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APPLICATION NOTES AVAILABLE AN99 * AN115 * AN120 * AN124 * AN133 * AN134 * AN135 Low Noise/Low Power/2-Wire Bus X9429 Single Digitally Controlled Potentiometer (XDCPTM) FEATURES * Single Voltage Potentiometer * 64 Resistor Taps * 2-wire Serial Interface for write, read, and transfer operations of the potentiometer * Wiper Resistance, 150 Typical at 5V * Non-Volatile Storage of Multiple Wiper Positions * Power On Recall. Loads Saved Wiper Position on Power Up. * Standby Current < 5A Max * VCC : 2.7V to 5.5V Operation * 2.5K, 10K Total Pot Resistance * Endurance: 100, 000 Data Changes per Bit per Register * 100 yr. Data Retention * 14-Lead TSSOP, 16-Lead SOIC * Low Power CMOS DESCRIPTION The X9429 integrates a single digitally controlled potentiometer (XDCP) on a monolithic CMOS integrated circuit. The digital controlled potentiometer is implemented using 63 resistive elements in a series array. Between each element are tap points connected to the wiper terminal through switches. The position of the wiper on the array is controlled by the user through the 2-wire bus interface. The potentiometer has associated with it a volatile Wiper Counter Register (WCR) and a four non-volatile Data Registers that can be directly written to and read by the user. The contents of the WCR controls the position of the wiper on the resistor array though the switches. Powerup recalls the contents of the default data register (DR0) to the WCR. The XDCP can be used as a three-terminal potentiometer or as a two terminal variable resistor in a wide variety of applications including control, parameter adjustments, and signal processing. BLOCK DIAGRAM VCC VH/RH address data status 2-wire bus interface write read transfer inc / dec Bus Interface & Control Power On Recall Wiper Counter Register (WCR) Data Registers 4 Bytes wiper 10K 64-taps POT control VSS VL/RL VW/RW REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 1 of 21 X9429 DETAILED FUNCTIONAL DIAGRAM VCC Power On Recall DR0 DR1 10K 64--taps Control SCL SDA A3 A2 A0 WP INTERFACE AND CONTROL CIRCUITRY DR2 DR3 WIPER COUNTER REGISTER (WCR) RH/VH RL/VL RW/VW DATA VSS CIRCUIT LEVEL APPLICATIONS * Vary the gain of a voltage amplifier * Provide programmable dc reference voltages for comparators and detectors * Control the volume in audio circuits * Trim out the offset voltage error in a voltage amplifier circuit * Set the output voltage of a voltage regulator * Trim the resistance in Wheatstone bridge circuits * Control the gain, characteristic frequency and Q-factor in filter circuits * Set the scale factor and zero point in sensor signal conditioning circuits * Vary the frequency and duty cycle of timer ICs * Vary the dc biasing of a pin diode attenuator in RF circuits * Provide a control variable (I, V, or R) in feedback circuits SYSTEM LEVEL APPLICATIONS * Adjust the contrast in LCD displays * Control the power level of LED transmitters in communication systems * Set and regulate the DC biasing point in an RF power amplifier in wireless systems * Control the gain in audio and home entertainment systems * Provide the variable DC bias for tuners in RF wireless systems * Set the operating points in temperature control systems * Control the operating point for sensors in industrial systems * Trim offset and gain errors in artificial intelligent systems REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 2 of 21 X9429 PIN CONFIGURATION TSSOP NC NC NC A2 SCL SDA VSS 1 2 3 4 5 6 7 X9429 14 13 12 11 10 9 8 VCC RL/VL RH/VH RW/VW A3 A0 WP NC NC NC A2 SCL SDA NC VSS 1 2 3 4 5 6 7 8 X9429 SOIC 16 15 14 13 12 11 10 9 VCC NC RL/VL RH/VH RW/VW A3 A0 WP PIN ASSIGNMENTS TSSOP pin 1 2 3 4 5 6 7 8 9 10 11 12 13 14 SOIC pin 1 2 3 4 5 6 8 9 10 11 12 13 14 16 15 7 Symbol NC NC NC A2 SCL SDA VSS WP A0 A3 RW / VW RH / VH RL / VL VCC NC NC No Connect No Connect No Connect Brief Description Device Address for 2-wire bus. Serial Clock for 2-wire bus. Serial Data Input/Output for 2-wire bus. System Ground Hardware Write Protect Device Address for 2-wire bus. Device Address for 2-wire bus. Wiper Terminal of the Potentiometer. High Terminal of the Potentiometer. Low Terminal of the Potentiometer. System Supply Voltage No Connect No Connect PIN DESCRIPTIONS Host Interface Pins Serial Clock (SCL) The SCL input is used to clock data into and out of the X9429. Serial Data (SDA) SDA is a bidirectional pin used to transfer data into and out of the device. It is an open drain output and may be wire-ORed with any number of open drain or open REV 1.1.6 7/8/03 collector outputs. An open drain output requires the use of a pull-up resistor. For selecting typical values, refer to the guidelines for calculating typical values on the bus pull-up resistors graph. Device Address (A0, A2, A3) The Address inputs are used to set the least significant 3 bits of the 8-bit slave address. A match in the slave address serial data stream must be made with the Address input in order to initiate communication with the X9429. A maximum of 8 devices may occupy the 2-wire serial bus. Characteristics subject to change without notice. www.xicor.com 3 of 21 X9429 Potentiometer Pins RH/VH, RL/VL The RH/VH and RL/VL inputs are equivalent to the terminal connections on either end of a mechanical potentiometer. RW/VW The wiper outputs are equivalent to the wiper output of a mechanical potentiometer. Hardware Write Protect Input WP The WP pin when low prevents nonvolatile writes to the Data Registers. PRINCIPLES OF OPERATION The X9429 is a highly integrated microcircuit incorporating a resistor array and its associated registers and counters and the serial interface logic providing direct communication between the host and the XDCP potentiometers. Serial Interface The X9429 supports a bidirectional bus oriented protocol. The protocol defines any device that sends data onto the bus as a transmitter and the receiving device as the receiver. The device controlling the transfer is a master and the device being controlled is the slave. The master will always initiate data transfers and provide the clock for both transmit and receive operations. Therefore, the X9429 will be considered a slave device in all applications. Clock and Data Conventions Data states on the SDA line can change only during SCL LOW periods (tLOW). SDA state changes during SCL HIGH are reserved for indicating start and stop conditions. Start Condition All commands to the X9429 are preceded by the start condition, which is a HIGH to LOW transition of SDA while SCL is HIGH (tHIGH). The X9429 continuously monitors the SDA and SCL lines for the start condition and will not respond to any command until this condition is met. Stop Condition All communications must be terminated by a stop condition, which is a LOW to HIGH transition of SDA while SCL is HIGH. Acknowledge Acknowledge is a software convention used to provide a positive handshake between the master and slave devices on the bus to indicate the successful receipt of data. The transmitting device, either the master or the slave, will release the SDA bus after transmitting eight bits. The master generates a ninth clock cycle and during this period the receiver pulls the SDA line LOW to acknowledge that it successfully received the eight bits of data. The X9429 will respond with an acknowledge after recognition of a start condition and its slave address and once again after successful receipt of the command byte. If the command is followed by a data byte the X9429 will respond with a final acknowledge. Array Description The X9429 is comprised of a resistor array. The array contains 63 discrete resistive segments that are connected in series. The physical ends of the array are equivalent to the fixed terminals of a mechanical potentiometer (VH/RH and VL/RL inputs). At both ends of the array and between each resistor segment is a CMOS switch connected to the wiper (VW/RW) output. Within each individual array only one switch may be turned on at a time. These switches are controlled by the Wiper Counter Register (WCR). The six bits of the WCR are decoded to select, and enable, one of sixty-four switches. The WCR may be written directly, or it can be changed by transferring the contents of one of four associated Data Registers into the WCR. These Data Registers and the WCR can be read and written by the host system. Device Addressing Following a start condition the master must output the address of the slave it is accessing. The most significant four bits of the slave address are the device type identifier (refer to Figure 1). For the X9429 this is fixed as 0101[B]. REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 4 of 21 X9429 Figure 1. Slave Address Device Type Identifier Flow 1. ACK Polling Sequence Nonvolatile Write Command Completed Enter ACK Polling 0 1 0 1 A3 A2 0 A0 Issue START Device Address The next four bits of the slave address are the device address. The physical device address is defined by the state of the A0, A2, and A3 inputs. The X9429 compares the serial data stream with the address input state; a successful compare of all three address bits is required for the X9429 to respond with an acknowledge. The A0, A2, and A3 inputs can be actively driven by CMOS input signals or tied to VCC or VSS. Acknowledge Polling The disabling of the inputs, during the internal nonvolatile write operation, can be used to take advantage of the typical 5ms EEPROM write cycle time. Once the stop condition is issued to indicate the end of the nonvolatile write command the X9429 initiates the internal write cycle. ACK polling can be initiated immediately. This involves issuing the start condition followed by the device slave address. If the X9429 is still busy with the write operation no ACK will be returned. If the X9429 has completed the write operation an ACK will be returned, and the master can then proceed with the next operation. Instruction Structure The next byte sent to the X9429 contains the instruction and register pointer information. The four most significant bits are the instruction. The next four bits point to one of four associated registers. The format is shown below in Figure 2. Figure 2. Instruction Byte Format Register Select Issue Slave Address Issue STOP ACK Returned? YES NO Further Operation? YES Issue Instruction NO Issue STOP Proceed Proceed The four high order bits define the instruction. The next two bits (R1 and R0) select one of the four registers that is to be acted upon when a register oriented instruction is issued. Bits 0 and 1 are defined to be 0. Four of the seven instructions end with the transmission of the instruction byte. The basic sequence is illustrated in Figure 3. These two-byte instructions exchange data between the Wiper Counter Register and one of the Data Registers. A transfer from a Data Register to a Wiper Counter Register is essentially a write to a static RAM. The response of the wiper to this action will be delayed tWRL. A transfer from the Wiper Counter Register (current wiper position), to a Data Register is a write to nonvolatile memory and takes a minimum of tWR to complete. Four instructions require a three-byte sequence to complete. These instructions transfer data between the host and the X9429; either between the host and one of the Data Registers or directly between the host and the Wiper Counter Register. These instructions are: I3 I2 I1 I0 R1 R0 0 0 Instructions REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 5 of 21 X9429 Figure 3. Two-Byte Instruction Sequence SCL SDA S T A R T 0 1 0 1 A3 A2 0 A0 A C K I3 I2 I1 I0 R1 R0 0 0 A C K S T O P Read Wiper Counter Register (read the current wiper position of the selected pot), write Wiper Counter Register (change current wiper position of the selected pot), read Data Register (read the contents of the selected nonvolatile register) and write Data Register (write a new value to the selected Data Register). The sequence of operations is shown in Figure 4. The Increment/Decrement command is different from the other commands. Once the command is issued and the X9429 has responded with an acknowledge, Table 1. Instruction Set Instruction Read Wiper Counter Register Write Wiper Counter Register Read Data Register Write Data Register XFR Data Register to Wiper Counter Register XFR Wiper Counter Register to Data Register Increment/Decrement Wiper Counter Register Note: the master can clock the selected wiper up and/or down in one segment steps; thereby, providing a fine tuning capability to the host. For each SCL clock pulse (tHIGH) while SDA is HIGH, the selected wiper will move one resistor segment towards the VH/RH terminal. Similarly, for each SCL clock pulse while SDA is LOW, the selected wiper will move one resistor segment towards the VL/RL terminal. A detailed illustration of the sequence and timing for this operation are shown in Figures 5 and 6 respectively. I3 1 1 1 1 1 1 0 I2 0 0 0 1 1 1 0 Instruction Set I1 I0 R1 R0 0 1 1 0 0 1 1 1 0 1 0 1 0 0 0 0 0 0 X1 0 0 0 0 0 0 0 X0 0 0 0 0 0 0 0 Operation Read the contents of the Wiper Counter Register Write new value to the Wiper Counter Register Read the contents of the Data Register pointed to by R1-R0 Write new value to the Data Register pointed to by R1-R0 Transfer the contents of the Data Register pointed to by R1-R0 to its Wiper Counter Register Transfer the contents of the Wiper Counter Register to the Data Register pointed to by R1-R0 Enable Increment/decrement of the Wiper Counter Register 1/0 1/0 1/0 1/0 1/0 1/0 1/0 1/0 0 0 (1) 1/0 = data is one or zero REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 6 of 21 X9429 Figure 4. Three-Byte Instruction Sequence SCL SDA S T A R T 0 1 0 1 A3 A2 0 A0 A C K I3 I2 I1 I0 R1 R0 0 0 A C K 0 0 D5 D4 D3 D2 D1 D0 A C K S T O P Figure 5. Increment/Decrement Instruction Sequence SCL SDA S T A R T 0 1 0 1 A3 A2 0 A0 A C K I3 I2 I1 I0 R1 R0 0 0 A C K I N C 1 I N C 2 I N C n D E C 1 D E C n S T O P Figure 6. Increment/Decrement Timing Limits INC/DEC CMD Issued SCL tWRID SDA VW/RW Voltage Out REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 7 of 21 X9429 Figure 7. Acknowledge Response from Receiver SCL from Master 1 8 9 Data Output from Transmitter Data Output from Receiver START Acknowledge Figure 8. Detailed Potentiometer Block Diagram Serial Data Path From Interface Circuitry Register 0 8 Register 1 6 Serial Bus Input C o u n t e r D e c o d e VH/RH Parallel Bus Input Wiper Counter Register (WCR) Register 2 Register 3 If WCR = 00[H] then VW/RW = VL/RL If WCR = 3F[H] then VW/RW = VH/RH INC/DEC Logic UP/DN Modified SCL UP/DN CLK VL/RL VW/RW REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 8 of 21 X9429 DETAILED OPERATION The potentiometer has a Wiper Counter Register and four Data Registers. A detailed discussion of the register organization and array operation follows. Wiper Counter Register The X9429 contains a Wiper Counter Register. The Wiper Counter Register can be envisioned as a 6-bit parallel and serial load counter with its outputs decoded to select one of sixty-four switches along its resistor array. The contents of the WCR can be altered in four ways: it may be written directly by the host via the write Wiper Counter Register instruction (serial load); it may be written indirectly by transferring the contents of one of four associated Data Registers via the XFR Data Register instruction (parallel load); it can be modified one step at a time by the Increment/ Decrement instruction. Finally, it is loaded with the contents of its Data Register zero (DR0) upon powerup. The WCR is a volatile register; that is, its contents are lost when the X9429 is powered-down. Although the register is automatically loaded with the value in DR0 upon power-up, it should be noted this may be different from the value present at power-down. Data Registers The potentiometer has four nonvolatile Data Registers. These can be read or written directly by the host and data can be transferred between any of the four Data Registers and the Wiper Counter Register. It should be noted all operations changing data in one of these registers is a nonvolatile operation and will take a maximum of 10ms. If the application does not require storage of multiple settings for the potentiometer, these registers can be used as regular memory locations that could possibly store system parameters or user preference data. Register Descriptions Data Registers, (6-Bit), Nonvolatile D5 NV (MSB) D4 NV D3 NV D2 NV D1 NV D0 NV (LSB) Four 6-bit Data Registers for each XDCP. - {D5~D0}: These bits are for general purpose not volatile data storage or for storage of up to four different wiper values. The contents of Data Register 0 are automatically moved to the Wiper Counter Register on power-up. Wiper Counter Register, (6-Bit), Volatile WP5 V (MSB) WP4 V WP3 V WP2 V WP1 V WP0 V (LSB) One 6-bit wiper counter register for each XDCP. - {D5~D0}: These bits specify the wiper position of the respective XDCP. The Wiper Counter Register is loaded on power-up by the value in Data Register 0. The contents of the WCR can be loaded from any of the other Data Register or directly. The contents of the WCR can be saved in a DR. REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 9 of 21 X9429 Instruction Format Notes: (1) (2) (3) (4) (5) "MACK"/"SACK": stands for the acknowledge sent by the master/slave. "A3 ~ A0": stands for the device addresses sent by the master. "X": indicates that it is a "0" for testing purpose but physically it is a "don't care" condition. "I": stands for the increment operation, SDA held high during active SCL phase (high). "D": stands for the decrement operation, SDA held low during active SCL phase (high). Read Wiper Counter Register (WCR) S device type device T identifier addresses A R0101AA0A 32 0 T instruction wiper position S S opcode (sent by slave on SDA) A A WWWWWW C C 10010000K00PPPPPP K 543210 M A C K S T O P Write Wiper Counter Register (WCR) device S device type T identifier addresses A R0101AA0A 32 0 T wiper position instruction S S opcode (sent by master on SDA) A A WWWWWW C C 10100000K00PPPPPP K 543210 S A C K S T O P Read Data Register (DR) device S device type identifier addresses T A R0101AA0A 32 0 T instruction register S opcode addresses A C RR K10111000 wiper position/data S (sent by slave on SDA) A WWWWWW C 00PPPPPP K 543210 M A C K S T O P Write Data Register (DR) S device type device instruction register S T identifier addresses opcode addresses A A AA AC RR R0101 0 1100 00 32 0K 10 T wiper position/data S (sent by master on SDA) A WWWWWW C 00PPPPPP K 543210 S A C K S T HIGH-VOLTAGE O WRITE CYCLE P XFR Data Register (DR) to Wiper Counter Register (WCR) S device type device instruction register S T identifier addresses opcode addresses A A C RR R0101AA0A 1101 00 32 0K 10 T S A C K S T O P REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 10 of 21 X9429 XFR Wiper Counter Register (WCR) to Data Register (DR) S device type device T identifier addresses A R0101AA0A 32 0 T instruction register S opcode addresses A C RR K11101000 S A C K S T O P HIGH-VOLTAGE WRITE CYCLE Increment/Decrement Wiper Counter Register (WCR) S device type device T identifier addresses A R0101AA0A 32 0 T instruction increment/decrement S S opcode (sent by master on SDA) A A C I/ I/ C I/ I/ K00100000KDD. . . .DD S T O P SYMBOL TABLE Guidelines for Calculating Typical Values of Bus Pull-Up Resistors INPUTS Must be steady May change from Low to High May change from High to Low Don't Care: Changes Allowed N/A OUTPUTS Will be steady Will change from Low to High Will change from High to Low Changing: State Not Known Center Line is High Impedance 120 100 Resistance (K) 80 60 40 20 Min. Resistance 0 0 20 40 60 V RMIN = CC MAX =1.8K IOL MIN RMAX = tR CBUS WAVEFORM Max. Resistance 80 100 120 Bus Capacitance (pF) REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 11 of 21 X9429 ABSOLUTE MAXIMUM RATINGS Temperature under bias : ........................-65C to +135C Storage temperature: .............................-65C to +150C Voltage on SCL, SDA any address input with respect to VSS: ................................. -1V to +7V V = | (VH - VL) |.............................................................5V Lead temperature (soldering, 10 seconds). .............300C IW (10 seconds) .................................................. 6mA COMMENT Stresses above those listed under "Absolute Maximum Ratings" may cause permanent damage to the device. This is a stress rating only; functional operation of the device (at these or any other conditions above those listed in the operational sections of this specification) is not implied. Exposure to absolute maximum rating conditions for extended periods may affect device reliability. RECOMMENDED OPERATING CONDITIONS Temperature Commercial Industrial Min. 0C -40C Max. +70C +85C Device X9429 X9429-2.7 Supply Voltage (VCC) Limits 5V 10% 2.7V to 5.5V ANALOG CHARACTERISTICS (Over recommended operating conditions unless otherwise stated.) Limits Symbol Parameter End to End Resistance Tolerance Power rating IW RW VTERM Wiper current Wiper resistance Voltage on any VH/RH or VL/RL pin Noise Resolution Absolute (4) Min. Typ. Max. 20 50 3 Unit % mW mA V dBV % Test Conditions 25C, each pot Wiper current = 1mA, VCC = 5V Wiper current = 1mA, VCC = 3V VSS = 0V Ref: 1kHz Vw(n)(actual)--Vw(n)(expected) Vw(n + 1)--[Vw(n) + MI] 150 400 VSS -120 1.6 250 1000 VCC Linearity (1) 300 1 0.2 20 10/10/25 MI(3) MI(3) ppm/C ppm/C pF Relative Linearity (2) Temperature Coefficient of RTOTAL Ratiometric Temperature Coefficient CH/CL/CW Potentiometer Capacitances See Circuit #3, Spice Macromodel REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 12 of 21 X9429 D.C. OPERATING CHARACTERISTICS (Over the recommended operating conditions unless otherwise specified.) Limits Symbol ICC1 ICC2 ISB ILI ILO VIH VIL VOL Parameter VCC supply current (nonvolatile write) VCC supply current (move wiper, write, read) VCC current (standby) Input leakage current Output leakage current Input HIGH voltage Input LOW voltage Output LOW voltage Min. Typ. Max. 1 100 5 10 10 Unit mA A A A A V V V Test Conditions fSCL = 400kHz, SDA = Open, Other Inputs = VSS fSCL = 400kHz, SDA = Open, Other Inputs = VSS SCL = SDA = VCC, Addr. = VSS VIN = VSS to VCC VOUT = VSS to VCC VCC x 0.7 -0.5 VCC x 0.5 VCC x 0.1 0.4 IOL = 3mA Notes: (1) Absolute linearity is utilized to determine actual wiper voltage versus expected voltage as determined by wiper position when used as a potentiometer. (2) Relative linearity is utilized to determine the actual change in voltage between two successive tap positions when used as a potentiometer. It is a measure of the error in step size. (3) MI = RTOT/63 or (RH--RL)/63, single pot (4) Typical = individual array resolutions. ENDURANCE AND DATA RETENTION Parameter Minimum endurance Data retention Min. 100,000 100 Unit Data changes per bit per register Years CAPACITANCE Symbol CI/O CIN (5) (5) Test Input/output capacitance (SDA) Input capacitance (A0, A2,and A3 and SCL) Max. 8 6 Unit pF pF Test Conditions VI/O = 0V VIN = 0V POWER-UP TIMING Symbol tRVCC (6) Parameter VCC Power up ramp rate Min. 0.2 Typ. Max. 50 Unit V/msec POWER-UP AND POWER-DOWN REQUIREMENTS There are no restrictions on the power-up or power-down conditions of VCC and the voltage applied to the potentiometer pins provided that VCC is always more positive than or equal to VH, VL, and VW, i.e., VCC VH, VL, VW. The VCC ramp rate spec is alway in effect. Notes: (5) This parameter is periodically sampled and not 100% tested (6) Sample tested only. REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 13 of 21 X9429 A.C. TEST CONDITIONS Input pulse levels Input rise and fall times Input and output timing level VCC x 0.1 to VCC x 0.9 10ns VCC x 0.5 RH CH CW 25pF RW Circuit #3 SPICE Macro Model RTOTAL CL 10pF RL EQUIVALENT A.C. LOAD CIRCUIT 5V 1533 SDA Output 100pF 100pF 2.7V 10pF AC TIMING (Over recommended operating conditions) Symbol fSCL tCYC tHIGH tLOW tSU:STA tHD:STA tSU:STO tSU:DAT tHD:DAT tR tF tAA tDH TI tBUF tSU:WPA tHD:WPA Clock frequency Clock cycle time Clock high time Clock low time Start setup time Start hold time Stop setup time SDA data input setup time SDA data input hold time SCL and SDA rise time SCL and SDA fall time SCL low to SDA data output valid time SDA data output hold time Noise suppression time constant at SCL and SDA inputs Bus free time (prior to any transmission) WP, A0, A2, A3 setup time WP, A0, A2, A3 hold time 50 50 1300 0 0 Parameter Min. 100 2500 600 1300 600 600 600 100 30 Max. 400 Unit kHz ns ns ns ns ns ns ns ns 300 300 900 ns ns ns ns ns ns ns ns REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 14 of 21 X9429 HIGH-VOLTAGE WRITE CYCLE TIMING Symbol tWR Parameter High-voltage write cycle time (store instructions) Typ. 5 Max. 10 Unit ms XDCP TIMING Symbol tWRPO tWRL tWRID Note: Parameter Wiper response time after the third (last) power supply is stable Wiper response time after instruction issued (all load instructions) Wiper response time from an active SCL/SCK edge (increment/decrement instruction) Min. Max. 10 10 10 Unit s s s (8) A device must internally provide a hold time of at least 300ns for the SDA signal in order to bridge the undefined region of the falling edge of SCL. TIMING DIAGRAMS START and STOP Timing (START) tR SCL tSU:STA tHD:STA tR SDA tF tSU:STO tF (STOP) Input Timing tCYC SCL tLOW SDA tSU:DAT tHD:DAT tBUF tHIGH Output Timing SCL SDA tAA tDH REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 15 of 21 X9429 XDCP Timing (for All Load Instructions) (STOP) SCL SDA LSB tWRL VW/RW XDCP Timing (for Increment/Decrement Instruction) SCL SDA Wiper Register Address Inc/Dec tWRID Inc/Dec VW/RW Write Protect and Device Address Pins Timing (START) SCL (STOP) ... (Any Instruction) ... SDA tSU:WPA WP A0, A2 A3 ... tHD:WPA REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 16 of 21 X9429 APPLICATIONS INFORMATION Basic Configurations of Electronic Potentiometers VR +VR VW/RW I Three terminal Potentiometer; Variable voltage divider Two terminal Variable Resistor; Variable current Application Circuits Noninverting Amplifier VS + - VO VIN 317 R1 R2 R1 VO (REG) Voltage Regulator Iadj R2 VO = (1+R2/R1)VS VO (REG) = 1.25V (1+R2/R1)+Iadj R2 Offset Voltage Adjustment R1 VS 100K - + TL072 10K 10K +5V 10K VO R2 Comparator with Hysteresis VS - + VO VUL = {R1/(R1+R2)} VO(max) VLL = {R1/(R1+R2)} VO(min) } R1 } R2 17 of 21 REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. X9429 Application Circuits (continued) Attenuator C VS R1 - VS R3 R4 All RS = 10k + VO R2 R Filter + - VO R2 R1 VO = G VS -1/2 G +1/2 GO = 1 + R2/R1 fc = 1/(2pRC) Inverting Amplifier R1 R2 Equivalent L-R Circuit } VS } - + VO C1 VS R2 + - VO = G VS G = - R2/R1 ZIN R1 R3 ZIN = R2 + s R2 (R1 + R3) C1 = R2 + s Leq (R1 + R3) >> R2 Function Generator C - + R2 R1 - + } RA } RB frequency R1, R2, C amplitude RA, RB REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 18 of 21 X9429 PACKAGING INFORMATION 14-Lead Plastic, TSSOP, Package Type V .025 (.65) BSC .169 (4.3) .252 (6.4) BSC .177 (4.5) .193 (4.9) .200 (5.1) .047 (1.20) .0075 (.19) .0118 (.30) .002 (.05) .006 (.15) .010 (.25) Gage Plane 0 - 8 .019 (.50) .029 (.75) Detail A (20X) Seating Plane .031 (.80) .041 (1.05) See Detail "A" NOTE: ALL DIMENSIONS IN INCHES (IN PARENTHESES IN MILLIMETERS) REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 19 of 21 X9429 PACKAGING INFORMATION 16-Lead Plastic SOIC (300 Mil Body) Package Type S 0.290 (7.37) 0.299 (7.60) 0.393 (10.00) 0.420 (10.65) PIN 1 INDEX PIN 1 0.014 (0.35) 0.020 (0.51) 0.403 (10.2 ) 0.413 ( 10.5) (4X) 7 0.092 (2.35) 0.105 (2.65) 0.050 (1.27) 0.003 (0.10) 0.012 (0.30) 0.010 (0.25) 0.020 (0.50) X 45 0.050" Typical 0 - 8 0.0075 (0.19) 0.010 (0.25) 0.015 (0.40) 0.050 (1.27) 0.420" 0.050" Typical FOOTPRINT 0.030" Typical 16 Places NOTE: ALL DIMENSIONS IN INCHES (IN PARENTHESES IN MILLIMETERS) REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 20 of 21 X9429 Ordering Information X9429 Device Y P T V VCC Limits Blank = 5V 10% Temperature Range Blank = Commercial = 0C to +70C I = Industrial = -40C to +85C Package S = 16-Lead SOIC V = 14-Lead TSSOP Potentiometer Organization W= 10K Y= 2.5K *Note: P package only available as X9429WP16I-2.7 for prototyping. Other resistor values not available in package. LIMITED WARRANTY (c)Xicor, Inc. 2000 Patents Pending Devices sold by Xicor, Inc. are covered by the warranty and patent indemnification provisions appearing in its Terms of Sale only. Xicor, Inc. makes no warranty, express, statutory, implied, or by description regarding the information set forth herein or regarding the freedom of the described devices from patent infringement. Xicor, Inc. makes no warranty of merchantability or fitness for any purpose. Xicor, Inc. reserves the right to discontinue production and change specifications and prices at any time and without notice. Xicor, Inc. assumes no responsibility for the use of any circuitry other than circuitry embodied in a Xicor, Inc. product. No other circuits, patents, or licenses are implied. TRADEMARK DISCLAIMER: Xicor and the Xicor logo are registered trademarks of Xicor, Inc. AutoStore, Direct Write, Block Lock, SerialFlash, MPS, and XDCP are also trademarks of Xicor, Inc. All others belong to their respective owners. U.S. PATENTS Xicor products are covered by one or more of the following U.S. Patents: 4,326,134; 4,393,481; 4,404,475; 4,450,402; 4,486,769; 4,488,060; 4,520,461; 4,533,846; 4,599,706; 4,617,652; 4,668,932; 4,752,912; 4,829,482; 4,874,967; 4,883,976; 4,980,859; 5,012,132; 5,003,197; 5,023,694; 5,084,667; 5,153,880; 5,153,691; 5,161,137; 5,219,774; 5,270,927; 5,324,676; 5,434,396; 5,544,103; 5,587,573; 5,835,409; 5,977,585. Foreign patents and additional patents pending. LIFE RELATED POLICY In situations where semiconductor component failure may endanger life, system designers using this product should design the system with appropriate error detection and correction, redundancy and back-up features to prevent such an occurrence. Xicor's products are not authorized for use in critical components in life support devices or systems. 1. Life support devices or systems are devices or systems which, (a) are intended for surgical implant into the body, or (b) support or sustain life, and whose failure to perform, when properly used in accordance with instructions for use provided in the labeling, can be reasonably expected to result in a significant injury to the user. 2. A critical component is any component of a life support device or system whose failure to perform can be reasonably expected to cause the failure of the life support device or system, or to affect its safety or effectiveness. REV 1.1.6 7/8/03 www.xicor.com Characteristics subject to change without notice. 21 of 21 |
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