7
Maxim Integrated
MAX985/MAX986/MAX989/
MAX990/MAX993/MAX994
Micropower, Low-Voltage, UCSP/SC70,
Rail-to-Rail I/O Comparators
_______________Detailed Description
The MAX985/MAX986/MAX989/MAX990/MAX993/
MAX994 are single/dual/quad low-power, low-voltage
comparators. They have an operating supply voltage
range between 2.5V and 5.5V and consume only 11µA.
Their common-mode input voltage range extends 0.25V
beyond each rail. Internal hysteresis ensures clean out-
put switching, even with slow-moving input signals.
Large internal output drivers allow rail-to-rail output
swing with up to 8mA loads.
The output stage employs a unique design that mini-
mizes supply-current surges while switching, virtually
eliminating the supply glitches typical of many other
comparators. The MAX985/MAX989/MAX993 have a
push-pull output structure that sinks as well as sources
current. The MAX986/MAX990/MAX994 have an open-
drain output stage that can be pulled beyond V
CC
to an
absolute maximum of 6V above V
EE
.
Input Stage Circuitry
The devices’ input common-mode range extends from
-0.25V to (V
CC
+ 0.25V). These comparators may oper-
ate at any differential input voltage within these limits.
Input bias current is typically 1.0pA if the input voltage
is between the supply rails. Comparator inputs are pro-
tected from overvoltage by internal body diodes con-
nected to the supply rails. As the input voltage exceeds
the supply rails, these body diodes become forward
biased and begin to conduct. Consequently, bias cur-
rents increase exponentially as the input voltage
exceeds the supply rails.
Output Stage Circuitry
These comparators contain a unique output stage
capable of rail-to-rail operation with up to 8mA loads.
Many comparators consume orders of magnitude more
current during switching than during steady-state oper-
ation. However, with this family of comparators, the
supply-current change during an output transition is
extremely small. The
Typical Operating Characteristics
graph Supply Current vs. Output Transition Frequency
shows the minimal supply-current increase as the out-
put switching frequency approaches 1MHz. This char-
acteristic eliminates the need for power-supply filter
capacitors to reduce glitches created by comparator
switching currents. Another advantage realized in high-
speed, battery-powered applications is a substantial
increase in battery life.
__________Applications Information
Additional Hysteresis
MAX985/MAX989/MAX993
The MAX985/MAX989/MAX993 have ±3mV internal
hysteresis. Additional hysteresis can be generated with
three resistors using positive feedback (Figure 1).
Unfortunately, this method also slows hysteresis
response time. Use the following procedure to calcu-
late resistor values for the MAX985/MAX989/MAX993.
1) Select R3. Leakage current at IN is under 10nA, so
the current through R3 should be at least 1µA to
minimize errors caused by leakage current. The cur-
rent through R3 at the trip point is (V
REF
- V
OUT
) /
R3. Considering the two possible output states in
solving for R3 yields two formulas: R3 = V
REF
/ 1µA
or R3 = (V
REF
- V
CC
) / 1µA. Use the smaller of the
two resulting resistor values. For example, if V
REF
=
1.2V and V
CC
= 5V, then the two R3 resistor values
are 1.2M and 3.8M. Choose a 1.2M standard
value for R3.
2) Choose the hysteresis band required (V
HB
). For this
example, choose 50mV.
3) Calculate R1 according to the following equation:
R1 = R3 x (V
HB
/ V
CC
)
For this example, insert the values R1 = 1.2M x
(50mV / 5V) = 12k.
4) Choose the trip point for V
IN
rising (V
THR
; V
THF
is
the trip point for V
IN
falling). This is the threshold
voltage at which the comparator switches its output
from low to high as V
IN
rises above the trip point. For
this example, choose 3V.
V
CC
MAX985
MAX989
MAX993
OUT
R3
R1
R2
V
REF
V
EE
V
IN
V
CC
Figure 1. Additional Hysteresis (MAX985/MAX989/MAX993)
MAX985/MAX986/MAX989/
MAX990/MAX993/MAX994
Micropower, Low-Voltage, UCSP/SC70,
Rail-to-Rail I/O Comparators
8
Maxim Integrated
5) Calculate R2 as follows. For this example, choose an
8.2k standard value:
6) Verify trip voltages and hysteresis as follows:
MAX986/MAX990/MAX994
The MAX986/MAX990/MAX994 have ±3mV internal
hysteresis. They have open-drain outputs and require
an external pullup resistor (Figure 2). Additional hys-
teresis can be generated using positive feedback, but
the formulas differ slightly from those of the
MAX985/MAX989/MAX993.
Use the following procedure to calculate resistor
values:
1) Select R3 according to the formulas R3 = V
REF
/
500µA or R3 = (V
REF
- V
CC
) / 500µA - R4. Use the
smaller of the two resulting resistor values.
2) Choose the hysteresis band required (V
HB
). For this
example, choose 50mV.
3) Calculate R1 according to the following equation:
R1 = (R3 + R4) x (V
HB
/ V
CC
)
4) Choose the trip point for V
IN
rising (V
THR
; V
THF
is
the trip point for V
IN
falling). This is the threshold
voltage at which the comparator switches its output
from low to high as V
IN
rises above the trip point.
5) Calculate R2 as follows:
6) Verify trip voltages and hysteresis as follows:
Board Layout and Bypassing
Power-supply bypass capacitors are not typically need-
ed, but use 100nF bypass capacitors when supply
impedance is high, when supply leads are long,
or when excessive noise is expected on the supply
lines. Minimize signal trace lengths to reduce stray
capacitance.
V rising: V = V x R1 x
1
R1
V falling
IN THR REF
IN
:
++
+
=−
+
=−
1
2
1
34
1
34
RRR
VV
RxV
RR
Hysteresis V V
THF THR
CC
THR THF
R2 =
1
V
V
THR
REF
xR R R R1
1
1
1
34
−−
+
V rising: V = V x R1 x
1
R1
V falling
IN THR REF
IN
:
++
=−
=−
1
2
1
3
1
3
RR
VV
RxV
R
Hysteresis V V
THF THR
CC
THR THF
R2 =
1
V
V
R2 =
1
3.0V
1.2 x 12k
THR
REF
.
.
xR R R
kM
k
1
1
1
1
3
1
12
1
22
803
−−
−−
=
ΩΩ
V
EE
V
CC
OUT
R3
R2
R1
R4
V
REF
V
IN
V
CC
MAX986
MAX990
MAX994
Figure 2. Additional Hysteresis (MAX986/MAX990/MAX994)
9
Maxim Integrated
MAX985/MAX986/MAX989/
MAX990/MAX993/MAX994
Micropower, Low-Voltage, UCSP/SC70,
Rail-to-Rail I/O Comparators
Zero-Crossing Detector
Figure 3 shows a zero-crossing detector application.
The MAX985’s inverting input is connected to ground,
and its noninverting input is connected to a 100mV
P-P
signal source. As the signal at the noninverting input
crosses 0V, the comparator’s output changes state.
Logic-Level Translator
Figure 4 shows an application that converts 5V logic lev-
els to 3V logic levels. The MAX986 is powered by the 5V
supply voltage, and the pullup resistor for the MAX986’s
open-drain output is connected to the 3V supply voltage.
This configuration allows the full 5V logic swing without
creating overvoltage on the 3V logic inputs. For 3V to 5V
logic-level translation, simply connect the 3V supply to
V
CC
and the 5V supply to the pullup resistor.
MAX985
IN+
3
4
OUT
1
2
5
V
CC
100mV
V
CC
V
EE
IN-
MAX986
IN-
100k
100k
4
3
R
PULLUP
3V (5V)
LOGIC OUT
OUT
1
5
2
V
CC
5V (3V)
3V (5V)
V
EE
5V (3V) LOGIC IN
IN+
Figure 3. Zero-Crossing Detector Figure 4. Logic-Level Translator

MAX993ESD+

Mfr. #:
Manufacturer:
Maxim Integrated
Description:
Analog Comparators Quad uPower Comparator
Lifecycle:
New from this manufacturer.
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