A1143LLHLT [ALLEGRO]

Analog Circuit, 1 Func, BICMOS, PDSO3, MINIATURE, SOT-23W, 3 PIN;
A1143LLHLT
型号: A1143LLHLT
厂家: ALLEGRO MICROSYSTEMS    ALLEGRO MICROSYSTEMS
描述:

Analog Circuit, 1 Func, BICMOS, PDSO3, MINIATURE, SOT-23W, 3 PIN

信息通信管理 光电二极管
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A1140, A1141, A1142, and A1143  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
Features and Benefits  
Chopper stabilization  
Description  
The A1140, A1141, A1142, and A1143 devices are sensitive,  
two-wire, unipolar, Hall effect switches that are factory-  
programmed at end-of-line to optimize magnetic switchpoint  
accuracy.Thesedevicesuseapatentedhighfrequencychopper-  
Low switchpoint drift over operating  
temperature range  
Low sensitivity to stress  
Factory programmed at end-of-line for optimized  
switchpoints  
On-chip protection  
stabilization technique, produced using the Allegro advanced  
BiCMOS wafer fabrication process, to achieve magnetic  
stability and to eliminate offset inherent in single-element  
devices exposed to harsh application environments.  
Supply transient protection  
Reverse-battery protection  
On-board voltage regulator  
3.5 to 24 V operation  
Commonly found in a number of automotive applications,  
these switches are utilized to sense seat track position,  
seat belt buckle presence, hood/trunk latching, and shift  
selector position. Two-wire unipolar switches, such as the  
A1140/41/42/43 family, are particularly advantageous in  
price-sensitive applications because they require one less  
wire for operation than do switches with the more traditional  
open-collector output. Additionally, the system designer  
inherently gains diagnostics because there is always output  
current flowing, which should be in either of two narrow  
ranges. Any current level not within these ranges indicates a  
fault condition. The A1140/41/42/43 family of switches also  
Packages: 3 pin SOT23W (suffix LH), and  
3 pin SIP (suffix UA)  
Continued on the next page…  
Not to scale  
Functional Block Diagram  
V+  
VCC  
Regulator  
To All Subcircuits  
Clock/Logic  
Amp  
0.01 uF  
Low-Pass  
Filter  
GND  
GND  
Package UA Only  
A1140-DS, Rev. 8  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
Description (continued)  
features on-chip transient protection and a Zener clamp to protect  
against overvoltage conditions on the supply line.  
and switch HIGH otherwise. The other differences in the switches  
are their defined low current levels and magnetic switchpoints.  
The output currents of the A1141 and A1143 switch HIGH in the  
presenceofasouth(+)polaritymagneticfieldofsufficientstrength,  
and switch LOW otherwise, as in the presence of a weak field or a  
north (–) polarity field. The other two devices in the family (A1140  
and A1142) have an opposite output: the currents switch LOW in  
thepresenceofasouth-polaritymagneticfieldofsufficientstrength,  
All versions are offered in two package styles. The LH is a SOT-  
23W,miniaturelow-profilepackageforsurface-mountapplications.  
The UA is a three-lead ultramini SIP for through-hole mounting.  
Each package is available in a lead (Pb) free version (suffix, –T)  
with100%mattetinplatedleadframe.Field-programmableversions  
also available: A1180, A1181, A1182, and A1183.  
Absolute Maximum Ratings  
Characteristic  
Symbol  
VCC  
Notes  
Rating  
28  
Units  
V
Supply Voltage  
Reverse Supply Voltage  
Magnetic Flux Density  
VRCC  
B
–18  
V
Unlimited  
–40 to 85  
–40 to 150  
165  
G
Range E  
Range L  
ºC  
ºC  
ºC  
ºC  
Operating Ambient Temperature  
TA  
Maximum Junction Temperature  
Storage Temperature  
TJ(max)  
Tstg  
–65 to 170  
Package LH, 3-pin SOT  
Package UA, 3-pin SIP  
3
NC  
1. VCC  
1. VCC  
2. GND  
3. GND  
1
2
2. No connection  
3. GND  
1
2
3
Allegro MicroSystems, Inc.  
115 Northeast Cutoff, Box 15036  
2
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
Product Selection Guide  
Operating Ambient  
Temperature, TA  
(°C)  
Supply Current at  
Low Output, ICC(L)  
(mA)  
Output Level in  
South (+) Field3  
Part Number  
Pb-Free1  
Packing2  
Package  
A1140EUATI-T4  
A1140LUATI-T4  
A1141EUATI-T4  
A1141LUATI-T4  
A1142ELHLT-T  
A1142EUA-T  
A1142EUATI-T4  
A1142LLHLT-T  
A1142LUA-T  
A1142LUATI-T4  
A1143ELHLT-T  
A1143EUA-T  
A1143EUATI-T4  
A1143LLHLT-T  
A1143LUA-T  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Tape and Reel, 2000 pieces/reel  
Tape and Reel, 2000 pieces/reel  
Tape and Reel, 2000 pieces/reel  
Tape and Reel, 2000 pieces/reel  
Tape and Reel, 3000 pieces/reel  
Bulk Bag, 500 pieces/bag  
Through Hole  
Through Hole  
Through Hole  
Through Hole  
Surface Mount  
–40 to 85  
–40 to 150  
–40 to 85  
–40 to 150  
Low  
2 to 5  
High  
–40 to 85  
–40 to 150  
–40 to 85  
–40 to 150  
Through Hole  
Surface Mount  
Through Hole  
Surface Mount  
Through Hole  
Surface Mount  
Through Hole  
Tape and Reel, 2000 pieces/reel  
Tape and Reel, 3000 pieces/reel  
Bulk Bag, 500 pieces/bag  
Low  
Tape and Reel, 2000 pieces/reel  
Tape and Reel, 3000 pieces/reel  
Bulk Bag, 500 pieces/bag  
5 to 6.9  
Tape and Reel, 2000 pieces/reel  
Tape and Reel, 3000 pieces/reel  
Bulk Bag, 500 pieces/bag  
High  
A1143LUATI-T4  
Tape and Reel, 2000 pieces/reel  
1Pb-based variants are being phased out of the product line.  
(a) Certain variants cited in this footnote are in production but have been determined to be NOT FOR NEW DESIGN. This classification indicates that  
sale of this device is currently restricted to existing customer applications. The device should not be purchased for new design applications because  
obsolescence in the near future is probable. Samples are no longer available. Status change: May 1, 2006. These variants include A1140EUATI,  
A1140LUATI, A1140LUATI, A1141EUA, A1141EUATI, A1141LLHLT, A1141LUA, A1141LUATI, A1142EUATI, A1142LUATI,A1142LLHLT, A1142LUA,  
A1143EUATI, A1143LUA , and A1143LUATI.  
(b) Certain variants cited in this footnote are in production but have been determined to be LAST TIME BUY. This classification indicates that the  
product is obsolete and notice has been given. Sale of this device is currently restricted to existing customer applications. The device should not be  
purchased for new design applications because of obsolescence in the near future. Samples are no longer available. Status date change October 31,  
2006. Deadline for receipt of LAST TIME BUY orders is April 27, 2007. These variants include: A1142ELHLT, A1142EUA, A1143ELHLT, A1143EUA, and  
A1143LLHLT.  
2Contact Allegro for additional packing options.  
3South (+) magnetic fields must be of sufficient strength.  
4Some restrictions may apply to certain types of sales. Contact Allegro for details.  
5The sensors listed in this footnote are available only in limited distribution. Interested customers should contact the appropriate sales person or  
field application engineer for more information on availability. These variants include: A1140ELHLT-T, A1140EUA-T, A1140LLHLT-T, A1140LUA-T,  
A1141ELHLT-T, A1141EUA-T, A1141LLHLT-T, and A1141LUA-T.  
Allegro MicroSystems, Inc.  
115 Northeast Cutoff, Box 15036  
3
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
ELECTRICAL CHARACTERISTICS over the operating voltage and temperature ranges, unless otherwise specified  
Characteristic  
Supply Voltage1  
Symbol  
Test Conditions  
Min.  
3.5  
2
Typ.  
Max.  
24  
Units  
V
VCC  
B>BOP for A1140; B<BRP for A1141  
B>BOP for A1142; B<BRP for A1143  
5
mA  
mA  
ICC(L)  
5
-–  
6.9  
Supply Current2  
B>BOP for A1141, A1143  
B<BRP for A1140, A1142  
ICC(H)  
IRCC  
12  
-–  
17  
mA  
Reverse Supply Current  
VRCC = –18 V  
28  
–1.6  
40  
mA  
V
Supply Zener Clamp Voltage VZSUPPLY ICC = ICC(L)(max) + 3 mA; TA = 25°C  
ICC(L)(max)  
+ 3 mA  
Supply Zener Clamp Current  
Output Slew Rate3  
IZSUPPLY VZSUPPLY = 28 V  
mA  
Capacitance of the oscilloscope performing the  
measurement = 20 pF  
di/dt  
36  
mA/μs  
Chopping Frequency  
Power-On Time3  
fC  
ton  
200  
25  
kHz  
s  
CBYPASS = 0.01 μF  
Power-On State5,6  
POS  
t < ton; VCC slew rate > 25 mV/s  
HIGH  
1VCC represents the generated voltage between the VCC pin and the GND pin.  
2Relative values of B use the algebraic convention, where positive values indicate south magnetic polarity, and negative values indicate north magnetic  
polarity; therefore greater B values indicate a stronger south polarity field (or a weaker north polarity field, if present).  
3Measured without bypass capacitor between VCC and GND. Use of a bypass capacitor results in slower current change.  
3Measured with and without bypass capacitor of 0.01 μF. Adding a larger bypass capacitor causes longer Power-On Time.  
5POS is defined as true only with a VCC slew rate of 25 mV/μs or greater. Operation with a VCC slew rate less than 25 mV/μs can permanently harm  
device performance.  
6POS is undefined for t > ton or BRP < B < BOP  
.
MAGNETIC CHARACTERISTICS over the operating voltage and temperature ranges, unless otherwise specified  
Characteristic  
Symbol  
Test Conditions  
Min.  
Typ.*  
Max.  
Units  
A1140, A1142 ICC = ICC(L)  
Operate Point  
BOP  
50  
80  
110  
G
A1141, A1143  
A1140, A1142 ICC = ICC(H)  
A1141, A1143 CC = ICC(L)  
BHYS = BOP – BRP  
ICC = ICC(H)  
Release Point  
Hysteresis  
BRP  
45  
5
65  
15  
105  
30  
G
G
I
BHYS  
*Typical data are for initial design estimations only, and assume optimum manufacturing and application conditions, such as TA = 25°C and VCC = 12 V.  
Performance may vary for individual units, within the specified maximum and minimum limits.  
Allegro MicroSystems, Inc.  
115 Northeast Cutoff, Box 15036  
4
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
Characteristic Data  
Supply Current (Low) versus Ambient Temperature  
at Various Levels of VCC  
(A1140 and A1141)  
Supply Current (Low) versus Ambient Temperature  
at Various Levels of VCC  
(A1142 and A1143)  
10  
10  
8
8
VCC  
3.5 V  
VCC  
3.5 V  
6
4
6
4
12.0 V  
24.0 V  
12.0 V  
24.0 V  
2
0
2
0
–50  
0
50  
100  
150  
200  
–50  
0
50  
100  
150  
200  
Ambient Temperature, TA (°C)  
Ambient Temperature, TA (°C)  
Supply Current (High) versus Ambient Temperature  
at Various Levels of VCC  
(A1140, A1141, A1142, and A1143)  
20  
18  
VCC  
3.5 V  
16  
14  
12.0 V  
24.0 V  
12  
10  
–50  
0
50  
100  
150  
200  
Ambient Temperature, TA (°C)  
Operate Point versus Ambient Temperature  
at Various Levels of VCC  
Switchpoint Hysteresis versus Ambient Temperature  
at Various Levels of VCC  
(A1140, A1141, A1142, and A1143)  
(A1140, A1141, A1142, and A1143)  
110  
100  
90  
10  
8
VCC  
3.5 V  
VCC  
6
4
3.5 V  
12.0 V  
24.0 V  
80  
12.0 V  
24.0 V  
70  
2
60  
50  
–50  
0
–50  
0
50  
100  
150  
200  
0
50  
100  
150  
200  
Ambient Temperature, TA (°C)  
Ambient Temperature, TA (°C)  
Allegro MicroSystems, Inc.  
115 Northeast Cutoff, Box 15036  
5
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
THERMAL CHARACTERISTICS may require derating at maximum conditions, see application information  
Characteristic  
Symbol  
Test Conditions*  
Value Units  
Package LH, 1-layer PCB with copper limited to solder pads  
228 ºC/W  
Package LH, 2-layer PCB with 0.463 in.2 of copper area each side  
connected by thermal vias  
RθJA  
Package Thermal Resistance  
110  
ºC/W  
Package UA, 1-layer PCB with copper limited to solder pads  
165 ºC/W  
*Additional thermal information available on Allegro Web site.  
Power Derating Curve  
25  
24  
23  
V
CC(max)  
22  
21  
20  
19  
18  
17  
16  
15  
14  
13  
12  
11  
10  
9
2-layer PCB, Package LH  
(RθJA = 110 ºC/W)  
1-layer PCB, Package UA  
(RθJA = 165 ºC/W)  
8
7
1-layer PCB, Package LH  
(RθJA = 228 ºC/W)  
6
5
4
V
CC(min)  
3
2
20  
40  
60  
80  
100  
120  
140  
160  
180  
Temperature (ºC)  
Power Dissipation versus Ambient Temperature  
1900  
1800  
1700  
1600  
1500  
1400  
1300  
1200  
1100  
1000  
900  
800  
700  
600  
500  
400  
300  
200  
100  
0
20  
40  
60  
80  
100  
120  
140  
160  
180  
Temperature (°C)  
Allegro MicroSystems, Inc.  
115 Northeast Cutoff, Box 15036  
6
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
Functional Description  
Operation  
The output, ICC, of the A1140 and A1142 devices switch low  
after the magnetic field at the Hall sensor exceeds the operate  
point threshold, BOP. When the magnetic field is reduced to  
below the release point threshold, BRP, the device output goes  
high. The differences between the magnetic operate and release  
point is called the hysteresis of the device, BHYS. This built-  
in hysteresis allows clean switching of the output even in the  
presence of external mechanical vibration and electrical noise.  
The A1141 and A1143 devices switch with opposite polarity for  
similar BOP and BRP values, in comparison to the A1140 and  
A1142 (see figure 1).  
I+  
I+  
ICC(H)  
ICC(H)  
ICC(L)  
ICC(L)  
0
0
B+  
B–  
B+  
B–  
BHYS  
BHYS  
(A) A1140, A1142  
(B) A1141, A1143  
Figure 1. Alternative switching behaviors are available in the A114x device family. On the horizontal axis, the B+ direction indicates  
increasing south polarity magnetic field strength, and the B– direction indicates decreasing south polarity field strength (including the  
case of increasing north polarity).  
Allegro MicroSystems, Inc.  
7
115 Northeast Cutoff, Box 15036  
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
Chopper Stabilization Technique  
The chopper stabilization technique uses a 200 kHz high  
frequency clock. For demodulation process, a sample and hold  
technique is used, where the sampling is performed at twice the  
chopper frequency (400 kHz). This high-frequency operation  
allows a greater sampling rate, which results in higher accuracy  
and faster signal-processing capability. This approach desensi-  
tizes the chip to the effects of thermal and mechanical stresses,  
and produces devices that have extremely stable quiescent Hall  
output voltages and precise recoverability after temperature  
cycling. This technique is made possible through the use of a  
BiCMOS process, which allows the use of low-offset, low-noise  
amplifiers in combination with high-density logic integration  
and sample-and-hold circuits.  
When using Hall-effect technology, a limiting factor for  
switchpoint accuracy is the small signal voltage developed  
across the Hall element. This voltage is disproportionally small  
relative to the offset that can be produced at the output of the  
Hall sensor. This makes it difficult to process the signal while  
maintaining an accurate, reliable output over the specified oper-  
ating temperature and voltage ranges.  
Chopper stabilization is a unique approach used to minimize  
Hall offset on the chip. The patented Allegro technique, namely  
Dynamic Quadrature Offset Cancellation, removes key sources  
of the output drift induced by thermal and mechanical stresses.  
This offset reduction technique is based on a signal modulation-  
demodulation process. The undesired offset signal is separated  
from the magnetic field-induced signal in the frequency domain,  
through modulation. The subsequent demodulation acts as a  
modulation process for the offset, causing the magnetic field-  
induced signal to recover its original spectrum at baseband, while  
the dc offset becomes a high-frequency signal. The magnetic-  
sourced signal then can pass through a low-pass filter, while the  
modulated dc offset is suppressed. This configuration is illus-  
trated in figure 2.  
The repeatability of magnetic field-induced switching is affected  
slightly by a chopper technique. However, the Allegro high-  
frequency chopping approach minimizes the affect of jitter and  
makes it imperceptible in most applications. Applications that  
are more likely to be sensitive to such degradation are those  
requiring precise sensing of alternating magnetic fields; for  
example, speed sensing of ring-magnet targets. For such applica-  
tions, Allegro recommends its digital sensor families with lower  
sensitivity to jitter. For more information on those devices,  
contact your Allegro sales representative.  
Regulator  
Clock/Logic  
Low-Pass  
Filter  
Hall Element  
Amp  
Figure 2. Chopper stabilization circuit (Dynamic Quadrature Offset Cancellation)  
Allegro MicroSystems, Inc.  
8
115 Northeast Cutoff, Box 15036  
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
Application Information  
Typical Application Circuit  
The A114x family of devices must be protected by an external  
bypass capacitor, CBYP, connected between the supply, VCC,  
and the ground, GND, of the device. CBYP reduces both external  
noise and the noise generated by the chopper-stabilization func-  
tion. As shown in figure 3, a 0.01 μF capacitor is typical.  
V+  
VCC  
B
A114x  
C
BYP  
Installation of CBYP must ensure that the traces that connect it to  
the A114x pins are no greater than 5 mm in length.  
0.01 μF  
GND  
GND  
B
All high-frequency interferences conducted along the supply  
lines are passed directly to the load through CBYP, and it serves  
only to protect the A114x internal circuitry. As a result, the load  
ECU (electronic control unit) must have sufficient protection,  
other than CBYP, installed in parallel with the A114x.  
A
A
B
Package UA Only  
Maximum separation 5 mm  
RSENSE  
A series resistor on the supply side, RS (not shown), in combina-  
tion with CBYP, creates a filter for EMI pulses.  
When determining the minimum VCC requirement of the A114x  
device, the voltage drops across RS and the ECU sense resistor,  
RSENSE, must be taken into consideration. The typical value for  
RSENSE is approximately 100 Ω.  
ECU  
Figure 3. Typical application circuit  
For additional general application information, visit the Allegro  
Web site at www. allegromicro.com.  
Allegro MicroSystems, Inc.  
115 Northeast Cutoff, Box 15036  
9
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
Power Derating  
Example: Reliability for VCC at TA=150°C, package UA, using  
minimum-K PCB.  
The device must be operated below the maximum junction  
temperature of the device, TJ(max). Under certain combinations of  
peak conditions, reliable operation may require derating sup-  
plied power or improving the heat dissipation properties of the  
application. This section presents a procedure for correlating  
factors affecting operating TJ. (Thermal data is also available on  
the Allegro MicroSystems Web site.)  
Observe the worst-case ratings for the device, specifically:  
RθJA=165°C/W, TJ(max) =165°C, VCC(max)= 24 V, and  
ICC(max) = 17 mA.  
Calculate the maximum allowable power level, PD(max). First,  
invert equation 3:  
The Package Thermal Resistance, RθJA, is a figure of merit sum-  
marizing the ability of the application and the device to dissipate  
heat from the junction (die), through all paths to the ambient air.  
Its primary component is the Effective Thermal Conductivity,  
K, of the printed circuit board, including adjacent devices and  
traces. Radiation from the die through the device case, RθJC, is  
relatively small component of RθJA. Ambient air temperature,  
TA, and air motion are significant external factors, damped by  
overmolding.  
ΔTmax = TJ(max) – TA = 165°C150°C = 15°C  
This provides the allowable increase to TJ resulting from internal  
power dissipation. Then, invert equation 2:  
PD(max) = ΔTmax ÷RθJA =1C÷165 °C/W=91mW  
Finally, invert equation 1 with respect to voltage:  
VCC(est) = PD(max) ÷ ICC(max) = 91mW÷17mA=5 V  
The result indicates that, at TA, the application and device can  
The effect of varying power levels (Power Dissipation, PD), can  
be estimated. The following formulas represent the fundamental  
relationships used to estimate TJ, at PD.  
dissipate adequate amounts of heat at voltages VCC(est)  
.
Compare VCC(est) to VCC(max). If VCC(est) VCC(max), then reli-  
able operation between VCC(est) and VCC(max) requires enhanced  
RθJA. If VCC(est) VCC(max), then operation between VCC(est) and  
VCC(max) is reliable under these conditions.  
PD = VIN  
I
(1)  
×
IN  
ΔT = PD  
R
(2)  
θJA  
×
TJ = TA + ΔT  
(3)  
For example, given common conditions such as: TA= 25°C,  
VCC = 12 V, ICC = 4 mA, and RθJA = 140 °C/W, then:  
PD = VCC  
I
= 12 V 4 mA = 48 mW  
×
×
CC  
ΔT = PD  
R
= 48 mW 140 °C/W = 7°C  
×
×
θJA  
TJ = TA + ΔT = 25°C + 7°C = 32°C  
A worst-case estimate, PD(max), represents the maximum allow-  
able power level (VCC(max), ICC(max)), without exceeding TJ(max)  
at a selected RθJA and TA.  
,
Allegro MicroSystems, Inc.  
115 Northeast Cutoff, Box 15036  
10  
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
Device Qualification Program  
Contact Allegro for information.  
EMC (Electromagnetic Compatibility) Requirements  
Contact your local representative for EMC results.  
Test Name  
ESD – Human Body Model  
ESD – Machine Model  
Conducted Transients  
Direct RF Injection  
Bulk Current Injection  
TEM Cell  
Reference Specification  
AEC-Q100-002  
AEC-Q100-003  
ISO 7637-2  
ISO 11452-7  
ISO 11452-4  
ISO 11452-3  
Allegro MicroSystems, Inc.  
115 Northeast Cutoff, Box 15036  
11  
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
Package LH, 3-Pin; (SOT-23W)  
3.00 .118  
2.70 .106  
0.15 [.006] M  
C
A
B
3.04 .120  
2.80 .110  
A
1.49 .059  
NOM  
8º  
0º  
B
B
A
3
0.20 .008  
0.08 .003  
2.10 .083  
1.85 .073  
A
0.96 .038  
NOM  
Preliminary dimensions, for reference only  
Dimensions in millimeters  
U.S. Customary dimensions (in.) in brackets, for reference only  
0.60 .024  
0.25 .010  
A
(reference JEDEC TO-236 AB, except case width and terminal tip-to-tip)  
Dimensions exclusive of mold flash, gate burrs, and dambar protrusions  
Exact case and lead configuration at supplier discretion within limits shown  
1
2
A
B
Hall element (not to scale)  
0.25 .010  
Active Area Depth 0.28 [.011]  
C
3X  
SEATING PLANE  
GAUGE PLANE  
SEATING  
PLANE  
0.10 [.004]  
C
0.50 .020  
0.30 .012  
3X  
1.17 .046  
0.75 .030  
0.20 [.008] M  
C A B  
0.15 .006  
0.00 .000  
0.95 .037  
1.90 .075  
Allegro MicroSystems, Inc.  
115 Northeast Cutoff, Box 15036  
12  
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  
Sensitive Two-Wire Chopper-Stabilized  
Unipolar Hall Effect Switches  
A1140, A1141,  
A1142, and A1143  
Package UA, 3-Pin SIP  
.164 4.17  
.159 4.04  
C
D
.0805 2.04  
NOM  
.062 1.57  
.058 1.47  
D
1.44  
.0565  
NOM  
.122 3.10  
.117 2.97  
B
.085 2.16  
MAX  
.031 0.79  
REF  
A
.640 16.26  
.600 15.24  
.017 0.44  
.014 0.35  
1
2
3
.019 0.48  
.014 0.36  
.050 1.27  
NOM  
Dimensions in inches  
Metric dimensions (mm) in brackets, for reference only  
A
Dambar removal protrusion (6X)  
Ejector mark on opposite side  
B
C
D
Active Area Depth .0195 [0.50] NOM  
Hall element (not to scale)  
The products described herein are manufactured under one or more of the following U.S. patents: 5,045,920; 5,264,783; 5,442,283; 5,389,889;  
5,581,179; 5,517,112; 5,619,137; 5,621,319; 5,650,719; 5,686,894; 5,694,038; 5,729,130; 5,917,320; and other patents pending.  
Allegro MicroSystems, Inc. reserves the right to make, from time to time, such departures from the detail specifications as may be required to  
permit improvements in the performance, reliability, or manufacturability of its products. Before placing an order, the user is cautioned to verify that  
the information being relied upon is current.  
Allegro products are not authorized for use as critical components in life-support devices or systems without express written approval.  
The information included herein is believed to be accurate and reliable. However, Allegro MicroSystems, Inc. assumes no responsibility for its  
use; nor for any infringement of patents or other rights of third parties which may result from its use.  
Copyright © 2004, 2006 Allegro MicroSystems, Inc.  
Allegro MicroSystems, Inc.  
115 Northeast Cutoff, Box 15036  
13  
Worcester, Massachusetts 01615-0036 (508) 853-5000  
www.allegromicro.com  

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