputs (IN, EN)(2) Input logic high Input logic low Input leakage current VIH VIL IIH, IIL VI = 5.5 V or 0 Full 0 25°C −100 Full 1.95 V −100 25 100 100 nA (1) The algebraic convention, whereby the most negative value is a minimum and the most positive value is a maximum (2) All unused digital inputs of the device must be held at V+ or GND to ensure proper device operation. Refer to the TI application report, Implications of Slow or Floating CMOS Inputs, literature number SCBA004. 10 W www.ti.com SCDS191 − MARCH 2005 Electrical Characteristics for 1.8-V Supply(1) (continued) V+ = 1.65 V to 1.95 V, TA = −40°C to 85°C (unless otherwise noted) PARAMETER TEST CONDITIONS SYMBOL TA V+ MIN TYP MAX 5 10.5 20.5 UNIT Dynamic Turn-on time VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 17 25°C 1.8 V tON Full 1.65 V to 1.95 V Turn-off time VCOM = V+, RL = 50 Ω, CL = 35 pF, See Figure 17 25°C 1.8 V 7 tOFF Full 1.65 V to 1.95 V 5 Break-beforemake time VNC = VNO = V+, RL = 50 Ω, CL = 35 pF, See Figure 18 25°C 1.8 V 4 tBBM Full 1.65 V to 1.95 V 4 VGEN = 0, RGEN = 0, CL = 1 nF, See Figure 22 25°C 1.8 V 5 pC Charge injection QC 4.5 21 16.5 27.5 30 8.3 ns ns 15 16 ns NC, NO OFF capacitance CNC(OFF), CNO(OFF) VNC or VNO = V+ or GND, Switch OFF, See Figure 16 25°C 1.8 V 19 pF NC, NO ON capacitance CNC(ON), CNO(ON) VNC or VNO = V+ or GND, Switch ON, See Figure 16 25°C 1.8 V 57 pF COM OFF capacitance CCOM(OFF) VNC or VNO = V+ or GND, Switch OFF, See Figure 16 25°C 1.8 V 36 pF COM ON capacitance CCOM(ON) VCOM = V+ or GND, Switch ON, See Figure 16 25°C 1.8 V 57 pF Digital input capacitance CI VI = V+ or GND, See Figure 16 25°C 1.8 V 2.0 pF Bandwidth BW RL = 50 Ω, Switch ON, See Figure 19 25°C 1.8 V 100 MHz OFF isolation OISO RL = 50 Ω, f = 1 MHz, Switch OFF, See Figure 20 25°C 1.8 V −64 dB Crosstalk XTALK RL = 50 Ω, f = 1 MHz, Switch ON, See Figure 21 25°C 1.8 V −64 dB THD RL = 600 Ω, CL = 50 pF, f = 20 Hz to 20 kHz, See Figure 23 25°C 1.8 V 0.060 % Total harmonic distortion Supply 25°C 0.001 Positive I+ VI = V+ or GND, Switch ON or OFF 1.95 V supply current Full (1) The algebraic convention, whereby the most negative value is a minimum and the most positive value is a maximum 0.05 0.1 µA A 11 W www.ti.com SCDS191 − MARCH 2005 TYPICAL PERFORMANCE 1.6 3.5 TA = 255C V+ = 1.8 V 3 1.4 1.2 1.0 1 2 ron (Ω) ron (Ω) 2.5 V+ = 2.5 V 1.5 V+ = 3.3 V 1 0.8 TA = 855C TA = 255C TA = −405C 0.6 0.4 V+ = 5 V 0.5 0.2 0 0.0 0.0 0 0 0 1 2 3 VCOM (V) 4 5 0.5 Figure 1. ron vs VCOM 3 3.0 INO/NC(OFF) ICOM(OFF) INO/NC(ON) ICOM(ON) 40 Leakage (nA) 0.8 0.6 TA = 855C TA = 255C TA = −405C 0.4 0.2 0 1 2 3 4 5 30 20 10 0 −40 0.0 0 6 −20 0 20 40 60 80 100 TA (5C) VCOM (V) Figure 3. ron vs VCOM (V+ = 5 V) Figure 4. Leakage Current vs Temperature (V+ = 5.5 V) 20 25 TA = 25°C TA = 25°C 10 20 V+ = 5 V V+ = 3 V 0 tON/tOFF (ns) Charge Injection (QC) 2.5 50 1 1.0 −10 −20 −30 15 tOFF 10 tON 5 0 0 1 2 3 4 5 VCOM (V) Figure 5. Charge Injection (QC) vs VCOM 12 2 1.5 2.0 VCOM (V) Figure 2. ron vs VCOM (V+ = 3 V) 1.2 ron (Ω) 1 1.0 6 0 1 2 3 4 5 V+ (V) Figure 6. tON and tOFF vs Supply Voltage 6 W www.ti.com SCDS191 − MARCH 2005 TYPICAL PERFORMANCE 12 2.0 2 1.8 tOFF tON/tOFF (ns) 8 tON 6 4 2 VIH 1.6 Logic-Level Threshold 10 1.4 VIL 1.2 1.0 1 0.8 0.6 0.4 0.2 0 −60 0.0 0 −40 −20 0 20 TA (5C) 40 60 80 100 0 2 0 4 5 6 0 Crosstalk −10 −2 −20 −4 −30 Gain (dB) TA = 25°C −6 −8 −40 OFF Isolation −50 −60 −70 −10 −80 −12 0.1 1 10 100 1000 −90 0.1 10 1 Frequency (MHz) 100 1000 Frequency (MHz) Figure 9. Bandwidth (V+ = 5 V) Figure 10. OFF Isolation and Crosstalk (V+ = 5 V) 0.025 140 120 0.02 100 0.015 I+ (nA) THD + Noise (%) 3 V+ (V) Figure 8. Logic-Level Threshold vs V+ Figure 7. tON and tOFF vs Temperature (V+ = 5 V) Gain (dB) 1 V+ = 5 V 0.01 60 40 V+ = 3.3 V 0.005 80 20 0 10 100 1K Frequency (Hz) 10K 100K Figure 11. Total Harmonic Distortion (THD) vs. Frequency 0 −40 −20 0 20 40 60 80 100 TA (5C) Figure 12. Power Supply Current vs Temperature (V+ = 5 V) 13 W www.ti.com SCDS191 − MARCH 2005 PIN DESCRIPTION PIN NUMBER NAME 1 COM DESCRIPTION Common 2 EN 3 GND Enable control input Digital ground 4 GND Digital ground 5 IN Digital control to connect COM to NO or NC 6 NO Normally open 7 NC Normally closed 8 V+ Power supply PARAMETER DESCRIPTION SYMBOL DESCRIPTION VCOM Voltage at COM VNC Voltage at NC VNO Voltage at NO ron Resistance between COM and NC or COM and NO ports when the channel is ON rpeak Peak on-state resistance over a specified voltage range ∆ron Difference of ron between channels in a specific device ron(flat) Difference between the maximum and minimum value of ron in a channel over the specified range of conditions INC(OFF) Leakage current measured at the NC port, with the corresponding channel (NC to COM) in the OFF state under worst-case input and output conditions INC(PWROFF) Leakage current measured at the NC port during the power-off condition, V+ = 0 INO(OFF) Leakage current measured at the NO port, with the corresponding channel (NO to COM) in the OFF state under worst-case input and output conditions INO(PWROFF) Leakage current measured at the NO port during the power-off condition, V+ = 0 INC(ON) Leakage current measured at the NC port, with the corresponding channel (NC to COM) in the ON state and the output (COM) open INO(ON) Leakage current measured at the NO port, with the corresponding channel (NO to COM) in the ON state and the output (COM) open ICOM(ON) Leakage current measured at the COM port, with the corresponding channel (COM to NO or COM to NC) in the ON state and the output (NC or NO) open ICOM(OFF) Leakage current measured at the COM port, with the corresponding channel (COM to NO or COM to NC) in the OFF state and the output (NC or NO) open ICOM(PWROFF) Leakage current measured at the COM port during the power-off condition, V+ = 0 VIH Minimum input voltage for logic high for the control input (IN, EN) VIL Maximum input voltage for logic low for the control input (IN, EN) VI Voltage at the control input (IN, EN) IIH, IIL Leakage current measured at the control input (IN, EN) tON Turn-on time for the switch. This parameter is measured under the specified range of conditions and by the propagation delay between the digital control (IN) signal and analog output (COM, NC, or NO) signal when the switch is turning ON. tOFF Turn-off time for the switch. This parameter is measured under the specified range of conditions and by the propagation delay between the digital control (IN) signal and analog output (COM, NC, or NO) signal when the switch is turning OFF. tMBB Make-before-break time. This parameter is measured under the specified range of conditions and by the propagation delay between the output of two adjacent analog channels (NC and NO) when the control signal changes state. QC Charge injection is a measurement of unwanted signal coupling from the control (IN) input to the analog (NC, NO, or COM) output. This is measured in coulomb (C) and measured by the total charge induced due to switching of the control input. Charge injection, QC = CL × ∆VCOM, CL is the load capacitance, and ∆VCOM is the change in analog output voltage. 14 www.ti.com W SCDS191 − MARCH 2005 PARAMETER DESCRIPTION (continued) SYMBOL DESCRIPTION CNC(OFF) CNO(OFF) Capacitance at the NC port when the corresponding channel (NC to COM) is OFF CNC(ON) CNO(ON) Capacitance at the NC port when the corresponding channel (NC to COM) is ON CCOM(ON) Capacitance at the COM port when the corresponding channel (COM to NC or COM to NO) is ON CCOM(OFF) Capacitance at the COM port when the corresponding channel (COM to NC or COM to NO) is OFF CI Capacitance of control input (IN, EN) OISO OFF isolation of the switch is a measurement of OFF-state switch impedance. This is measured in dB in a specific frequency, with the corresponding channel (NC to COM or NO to COM) in the OFF state. XTALK Crosstalk is a measurement of unwanted signal coupling from an ON channel to an OFF channel (NC to NO or NO to NC). This is measured in a specific frequency and in dB. BW Bandwidth of the switch. This is the frequency in which the gain of an ON channel is −3 dB below the DC gain. THD Total harmonic distortion describes the signal distortion caused by the analog switch. This is defined as the ratio of root mean square (RMS) value of the second, third, and higher harmonic to the absolute magnitude of the fundamental harmonic. I+ Static power-supply current with the control (IN, EN) pin at V+ or GND Capacitance at the NO port when the corresponding channel (NO to COM) is OFF Capacitance at the NO port when the corresponding channel (NO to COM) is ON 15 W www.ti.com SCDS191 − MARCH 2005 PARAMETER MEASUREMENT INFORMATION V+ VNC NC COM + VCOM VNO NO Channel ON r on + IN or EN VI ICOM VCOM * VNO or VNC W I COM VI = VIH or VIL + GND Figure 13. ON-State Resistance (ron) V+ VNC NC COM + VNO NO VCOM + IN or EN VI OFF-State Leakage Current Channel OFF VI = VIH or VIL + GND Figure 14. OFF-State Leakage Current (INC(OFF), INO(OFF), ICOM(OFF), INO(PWROFF), ICOM(PWROFF)) V+ VNC NC + COM VNO NO VCOM ON-State Leakage Current Channel ON VI = VIH or VIL IN or EN VI + GND Figure 15. ON-State Leakage Current (ICOM(ON), INC(ON), INO(ON)) 16 W www.ti.com SCDS191 − MARCH 2005 V+ Capacitance Meter VNC NC VNO NO VBIAS = V+ or GND VI = V+ or GND VCOM COM VBIAS Capacitance is measured at NC, NO, COM, and IN inputs during ON and OFF conditions. VI IN or EN GND Figure 16. Capacitance (CI, CCOM(OFF), CCOM(ON), CNC(OFF), CNO(OFF), CNC(ON), CNO(ON)) V+ NC or NO VNC or VNO VCOM TEST RL CL VCOM tON 50 Ω 35 pF V+ tOFF 50 Ω 35 pF V+ COM NC or NO CL(2) RL IN or EN VI Logic Input(1) GND V+ Logic Input (VI) 50% 50% 0 tON Switch Output (VNC or VNO) tOFF 90% 90% (1) All input pulses are supplied by generators having the following characteristics: PRR ≤ 10 MHz, ZO = 50 Ω, tr < 5 ns, tf < 5 ns. (2) CL includes probe and jig capacitance. Figure 17. Turn-On (tON) and Turn-Off Time (tOFF) 17 W www.ti.com SCDS191 − MARCH 2005 V+ VCOM VI Logic Input (VI) VNC NC COM VNO CL(2) NO RL Switch Output CL(2) 0 VNC IN Logic Input(1) V+ 50% RL 0.8 VOUT 0.8 VOUT VNO GND tMBB VCOM = V+ RL = 50 Ω CL = 35 pF (1) All input pulses are supplied by generators having the following characteristics: PRR ≤ 10 MHz, ZO = 50 Ω, tr < 5 ns, tf < 5 ns. (2) CL includes probe and jig capacitance. Figure 18. Make-Before-Break Time (tMBB) V+ Network Analyzer 50 W VNC NC Channel ON: NC to COM COM Source Signal VCOM VI = V+ or GND NO Network Analyzer Setup IN or EN VI 50 W Source Power = 0 dBm (632-mV P-P at 50-W load) + GND DC Bias = 350 mV Figure 19. Bandwidth (BW) V+ Network Analyzer Channel OFF: NC to COM 50 W VNC NC VI = V+ or GND COM Source Signal 50 W VCOM NO Network Analyzer Setup IN or EN 50 W Source Power = 0 dBm (632-mV P-P at 50-W load) VI + GND DC Bias = 350 mV Figure 20. OFF Isolation (OISO) 18 W www.ti.com SCDS191 − MARCH 2005 V+ Network Analyzer Channel ON: NC to COM 50 W VNC Channel OFF: NO to COM NC VCOM Source Signal VNO NO IN or EN + Network Analyzer Setup 50 W VI 50 W VI = V+ or GND Source Power = 0 dBm (632-mV P-P at 50-W load) GND DC Bias = 350 mV Figure 21. Crosstalk (XTALK) V+ RGEN VGEN Logic Input (VI) OFF ON OFF V IL NC or NO COM + VIH VCOM ∆VCOM VCOM NC or NO CL(2) VI IN or EN Logic Input(1) VGEN = 0 to V+ RGEN = 0 CL = 1 nF QC = CL × ∆VCOM VI = VIH or VIL GND (1) All input pulses are supplied by generators having the following characteristics: PRR ≤ 10 MHz, ZO = 50 Ω, tr < 5 ns, tf < 5 ns. (2) CL includes probe and jig capacitance. Figure 22. Charge Injection (QC) VI = V+/2 or −V+/2 RL = 600 Ω fSOURCE = 20 Hz to 20 kHz CL = 50 pF Channel ON: COM to NO VSOURCE = V+ P-P V+/2 Audio Analyzer NO Source Signal COM CL(1) 600 W VI IN 600 W −V+/2 (1) CL includes probe and jig capacitance. Figure 23. Total Harmonic Distortion (THD) 19 PACKAGE OPTION ADDENDUM www.ti.com 3-Jun-2005 PACKAGING INFORMATION Orderable Device Status (1) Package Type Package Drawing Pins Package Eco Plan (2) Qty TS5A3154DCUR ACTIVE US8 DCU 8 3000 Pb-Free (RoHS) CU NIPDAU Level-1-260C-UNLIM TS5A3154DCURE4 ACTIVE US8 DCU 8 3000 Pb-Free (RoHS) CU NIPDAU Level-1-260C-UNLIM TS5A3154DCURE6 PREVIEW US8 DCU 8 3000 TBD Call TI Lead/Ball Finish MSL Peak Temp (3) Call TI (1) The marketing status values are defined as follows: ACTIVE: Product device recommended for new designs. LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect. NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design. PREVIEW: Device has been announced but is not in production. Samples may or may not be available. OBSOLETE: TI has discontinued the production of the device. (2) Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS) or Green (RoHS & no Sb/Br) - please check http://www.ti.com/productcontent for the latest availability information and additional product content details. TBD: The Pb-Free/Green conversion plan has not been defined. Pb-Free (RoHS): TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements for all 6 substances, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes. 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