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 TC1027
Linear Building Block - Quad Low Power Comparator and Voltage Reference
Features
* Combines Four Comparators and a Voltage Reference in a Single Package * Optimized for Single Supply Operation * Small Package: 16-Pin SOIC, 16-Pin QSOP or 16-Pin PDIP (Narrow) * Ultra Low Input Bias Current: Less than 100pA * Low Quiescent Current: 18A (Typ.) * Operates Down to VDD = 1.8V Min
General Description
The TC1027 is a mixed-function device combining four general purpose comparators and a voltage reference in a single 16-pin package. This increased integration allows the user to replace two packages, which saves space, lowers supply current, and increases system performance. The TC1027 is optimized for low supply voltage and very low supply current operation (18A typ), making it ideal for battery-operated applications. The comparators have rail-to-rail inputs and outputs which allows operation from low supply voltages with large input and output signal swings. Packaged in a 16-Pin QSOP, 16-Pin SOIC (0.150 wide) or 16-Pin PDIP, the TC1027 is ideal for applications requiring high integration, small size and low power.
Applications
* Power Management Circuits * Battery Operated Equipment * Consumer Products
Device Selection Table
Part Number TC1027CEPR TC1027CEQR TC1027CEOR Package 16-Pin PDIP 16-Pin QSOP 16-Pin SOIC Temperature Range -40C to +85C -40C to +85C -40C to +85C
Functional Block Diagram
OUTB OUTA 1 2 A VDD
TC1027
16 15
OUTC OUTD
D 14
16-Pin PDIP 16-Pin QSOP 16-Pin SOIC
OUTB OUTA VDD INAINA+ INBINB+ REF+
1 2 3 4 5 6 7 8 16 15 14
INA-
4
OUTC OUTD VSS IND+ INDINC+ INCGND
INA+
5 B 6 C
INB-
TC1027CEPR TC1027CEQR TC1027CEOR
13 12 11 10 9
INB+
7
REF+
8
Voltage Reference
2002 Microchip Technology Inc.
- - + +
-
-
Package Types
3
+
DS21284B-page 1
+
VSS
13
IND+
12
IND-
11 10
INC+ INC-
9
GND
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TC1027
1.0 ELECTRICAL CHARACTERISTICS
*Stresses above 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 conditions above those indicated in the operation sections of the specifications is not implied. Exposure to Absolute Maximum Rating conditions for extended periods may affect device reliability.
ABSOLUTE MAXIMUM RATINGS*
Supply Voltage ......................................................6.0V Voltage on Any Pin .......... (V SS - 0.3V) to (VDD + 0.3V) Junction Temperature....................................... +150C Operating Temperature Range............. -40C to +85C Storage Temperature Range .............. -55C to +150C
TC1027 ELECTRICAL SPECIFICATIONS
Electrical Characteristics: Typical values apply at 25C and VDD = 3.0V. Minimum and maximum values apply for TA = -40 to +85C, and VDD = 1.8V to 5.5V, unless otherwise specified. Symbol VDD IQ Comparator VICMR VOS IB VOH VOL CMRR PSRR ISRC Common Mode Input Voltage Range VSS - 0.2 Input Offset Voltage Input Bias Current Output High Voltage Output Low Voltage Common Mode Rejection Ratio Power Supply Rejection Ratio Output Source Current -5 -5 -- VDD - 0.3 -- 66 60 1 -- -- -- -- -- -- -- -- VDD + 0.2 +5 +5 100 -- 0.3 -- -- -- V mV mV pA V V dB dB mA VDD = 3V, VCM = 1.5V, TA = 25C TA = -40C to 85C TA = 25C, IN+,IN- = VDD to VSS RL = 10k to VSS RL = 10k to VDD TA = 25C, VDD = 5V VCM = VDD to VSS TA = 25C, VCM = 1.2V VDD = 1.8V to 5V IN+ = VDD , IN- = VSS, Output Shorted to VSS VDD = 1.8V IN+ = VSS, IN- = VDD, Output Shorted to VDD VDD = 1.8V 100mV Overdrive, CL = 100pF 10mV Overdrive, CL = 100pF Parameter Supply Voltage Supply Current Min 1.8 -- Typ -- 18 Max 5.5 26 Units V A All outputs unloaded Test Conditions
ISINK
Output Sink Current
2
--
--
mA
tPD1 tPD2 VREF IREF(SINK) CL(REF) EVREF eVREF
Response Time Response Time Reference Voltage Sink Current Load Capacitance Noise Voltage Noise Voltage Density
-- -- 1.176 50 50 -- -- --
4 6 1.200 -- -- -- 20 1.0
-- -- 1.224 -- -- 100 -- --
sec sec V A A PF VRMS V/Hz
Voltage Reference IREF(SOURCE) Source Current
100Hz to 100kHz 1kHz
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TC1027
2.0 PIN DESCRIPTION
The description of the pins are listed in Table 2-1.
TABLE 2-1:
Pin No. (16-Pin PDIP) (16-Pin QSOP) (16-Pin SOIC) 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16
PIN FUNCTION TABLE
Symbol
Description
OUTB OUTA VDD INAINA+ INBINB+ REF+ GND INCINC+ INDIND+ VSS OUTD OUTC
Comparator output. Comparator output. Positive power supply. Inverting comparator input. Non-Inverting comparator input. Inverting comparator input. Non-Inverting comparator input. Voltage reference output voltage. Voltage reference ground; must be tied to VSS. Inverting comparator input. Non-Inverting comparator input. Inverting comparator input. Non-Inverting comparator input. Negative power supply. Comparator output. Comparator output.
2002 Microchip Technology Inc.
DS21284B-page 3
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TC1027
3.0 DETAILED DESCRIPTION 4.0 TYPICAL APPLICATIONS
The TC1027 is one of a series of very low-power, linear building block products targeted at low-voltage, singlesupply applications. The TC1027 minimum operating voltage is 1.8V, and typical supply current is only 18A. It combines four comparators and a voltage reference in a single package. The TC1027 lends itself to a wide variety of applications, particularly in battery-powered systems. It Typically it finds application in power management, processor supervisory and interface circuitry.
4.1
External Hysteresis (Comparator)
3.1
Comparators
The TC1027 contains four comparators. The comparator's input range extends beyond both supply voltages by 200mV and the outputs will swing to within several millivolts of the supplies depending on the load current being driven. The comparators exhibit propagation delay and supply current which are largely independent of supply voltage. The low input bias current and offset voltage make them suitable for high impedance precision applications.
Hysteresis can be set externally with two resistors using positive feedback techniques (see Figure 4-1). The design procedure for setting external comparator hysteresis is as follows: 1. Choose the feedback resistor RC. Since the input bias current of the comparator is at most 100pA, the current through RC can be set to 100nA (i.e., 1000 times the input bias current) and retain excellent accuracy. The current through RC at the comparator's trip point is VR/ RC where VR is a stable reference voltage. Determine the hysteresis voltage (VHY) between the upper and lower thresholds. Calculate RA as follows:
2. 3.
3.2
Voltage Reference
GND (Pin 9) is connected to VSS (Pin 14) through the substrate of the integrated circuit. Large currents can flow between GND and V SS if the pins are not at the same voltage.
4. 5.
Choose the rising threshold voltage for VSRC (VTHR). Calculate RB as follows:
EQUATION 4-2:
1 R B = ---------------------------------------------------------V THR 1 1 -------------------- - ------ - ------V R x R A R A RC 6. Verify the formulas: VSRC rising: threshold

voltages
EQUATION 4-3:

1 1 1 V TH R = ( V R ) ( R A ) ------ + ------- + ------RA RB RC VSRC falling:

EQUATION 4-4:

V THF = V THR -
R A x V DD -----------------------RC
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DS21284B-page 4
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A 2.0% tolerance, internally biased, 1.20V bandgap voltage reference is included in the TC1027. It has a push pull output capable of sourcing and sinking at least 50A.
EQUATION 4-1:
VH Y R A = R C ---------VD D
with
these
TC1027
4.2 Precision Battery Monitor
Figure 4-2 is a precision battery low/battery dead monitoring circuit. Typically, the battery low output warns the user that a battery dead condition is imminent. Battery dead typically initiates a forced shutdown to prevent operation at low internal supply voltages (which can cause unstable system operation). The circuit of Figure 4-2 uses a single TC1027, one additional op amp, and only six external resistors. AMP 1 is a simple buffer while CMPTR1 and CMPTR2 provide precision voltage detection using VR as a reference. Resistors R2 and R4 set the detection threshold for BATT LOW while resistors R1 and R3 set the detection threshold for BATT FAIL. The component values shown assert BATT LOW at 2.2V (typical) and BATT FAIL at 2.0V (typical). Total current consumed by this circuit is typically 24A at 3V. Resistors R5 and R6 provide hysteresis for comparators CMPTR1 and CMPTR2, respectively. The value of the timing capacitor C1 must be small enough to allow CMPTR1 to discharge C1 to a diode voltage before the feedback signal from CMPTR2 (through R10) switches CMPTR1 to its high state and allows C1 to start an exponential charge through R5. Proper circuit action depends upon rapidly discharging C1 through the voltage set by R6, R9 and D2 to a final voltage of a small diode drop. Two propagation delays after the voltage on C1 drops below the level on the non-inverting input of CMPTR2, the output of CMPTR1 switches to the positive rail and begins to charge C1 through R5. The time delay which sets the output pulse width results from C1 charging to the reference voltage set by R6, R9 and D2, plus four comparator propagation delays. When the voltage across C1 charges beyond the reference, the output pulse returns to ground and the input is again ready to accept a trigger signal.
4.5
Oscillators and Pulse Width Modulators
4.3
32.768 kHz "Time of Day Clock" Crystal Controlled Oscillator
A very stable oscillator driver can be designed by using a crystal resonator as the feedback element. Figure 4-3 shows a typical application circuit using this technique to develop clock driver for a Time Of Day (TOD) clock chip. The value of RA and RB determine the DC voltage level at which the comparator trips - in this case onehalf of VDD. The RC time constant of RC and CA should be set several times greater than the crystal oscillator's period, which will ensure a 50% duty cycle by maintaining a DC voltage at the inverting comparator input equal to the absolute average age of the output signal.
4.4
Non-Retriggerable One Shot Multivibrator
Microchip's linear building block comparators adapt well to oscillator applications for low frequencies (less than 100kHz). Figure 4-5 shows a symmetrical square wave generator using a minimum number of components. The output is set by the RC time constant of R4 and C1, and the total hysteresis of the loop is set by R1, R2 and R3. The maximum frequency of the oscillator is limited only by the large signal propagation delay of the comparator in addition to any capacitive loading at the output which degrades the slew rate. To analyze this circuit, assume that the output is initially high. For this to occur, the voltage at the inverting input must be less than the voltage at the non-inverting input. Therefore, capacitor C1 is discharged. The voltage at the non-inverting input (VH) is:
Using two comparators, a non-retriggerable one shot multivibrator can be designed using the circuit configuration of Figure 4-4. A key feature of this design is that the pulse width is independent of the magnitude of the supply voltage because the charging voltage and the intercept voltage are a fixed percentage of VDD. In addition, this one shot is capable of pulse width with as much as a 99% duty cycle and exhibits input lockout to ensure that the circuit will not retrigger before the output pulse has completely timed out. The trigger level is the voltage required at the input to raise the voltage at node A higher than the voltage at node B, and is set by the resistive divider R4 and R10 and the impedance network composed of R1, R2 and R3. When the one shot has been triggered, the output of CMPTR2 is high, causing the reference voltage at the non-inverting input of CMPTR1 to go to V DD. This prevents any additional input pulses from disturbing the circuit until the output pulse has timed out.
EQUATION 4-5:
R2 ( V DD ) V H = -------------------------------------------[ R2 + ( R1 || R3 ) ] where, if R1 = R2 = R3, then:
EQUATION 4-6:
2 ( V DD ) V H = ------------------3
2002 Microchip Technology Inc.
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TC1027
Capacitor C1 will charge up through R4. When the voltage at the comparator's inverting input is equal to VH, the comparator output will switch. With the output at ground potential, the value at the non-inverting input terminal (V L) is reduced by the hysteresis network to a value given by: is basically the same as described for the free-running oscillator. If the input control voltage is moved above or below one-half VDD, the duty cycle of the output square wave will be altered. This is because the addition of the control voltage at the input has now altered the trip points. The equations for these trip points are shown in Figure 4-6 (see VH and VL). Pulse width sensitivity to the input voltage variations can be increased by reducing the value of R6 from 10k and conversely, sensitivity will be reduced by increasing the value of R6. The values of R1 and C1 can be varied to produce the desired center frequency.
EQUATION 4-7:
V DD V L = ---------3 Using the same resistors as before, capacitor C1 must now discharge through R4 toward ground. The output will return to a high state when the voltage across the capacitor has discharged to a value equal to VL. The period of oscillation will be twice the time it takes for the RC circuit to charge up to one half its final value. The period can be calculated from:
FIGURE 4-1:
COMPARATOR EXTERNAL HYSTERESIS CONFIGURATION
RC
EQUATION 4-8:
1 ----------------- = 2 ( 0.694 ) ( R4 ) ( C1 ) FREQ The frequency stability of this circuit should only be a function of the external component tolerances. Figure 4-6 shows the circuit for a pulse width modulator circuit. It is essentially the same as in Figure 4-4, but with the addition of an input control voltage. When the input control voltage is equal to one-half VDD, operation
VSRC
TC1027
RA
VDD + - VOUT 1/4
RB VR
FIGURE 4-2:
PRECISION BATTERY MONITOR
To System DC/DC Converter VDD VDD + TC1034 R2, 330k, 1% + CMPTR1 - BATTLOW 1/4 R4, 470k, 1% R5, 7.5M
AMP1 -
3V Alkaline
+
TC1027
VDD R1, 270k, 1% VR - CMPTR2 + 1/4 BATTFAIL
R6, 7.5M R3, 470k, 1%
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TC1027
FIGURE 4-3: 32.768 kHz "TIME OF DAY" CLOCK OSCILLATOR
32.768kHz
VDD
RA 150k
VDD 1/4 +
TC1027
VOUT RC
RB 150k
-
CA 100pF
1M Vper = 30.52sec
FIGURE 4-4:
NON-RETRIGGERABLE MULTIVIBRATOR
VDD
TC1027
IN
R3 1M R1
R4 1M A -
CMPTR1
R5 10M
R6 562k C C1 100pF
TC1025 -
CMPTR2
R7 1M OUT OUT VDD GND
100k R2 100k IN t0 GND B
+ D1 R10 61.9k
+ R8 C VDD GND
R9 243k
10M D2
FIGURE 4-5:
SQUARE WAVE GENERATOR
VDD R1 100k
TC1027
1/4 R4 VDD -
C1 + VH = VL =
R2 (VDD) R2 + (R1||R3)
R2 100k
R3 100k
(VDD) (R2||R3) R1 + (R2||R3) 1 FREQ = 2(0.694)(R4)(C1)
2002 Microchip Technology Inc.
DS21284B-page 7
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TC1027
FIGURE 4-6: PULSE WIDTH MONITOR
VDD R1 100k 1/4
VC
TC1027
R4 VH = VDD (R1R2R6 + R2R3R6) + VC (R1R2R3) R1R2R6 + R1R3R6 + R2R3R6 + R1R2R3 VDD (R2R3R6) + VC (R1R2R3) R1R2R6 + R1R3R6 + R2R3R6 + R1R2R3 1 2 (0.694) (R4) (C1)
R6 10k
VDD - C1 +
VL =
FREQ =
For Square Wave Generation Select R1 = R2 = R3 R3 100k VC = VDD 2
R2 100k
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TC1027
5.0
Note:
TYPICAL CHARACTERISTICS
The graphs and tables provided following this note are a statistical summary based on a limited number of samples and are provided for informational purposes only. The performance characteristics listed herein are not tested or guaranteed. In some graphs or tables, the data presented may be outside the specified operating range (e.g., outside specified power supply range) and therefore outside the warranted range.
Comparator Propagation Delay vs. Supply Voltage
7
DELAY TO RISING EDGE (sec) DELAY TO FALLING EDGE (sec)
Comparator Propagation Delay vs. Supply Voltage
7 6
DELAY TO RISING EDGE (sec)
Comparator Propagation Delay vs. Temperature
7 Overdrive = 100mV 6
TA = 25C CL = 100pF
TA = 25C CL = 100pF
6 Overdrive = 10mV
Overdrive = 10mV
5 4
5 4 Overdrive = 100mV Overdrive = 50mV
5
VDD = 5V VDD = 4V
3 2 1.5 2 2.5 3
Overdrive = 50mV
3 2
4
VDD = 2V VDD = 3V
3 1.5 2 2.5 3 3.5 4 4.5 5 5.5 -40C 25C SUPPLY VOLTAGE (V)
3.5
4
4.5
5
5.5
85C
SUPPLY VOLTAGE (V)
TEMPERATURE (C)
Comparator Propagation Delay vs. Temperature
7 DELAY TO FALLING EDGE (sec) Overdrive = 100mV 6 VDD - VOUT (V)
VDD = 5V
Comparator Output Swing vs. Output Source Current
2.5 2.0
VDD = 3V VDD = 1.8V
TA = 25C
Comparator Output Swing vs. Output Sink Current
2.5 2.0 VOUT - VSS (V)
TA = 25C
5
VDD = 4V VDD = 3V VDD = 2V
1.5 1.0
1.5 1.0
VDD = 3V VDD = 1.8V VDD = 5.5V
4
.5 0 25C TEMPERATURE (C) 85C 0 1
VDD = 5.5V
.5 0
3 -40C
3 2 4 ISOURCE (mA)
5
6
0
1
2
3
4
5
6
ISINK (mA)
60 TA = -40C 50 40 TA = 85C 30 20 Sinking 10 Sourcing 0 0 REFERENCE VOLTAGE (V) TA = 25C
1.240
VDD = 1.8V VDD = 3V VDD = 5.5V
SUPPLY AND REFERENCE VOLTAGES (V)
Comparator Output Short-Circuit Current vs. Supply Voltage
OUTPUT SHORT-CIRCUIT CURRENT (mA)
Reference Voltage vs. Load Current
Line Transient Response of VREF
4
VDD
1.220 1.200 1.180 1.160
VDD = 1.8V
3
Sinking
TA
=
-4
C 0
Sourcing
2
VREF
TA = 25C TA = 85C 6
VDD = 5.5V VDD = 3V
1
1.140 0 2 4
0 0 100 200 TIME (sec) 300 400
3 1 2 4 5 SUPPLY VOLTAGE (V)
6
8
10
LOAD CURRENT (mA)
2002 Microchip Technology Inc.
DS21284B-page 9
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TC1027
5.0 TYPICAL CHARACTERISTICS (CONTINUED)
Reference Voltage vs. Supply Voltage
1.25 REFERENCE VOLTAGE (V)
Supply Current vs. Supply Voltage
20 18 16 TA = 25C 14 12 10 TA = -40C TA = 85C
1.20
1.15
1.10
1.05 1 4 2 3 SUPPLY VOLTAGE (V) 5
SUPPLY CURRENT (A)
8 0 1 2 3 4 5 SUPPLY VOLTAGE (V) 6
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TC1027
6.0
6.1
PACKAGING INFORMATION
Package Marking Information
Package marking data not available at this time.
6.2
Taping Form
Component Taping Orientation for 16-Pin SOIC (Narrow) Devices
User Direction of Feed
PIN 1
W
P Standard Reel Component Orientation for TR Suffix Device
Carrier Tape, Reel Size, and Number of Components Per Reel
Package Carrier Width (W) Pitch (P) Part Per Full Reel Reel Size
16-Pin SOIC (N)
16 mm
8 mm
2500
13 in
Component Taping Orientation for 16-Pin QSOP (Narrow) Devices
User Direction of Feed
PIN 1
W
P Standard Reel Component Orientation for TR Suffix Device
Carrier Tape, Reel Size, Number of Components Per Reel and Reel Size
Package Carrier Width (W) Pitch (P) Part Per Full Reel Reel Size
16-Pin QSOP (N)
12 mm
8 mm
2500
13 in
2002 Microchip Technology Inc.
DS21284B-page 11
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TC1027
6.3 Package Dimensions
16-Pin PDIP (Narrow)
PIN 1
.270 (6.86) .240 (6.10)
.045 (1.14) .030 (0.76) .770 (19.56) .740 (18.80) .200 (5.08) .140 (3.56) .150 (3.81) .115 (2.92) .310 (7.87) .290 (7.37)
.040 (1.02) .020 (0.51)
.014 (0.36) .008 (0.20) .400 (10.16) .310 (7.87)
10 MAX.
.110 (2.79) .090 (2.29)
.070 (1.78) .045 (1.14)
.022 (0.56) .015 (0.38) Dimensions: inches (mm)
16-Pin QSOP (Narrow)
PIN 1
.157 (3.99) .150 (3.81) .244 (6.20) .228 (5.80)
.196 (4.98) .189 (4.80)
.010 (0.25) .004 (0.10) .069 (1.75) .053 (1.35) 8 MAX.
.010 (0.25) .007 (0.19) .050 (1.27) .016 (0.41) Dimensions: inches (mm)
.025 (0.635) TYP.
.012 (0.31) .008 (0.21)
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DS21284B-page 12
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TC1027
6.3 Package Dimensions (Continued)
16-Pin SOIC (Narrow)
PIN 1
.157 (3.99) .150 (3.81)
.244 (6.20) .228 (5.79)
.050 (1.27) TYP
.394 (10.00) .385 (9.78) .069 (1.75) .053 (1.35) .018 (0.46) .014 (0.36) .010 (0.25) .004 (0.10)
8 MAX. .050 (1.27) .016 (0.40)
.010 (0.25) .007 (0.18)
Dimensions: inches (mm)
2002 Microchip Technology Inc.
DS21284B-page 13
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TC1027
NOTES:
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DS21284B-page 14
2002 Microchip Technology Inc.
TC1027
Sales and Support
Data Sheets Products supported by a preliminary Data Sheet may have an errata sheet describing minor operational differences and recommended workarounds. To determine if an errata sheet exists for a particular device, please contact one of the following: 1. 2. 3. Your local Microchip sales office The Microchip Corporate Literature Center U.S. FAX: (480) 792-7277 The Microchip Worldwide Site (www.microchip.com)
Please specify which device, revision of silicon and Data Sheet (include Literature #) you are using. New Customer Notification System Register on our web site (www.microchip.com/cn) to receive the most current information on our products.
2002 Microchip Technology Inc.
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TC1027
NOTES:
DS21284B-page16
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TC1027
Information contained in this publication regarding device applications and the like is intended through suggestion only and may be superseded by updates. It is your responsibility to ensure that your application meets with your specifications. No representation or warranty is given and no liability is assumed by Microchip Technology Incorporated with respect to the accuracy or use of such information, or infringement of patents or other intellectual property rights arising from such use or otherwise. Use of Microchip's products as critical components in life support systems is not authorized except with express written approval by Microchip. No licenses are conveyed, implicitly or otherwise, under any intellectual property rights.
Trademarks The Microchip name and logo, the Microchip logo, FilterLab, KEELOQ, microID, MPLAB, PIC, PICmicro, PICMASTER, PICSTART, PRO MATE, SEEVAL and The Embedded Control Solutions Company are registered trademarks of Microchip Technology Incorporated in the U.S.A. and other countries. dsPIC, ECONOMONITOR, FanSense, FlexROM, fuzzyLAB, In-Circuit Serial Programming, ICSP, ICEPIC, microPort, Migratable Memory, MPASM, MPLIB, MPLINK, MPSIM, MXDEV, PICC, PICDEM, PICDEM.net, rfPIC, Select Mode and Total Endurance are trademarks of Microchip Technology Incorporated in the U.S.A. Serialized Quick Turn Programming (SQTP) is a service mark of Microchip Technology Incorporated in the U.S.A. All other trademarks mentioned herein are property of their respective companies. (c) 2002, Microchip Technology Incorporated, Printed in the U.S.A., All Rights Reserved.
Printed on recycled paper.
Microchip received QS-9000 quality system certification for its worldwide headquarters, design and wafer fabrication facilities in Chandler and Tempe, Arizona in July 1999 and Mountain View, California in March 2002. The Company's quality system processes and procedures are QS-9000 compliant for its PICmicro (R) 8-bit MCUs, KEELOQ(R) code hopping devices, Serial EEPROMs, microperipherals, non-volatile memory and analog products. In addition, Microchip's quality system for the design and manufacture of development systems is ISO 9001 certified.
2002 Microchip Technology Inc.
DS21284B-page 17
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WORLDWIDE SALES AND SERVICE
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4570 Westgrove Drive, Suite 160 Addison, TX 75001 Tel: 972-818-7423 Fax: 972-818-2924
China - Fuzhou
Microchip Technology Consulting (Shanghai) Co., Ltd., Fuzhou Liaison Office Unit 28F, World Trade Plaza No. 71 Wusi Road Fuzhou 350001, China Tel: 86-591-7503506 Fax: 86-591-7503521
EUROPE
Denmark
Microchip Technology Nordic ApS Regus Business Centre Lautrup hoj 1-3 Ballerup DK-2750 Denmark Tel: 45 4420 9895 Fax: 45 4420 9910
Detroit
Tri-Atria Office Building 32255 Northwestern Highway, Suite 190 Farmington Hills, MI 48334 Tel: 248-538-2250 Fax: 248-538-2260
China - Shanghai
Microchip Technology Consulting (Shanghai) Co., Ltd. Room 701, Bldg. B Far East International Plaza No. 317 Xian Xia Road Shanghai, 200051 Tel: 86-21-6275-5700 Fax: 86-21-6275-5060
Kokomo
2767 S. Albright Road Kokomo, Indiana 46902 Tel: 765-864-8360 Fax: 765-864-8387
France
Microchip Technology SARL Parc d'Activite du Moulin de Massy 43 Rue du Saule Trapu Batiment A - ler Etage 91300 Massy, France Tel: 33-1-69-53-63-20 Fax: 33-1-69-30-90-79
Los Angeles
18201 Von Karman, Suite 1090 Irvine, CA 92612 Tel: 949-263-1888 Fax: 949-263-1338
China - Shenzhen
Microchip Technology Consulting (Shanghai) Co., Ltd., Shenzhen Liaison Office Rm. 1315, 13/F, Shenzhen Kerry Centre, Renminnan Lu Shenzhen 518001, China Tel: 86-755-2350361 Fax: 86-755-2366086
New York
150 Motor Parkway, Suite 202 Hauppauge, NY 11788 Tel: 631-273-5305 Fax: 631-273-5335
Germany
Microchip Technology GmbH Gustav-Heinemann Ring 125 D-81739 Munich, Germany Tel: 49-89-627-144 0 Fax: 49-89-627-144-44
San Jose
Microchip Technology Inc. 2107 North First Street, Suite 590 San Jose, CA 95131 Tel: 408-436-7950 Fax: 408-436-7955
Hong Kong
Microchip Technology Hongkong Ltd. Unit 901-6, Tower 2, Metroplaza 223 Hing Fong Road Kwai Fong, N.T., Hong Kong Tel: 852-2401-1200 Fax: 852-2401-3431
Italy
Microchip Technology SRL Centro Direzionale Colleoni Palazzo Taurus 1 V. Le Colleoni 1 20041 Agrate Brianza Milan, Italy Tel: 39-039-65791-1 Fax: 39-039-6899883
Toronto
6285 Northam Drive, Suite 108 Mississauga, Ontario L4V 1X5, Canada Tel: 905-673-0699 Fax: 905-673-6509
India
Microchip Technology Inc. India Liaison Office Divyasree Chambers 1 Floor, Wing A (A3/A4) No. 11, O'Shaugnessey Road Bangalore, 560 025, India Tel: 91-80-2290061 Fax: 91-80-2290062
United Kingdom
Arizona Microchip Technology Ltd. 505 Eskdale Road Winnersh Triangle Wokingham Berkshire, England RG41 5TU Tel: 44 118 921 5869 Fax: 44-118 921-5820
03/01/02
(c)
DS21284B-page 18
2002 Microchip Technology Inc.
*B48212SD*


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