MAX1044CPA [ROCHESTER]

SWITCHED CAPACITOR CONVERTER, 10 kHz SWITCHING FREQ-MAX, PDIP8, PLASTIC, DIP-8;
MAX1044CPA
型号: MAX1044CPA
厂家: Rochester Electronics    Rochester Electronics
描述:

SWITCHED CAPACITOR CONVERTER, 10 kHz SWITCHING FREQ-MAX, PDIP8, PLASTIC, DIP-8

开关 光电二极管
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MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
_______________General Description  
____________________________Features  
Miniature µMAX Package  
The MAX1044 and ICL7660 are monolithic, CMOS  
switched-capacitor voltage converters that invert, dou-  
ble, divide, or multiply a positive input voltage. They are  
pin compatible with the industry-standard ICL7660 and  
LTC1044. Operation is guaranteed from 1.5V to 10V with  
no external diode over the full temperature range. They  
deliver 10mA with a 0.5V output drop. The MAX1044  
has a BOOST pin that raises the oscillator frequency  
above the audio band and reduces external capacitor  
size requirements.  
1.5V to 10.0V Operating Supply Voltage Range  
98% Typical Power-Conversion Efficiency  
Invert, Double, Divide, or Multiply Input Voltages  
BOOST Pin Increases Switching Frequencies  
(MAX1044)  
No-Load Supply Current: 200µA Max at 5V  
No External Diode Required for Higher-Voltage  
The MAX1044/ICL7660 combine low quiescent current  
and high efficiency. Oscillator control circuitry and four  
power MOSFET switches are included on-chip.  
Applications include generating a -5V supply from a  
+5V logic supply to power analog circuitry. For applica-  
tions requiring more power, the MAX660 delivers up to  
100mA with a voltage drop of less than 0.65V.  
Operation  
______________Ordering Information  
PART  
TEMP. RANGE  
0°C to +70°C  
0°C to +70°C  
0°C to +70°C  
-40°C to +85°C  
PIN-PACKAGE  
8 Plastic DIP  
8 SO  
MAX1044CPA  
MAX1044CSA  
MAX1044C/D  
MAX1044EPA  
Dice*  
________________________Applications  
-5V Supply from +5V Logic Supply  
Personal Communications Equipment  
Portable Telephones  
8 Plastic DIP  
Ordering Information continued at end of data sheet.  
* Contact factory for dice specifications.  
_________________Pin Configurations  
Op-Amp Power Supplies  
EIA/TIA-232E and EIA/TIA-562 Power Supplies  
Data-Acquisition Systems  
TOP VIEW  
Hand-Held Instruments  
(N.C.) BOOST  
CAP+  
1
2
3
4
8
7
6
5
V+  
Panel Meters  
MAX1044  
ICL7660  
OSC  
LV  
GND  
__________Typical Operating Circuit  
CAP-  
V
OUT  
DIP/SO/µMAX  
INPUT  
SUPPLY  
V+ AND CASE  
V+  
CAP+  
VOLTAGE  
8
N.C.  
OSC  
1
7
MAX1044  
ICL7660  
LV  
CAP+  
2
6
ICL7660  
CAP-  
GND  
NEGATIVE  
OUTPUT  
VOLTAGE  
V
OUT  
V
GND  
OUT  
5
3
4
CAP-  
NEGATIVE VOLTAGE CONVERTER  
( ) ARE FOR ICL7660  
TO-99  
For pricing, delivery, and ordering information, please contact Maxim Direct  
19-4667; Rev 1; 7/94  
at 1-888-629-4642, or visit Maxim’s website at www.maximintegrated.com.  
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
ABSOLUTE MAXIMUM RATINGS  
Supply Voltage (V+ to GND, or GND to V  
)....................10.5V  
CERDIP (derate 8.00mW/°C above +70°C).................640mW  
TO-99 (derate 6.67mW/°C above +70°C)....................533mW  
Operating Temperature Ranges  
OUT  
Input Voltage on Pins 1, 6, and 7 .........-0.3V V (V+ + 0.3V)  
IN  
LV Input Current ..................................................................20µA  
Output Short-Circuit Duration (V+ 5.5V)..................Continuous  
MAX1044C_ _ /ICL7660C_ _ ..............................0°C to +70°C  
MAX1044E_ _ /ICL7660E_ _............................-40°C to +85°C  
MAX1044M_ _ /ICL7660M_ _ ........................-55°C to +125°C  
Storage Temperature Range............................-65°C to + 150°C  
Lead Temperature (soldering, 10sec) .............................+300°C  
Continuous Power Dissipation (T = +70°C)  
A
Plastic DIP (derate 9.09mW/°C above +70°C) ............727mW  
SO (derate 5.88mW/°C above +70°C).........................471mW  
µMAX (derate 4.1mW/°C above +70°C) ......................330mW  
Stresses beyond 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 beyond those indicated in the operational sections of the specifications is not implied. Exposure to  
absolute maximum rating conditions for extended periods may affect device reliability.  
ELECTRICAL CHARACTERISTICS  
(Circuit of Figure 1, V+ = 5.0V, LV pin = 0V, BOOST pin = open, I  
= 0mA, T = T  
to T  
, unless otherwise noted.)  
LOAD  
A
MIN  
MAX  
MAX1044  
MIN TYP MAX  
ICL7660  
MIN TYP MAX  
PARAMETER  
CONDITIONS  
UNITS  
µA  
T
A
T
A
T
A
T
A
= +25°C  
30 200  
200  
80 175  
225  
R = ,  
L
= 0°C to +70°C  
= -40°C to +85°C  
= -55°C to +125°C  
pins 1 and 7  
no connection,  
LV open  
Supply Current  
200  
250  
200  
250  
R = , pins 1 and 7 = V+ = 3V  
L
10  
R = 10kΩ, LV open  
3.0  
1.5  
10.0  
3.5  
L
Supply Voltage  
Range (Note 1)  
V
R = 10kΩ, LV to GND  
L
1.5  
10  
65 100  
130  
T = +25°C  
55 100  
120  
A
I = 20mA,  
L
T = 0°C to +70°C  
A
f
= 5kHz,  
OSC  
T = -40°C to +85°C  
A
130  
140  
LV open  
T = -55°C to +125°C  
A
150  
150  
Output Resistance  
Ω
T = +25°C  
A
325  
250  
f
f
= 2.7kHz (ICL7660),  
= 1kHz (MAX1044),  
OSC  
OSC  
T = 0°C to +70°C  
A
325  
300  
V+ = 2V, IL = 3mA,  
LV to GND  
T = -40°C to +85°C  
325  
300  
A
T = -55°C to +125°C  
A
400  
400  
V+ = 5V  
5
1
10  
C
= 1pF,  
OSC  
Oscillator Frequency  
Power Efficiency  
kHz  
LV to GND (Note 2)  
V+ = 2V  
R = 5kΩ, T = +25°C, f  
L
5kHz, LV open  
OSC  
Voltage Conversion Efficiency R = , T = +25°C, LV open  
95 98  
95 98  
%
%
A
97.0 99.9  
99.0 99.9  
L
A
Pin 1 = 0V  
Pin 1 = V+  
V+ = 2V  
3
Oscillator Sink or  
Source Current  
V
= 0V or V+, LV open  
µA  
OSC  
20  
1.0  
1.0  
MΩ  
kΩ  
Oscillator Impedance  
T = +25°C  
A
V+ = 5V  
100  
100  
Note 1: The Maxim ICL7660 and MAX1044 can operate without an external output diode over the full temperature and voltage  
ranges. The Maxim ICL7660 can also be used with an external output diode in series with pin 5 (cathode at V  
replacing the Intersil ICL7660. Tests are performed without diode in circuit.  
) when  
OUT  
Note 2: f  
is tested with C  
= 100pF to minimize the effects of test fixture capacitance loading. The 1pF frequency is correlat-  
OSC  
OSC  
ed to this 100pF test point, and is intended to simulate pin 7’s capacitance when the device is plugged into a test socket  
with no external capacitor. For this test, the LV pin is connected to GND for comparison to the original manufacturer’s  
device, which automatically connects this pin to GND for (V+ > 3V).  
2
Maxim Integrated  
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
__________________________________________Typical Operating Characteristics  
(V+ = 5V; C  
= 0.1µF; C1 = C2 = 10µF; LV = open; OSC = open; T = +25°C; unless otherwise noted.)  
A
BYPASS  
OUTPUT VOLTAGE and OUTPUT RIPPLE  
vs. LOAD CURRENT  
OUTPUT VOLTAGE and OUTPUT RIPPLE  
vs. LOAD CURRENT  
OUTPUT VOLTAGE and OUTPUT RIPPLE  
vs. LOAD CURRENT  
-2.0  
-1.5  
400  
800  
720  
-10  
-9  
700  
630  
560  
490  
-5.0  
-4.5  
-4.0  
A
OUTPUT VOLTAGE  
A
OUTPUT  
VOLTAGE  
OUTPUT  
B
350  
300  
250  
VOLTAGE  
C
-8  
640  
560  
480  
400  
320  
240  
160  
80  
A: MAX1044 with  
B
A: MAX1044 with  
BOOST = V+  
B: ICL7660  
C: MAX1044 with  
BOOST = OPEN  
A: MAX1044 with  
BOOST = V+  
B: ICL7660  
-7  
-6  
-5  
-4  
-3  
-2  
-1  
-3.5  
-3.0  
-2.5  
-2.0  
-1.5  
-1.0  
-0.5  
BOOST = V+  
B: ICL7660  
420  
350  
280  
C: MAX1044 with  
BOOST = OPEN  
-1.0 C: MAX1044 with  
BOOST = OPEN  
200  
150  
C
C
B
OUTPUT  
RIPPLE  
C
C
A
V+ = 10V  
LV = OPEN  
V+ = 5V  
LV = OPEN  
210  
140  
V+ = 2V  
LV = GND  
-0.5  
100  
B
B
A
50  
0
70  
0
A
OUTPUT RIPPLE  
OUTPUT RIPPLE  
0
0
0
0
0
1
2
3
4
5
6
7
8
9
10  
0
5
10 15 20 25 30 35 40  
LOAD CURRENT (mA)  
0
5
10 15 20 25 30 35 40  
LOAD CURRENT (mA)  
LOAD CURRENT (mA)  
EFFICIENCY and SUPPLY CURRENT  
vs. LOAD CURRENT  
EFFICIENCY and SUPPLY CURRENT  
vs. LOAD CURRENT  
EFFICIENCY and SUPPLY CURRENT  
vs. LOAD CURRENT  
10  
9
100  
90  
50  
45  
40  
35  
50  
45  
40  
35  
100  
90  
100  
90  
B, C  
A
A
EFFICIENCY  
EFFICIENCY  
EFFICIENCY  
B
8
80  
80  
80  
A: MAX1044 with  
C
A: MAX1044 with  
BOOST = V+  
B: ICL7660  
C: MAX1044 with  
BOOST = OPEN  
7
70  
60  
50  
40  
30  
20  
10  
70  
60  
50  
40  
30  
20  
10  
70  
60  
50  
40  
30  
20  
10  
BOOST = V+  
B: ICL7660  
6
5
30  
25  
30  
25  
C: MAX1044 with  
BOOST = OPEN  
SUPPLY CURRENT  
4
3
2
1
SUPPLY CURRENT 20  
SUPPLY CURRENT  
20  
15  
10  
5
15  
10  
5
V+ = 5V  
LV = OPEN  
V+ = 2V  
LV = GND  
V+ = 10V  
LV = OPEN  
0
0
0
0
0
0
0
1
2
3
4
5
6
7
8
9
10  
0
5
10 15 20 25 30 35 40  
LOAD CURRENT (mA)  
0
5
10 15 20 25 30 35 40  
LOAD CURRENT (mA)  
LOAD CURRENT (mA)  
EFFICIENCY  
vs. OSCILLATOR FREQUENCY  
OSCILLATOR FREQUENCY  
vs. EXTERNAL CAPACITANCE  
OSCILLATOR FREQUENCY  
vs. SUPPLY VOLTAGE  
100  
100,000  
100,000  
10,000  
1000  
MAX1044 with  
BOOST -V+  
90  
80  
70  
60  
50  
40  
30  
10,000  
1000  
ICL7660 and  
MAX1044 with  
BOOST = OPEN  
100  
10  
1
FROM TOP TO BOTTOM AT 5V  
MAX1044, BOOST = V+, LV = GND  
MAX1044, BOOST = V+, LV = OPEN  
ICL7660, LV = GND  
ICL7660, LV = OPEN  
MAX1044, BOOST = OPEN, LV = GND  
MAX1044, BOOST = OPEN, LV = OPEN  
EXTERNAL  
HCMOS  
OSCILLATOR  
0.1  
100  
1
2
3
4
5
5
10  
10  
10  
10  
10  
6x10  
1
10  
100  
C
1000 10,000 100,000  
(pF)  
1
2
3
4
5
6
7
8
9
10  
OSCILLATOR FREQUENCY (Hz)  
SUPPLY VOLTAGE (V)  
OSC  
Maxim Integrated  
3
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
____________________________Typical Operating Characteristics (continued)  
(V+ = 5V; C  
= 0.1µF; C1 = C2 = 10µF; LV = open; OSC = open; T = +25°C; unless otherwise noted.)  
A
BYPASS  
OSCILLATOR FREQUENCY  
vs. TEMPERATURE  
QUIESCENT CURRENT  
vs. OSCILLATOR FREQUENCY  
100  
80  
10,000  
A: MAX1044 with  
BOOST = V+  
B: ICL7600  
1000  
100  
10  
C: MAX1044 with  
BOOST = OPEN  
A
60  
40  
USING  
EXTERNAL  
CAPACITOR  
USING  
EXTERNAL  
HCMOS  
20  
B
OSCILLATOR  
C
0
-50  
1
10  
0
1
2
3
4
5
5
-25  
0
25  
50 75 100 125  
10  
10  
10  
10  
10 5x10  
TEMPERATURE (°C)  
OSCILLATOR FREQUENCY (Hz)  
QUIESCENT CURRENT  
vs. TEMPERATURE  
QUIESCENT CURRENT  
vs. SUPPLY VOLTAGE  
500  
400  
2000  
1000  
A
B
MAX1044 with  
BOOST = V+  
300  
200  
100  
10  
C
D
A: MAX1044, BOOST = V+, LV = GND  
B: MAX1044, BOOST = V+, LV = OPEN  
C: ICL7660 and MAX1044 with  
BOOST = OPEN, LV = GND;  
ABOVE 5V, MAX1044 ONLY  
D: ICL7660 and MAX1044 with  
BOOST = OPEN, LV = OPEN  
100  
0
1
ICL7660, MAX1044 with BOOST = OPEN  
0.1  
-50 -25  
0
25  
50  
75 100 125  
1
2
3
4
5
6
7
8
9
10  
TEMPERATURE (°C)  
SUPPLY VOLTAGE (V)  
OUTPUT RESISTANCE  
vs. SUPPLY VOLTAGE  
OUTPUT RESISTANCE  
vs. OSCILLATOR FREQUENCY  
OUTPUT RESISTANCE  
vs. TEMPERATURE  
200  
1000  
80  
70  
EXTERNAL  
HCMOS  
OSCILLATOR  
180  
160  
140  
900  
800  
700  
ICL7660,  
MAX1044 with  
BOOST = OPEN  
60  
50  
40  
120  
100  
80  
600  
500  
400  
300  
200  
100  
60  
40  
MAX1044 with  
BOOST = V+  
30  
20  
20  
0
0
10  
1
2
3
4
5
1
2
3
4
5
6
7
8
9
10  
10  
10  
FREQUENCY (Hz)  
10  
10  
-60 -40 -20  
0
20 40 60 80 100 120 140  
SUPPLY VOLTAGE (V)  
TEMPERATURE (°C)  
4
Maxim Integrated  
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
_____________________________________________________________ Pin Description  
PIN  
NAME  
FUNCTION  
BOOST  
(MAX1044)  
Frequency Boost. Connecting BOOST to V+ increases the oscillator frequency by a factor of six. When the  
oscillator is driven externally, BOOST has no effect and should be left open.  
1
N.C.  
(ICL7660)  
No Connection  
2
3
4
CAP+  
GND  
CAP-  
Connection to positive terminal of Charge-Pump Capacitor  
Ground. For most applications, the positive terminal of the reservoir capacitor is connected to this pin.  
Connection to negative terminal of Charge-Pump Capacitor  
Negative Voltage Output. For most applications, the negative terminal of the reservoir capacitor is  
connected to this pin.  
5
6
V
OUT  
Low-Voltage Operation. Connect to ground for supply voltages below 3.5V.  
ICL7660: Leave open for supply voltages above 5V.  
LV  
Oscillator Control Input. Connecting an external capacitor reduces the oscillator frequency. Minimize stray  
capacitance at this pin.  
7
8
OSC  
V+  
Power-Supply Positive Voltage Input. (1.5V to 10V). V+ is also the substrate connection.  
During the first half of each cycle, switches S1 & S3  
close and switches S2 & S4 open, which connects the  
bucket capacitor C1 across V+ and charges C1.  
V+  
C
BYPASS  
During the second half of each cycle, switches S2 & S4  
close and switches S1 & S3 open, which connects the  
positive terminal of C1 to ground and shifts the nega-  
tive terminal to VOUT. This connects C1 in parallel with  
the reservoir capacitor C2. If the voltage across C2 is  
smaller than the voltage across C1, then charge flows  
from C1 to C2 until the voltages across them are equal.  
During successive cycles, C1 will continue pouring  
charge into C2 until the voltage across C2 reaches  
- (V+). In an actual voltage inverter, the output is less  
than - (V+) since the switches S1–S4 have resistance  
and the load drains charge from C2.  
BOOST  
V+  
= 0.1µF  
EXTERNAL  
OSCILLATOR  
MAX1044  
CAP+ ICL7660 OSC  
R
L
C
C1  
10μF  
OSC  
GND  
LV  
CAP-  
V
OUT  
V
OUT  
C2  
10μF  
Additional qualities of the MAX1044/ICL7660 can be  
understood by using a switched-capacitor circuit  
model. Switching the bucket capacitor, C1, between  
the input and output of the circuit synthesizes a resis-  
tance (Figures 3a and 3b.)  
Figure 1. Maxim MAX1044/ICL7660 Test Circuit  
_______________Detailed Description  
When the switch in Figure 3a is in the left position,  
capacitor C1 charges to V+. When the switch moves to  
the right position, C1 is discharged to VOUT. The  
charge transferred per cycle is: ΔQ = C1(V+ - VOUT). If  
the switch is cycled at frequency f, then the resulting  
The MAX1044/ICL7660 are charge-pump voltage con-  
verters. They work by first accumulating charge in a  
bucket capacitor and then transfer it into a reservoir  
capacitor. The ideal voltage inverter circuit in Figure 2  
illustrates this operation.  
Maxim Integrated  
5
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
current is: I = f x ΔQ = f x C1(V+ - VOUT). Rewriting this  
equation in Ohm’s law form defines an equivalent resis-  
tance synthesized by the switched-capacitor circuit  
where:  
S1  
S2  
V+  
(V+ - V  
)
OUT  
I =  
C1  
1 / (f x C1)  
and  
1
C2  
R
=
S3  
S4  
EQUIV  
f x C1  
V
= -(V+)  
OUT  
where f is one-half the oscillator frequency. This resis-  
tance is a major component of the output impedance of  
switched-capacitor circuits like the MAX1044/ICL7660.  
As shown in Figure 4, the MAX1044/ICL7660 contain  
MOSFET switches, the necessary transistor drive cir-  
cuitry, and a timing oscillator.  
Figure 2. Ideal Voltage Inverter  
________________Design Information  
The MAX1044/ICL7660 are designed to provide a  
simple, compact, low-cost solution where negative or  
doubled supply voltages are needed for a few low-  
power components. Figure 5 shows the basic negative  
voltage converter circuit. For many applications, only  
two external capacitors are needed. The type of  
capacitor used is not critical.  
f
V+  
V
OUT  
Proper Use of the Low-Voltage (LV) Pin  
Figure 4 shows an internal voltage regulator inside the  
MAX1044/ICL7660. Use the LV pin to bypass this  
regulator, in order to improve low-voltage performance  
C1  
C2  
R
LOAD  
Figure 3a. Switched Capacitor Model  
V+  
pin 8  
CAP+  
pin 2  
S2  
S1  
1M  
BOOST  
R
EQUIV  
V+  
V
OUT  
Q
Q
pin 1  
1
÷ 2  
R
=
EQUIV  
f × C1  
OSC  
pin 7  
C2  
R
LOAD  
S3  
S4  
V
OUT  
pin 5  
GND  
pin 3  
CAP-  
pin 4  
LV  
pin 6  
Figure 4. MAX1044 and ICL7660 Functional Diagram  
Figure 3b. Equivalent Circuit  
6
Maxim Integrated  
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
CONNECTION  
FROM V+  
TO BOOST  
V+  
1
2
3
4
8
7
6
5
V
= -(V+)  
OUT  
V+  
1
2
3
4
8
7
6
5
C
BYPASS  
MAX1044  
ICL7660  
C1  
C2  
10µF  
MAX1044  
10µF  
10µF  
C
OSC  
*
V
= -(V+)  
OUT  
10µF  
*REQUIRED FOR V+ < 3.5V  
Figure 5. Basic Negative Voltage Converter  
Figure 6. Negative Voltage Converter with C  
and BOOST  
OSC  
and allow operation down to 1.5V. For low-voltage  
operation and compatibility with the industry-standard  
LTC1044 and ICL7660, the LV pin should be connect-  
ed to ground for supply voltages below 3.5V and left  
open for supply voltages above 3.5V.  
Figure 6 shows this connection. Higher frequency oper-  
ation lowers output impedance, reduces output ripple,  
allows the use of smaller capacitors, and shifts switch-  
ing noise out of the audio band. When the oscillator is  
driven externally, BOOST has no effect and should be  
left open. The BOOST pin should also be left open for  
normal operation.  
The MAX1044’s LV pin can be grounded for all operat-  
ing conditions. The advantage is improved low-voltage  
performance and increased oscillator frequency. The  
disadvantage is increased quiescent current and  
reduced efficiency at higher supply voltages. For  
Maxim’s ICL7660, the LV pin must be left open for  
supply voltages above 5V.  
Reducing the Oscillator Frequency Using COSC  
An external capacitor can be connected to the OSC pin  
to lower the oscillator frequency (Figure 6). Lower  
frequency operation improves efficiency at low load  
currents by reducing the IC’s quiescent supply current.  
It also increases output ripple and output impedance.  
This can be offset by using larger values for C1 and C2.  
When operating at low supply voltages with LV open,  
connections to the LV, BOOST, and OSC pins should  
be short or shielded to prevent EMI from causing  
oscillator jitter.  
Connections to the OSC pin should be short to prevent  
stray capacitance from reducing the oscillator frequency.  
Oscillator Frequency Considerations  
For normal operation, leave the BOOST and OSC pins  
of the MAX1044/ICL7660 open and use the nominal  
oscillator frequency. Increasing the frequency reduces  
audio interference, output resistance, voltage ripple,  
and required capacitor sizes. Decreasing frequency  
reduces quiescent current and improves efficiency.  
Overdriving the OSC Pin with an External Oscillator  
Driving OSC with an external oscillator is useful when  
the frequency must be synchronized, or when higher  
frequencies are required to reduce audio interference.  
The MAX1044/ICL7660 can be driven up to 400kHz.  
The pump and output ripple frequencies are one-half  
the external clock frequency. Driving the  
MAX1044/ICL7660 at a higher frequency increases the  
ripple frequency and allows the use of smaller  
capacitors. It also increases the quiescent current.  
Oscillator Frequency Specifications  
The MAX1044/ICL7660 do not have a precise oscillator  
frequency. Only minimum values of 1kHz and 5kHz for  
the MAX1044 and a typical value of 10kHz for the  
ICL7660 are specified. If a specific oscillator frequency  
is required, use an external oscillator to drive the OSC  
pin.  
The OSC input threshold is V+ - 2.5V when V+ 5V,  
and is V+ / 2 for V+ < 5V. If the external clock does not  
swing all the way to V+, use a 10kΩ pull-up resistor  
(Figure 7).  
Increasing Oscillator Frequency  
Using the BOOST Pin  
For the MAX1044, connecting the BOOST pin to the V+  
pin raises the oscillator frequency by a factor of about 6.  
Output Voltage Considerations  
The MAX1044/ICL7660 output voltage is not regulated.  
The output voltages will vary under load according to  
the output resistance. The output resistance is primarily  
Maxim Integrated  
7
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
switching noise and EMI may be generated. To reduce  
these effects:  
10kΩ  
REQUIRED  
FOR TTL  
V+  
1) Power the MAX1044/ICL7600 from a low-impedance  
source.  
2) Add a power-supply bypass capacitor with low  
effective series resistance (ESR) close to the IC  
between the V+ and ground pins.  
CMOS or  
TTL GATE  
1
2
3
4
8
7
6
5
V+  
MAX1044  
ICL7660  
3) Shorten traces between the IC and the charge-pump  
capacitors.  
10µF  
4) Arrange the components to keep the ground pins of  
the capacitors and the IC as close as possible.  
V
= -(V+)  
OUT  
10µF  
5) Leave extra copper on the board around the voltage  
converter as power and ground planes. This is  
easily done on a double-sided PC board.  
Figure 7. External Clocking  
Efficiency, Output Ripple,  
and Output Impedance  
The power efficiency of a switched-capacitor voltage  
converter is affected by the internal losses in the con-  
verter IC, resistive losses of the pump capacitors, and  
conversion losses during charge transfer between the  
capacitors. The total power loss is:  
a function of oscillator frequency and the capacitor  
value. Oscillator frequency, in turn, is influenced by  
temperature and supply voltage. For example, with a  
5V input voltage and 10µF charge-pump capacitors,  
the output resistance is typically 50Ω. Thus, the output  
voltage is about -5V under light loads, and decreases  
to about -4.5V with a 10mA load current.  
P  
= PINTERNAL +P  
+P  
+P  
CONVERSION  
LOSSES  
LOSS  
SWITCH  
LOSSES  
PUMP  
CAPACITOR  
LOSSES  
Minor supply voltage variations that are inconsequential  
to digital circuits can affect some analog circuits.  
Therefore, when using the MAX1044/ICL7660 for  
powering sensitive analog circuits, the power-supply  
rejection ratio of those circuits must be considered.  
The output ripple and output drop increase under  
heavy loads. If necessary, the MAX1044/ICL7660 out-  
put impedance can be reduced by paralleling devices,  
increasing the capacitance of C1 and C2, or connect-  
ing the MAX1044’s BOOST pin to V+ to increase the  
oscillator frequency.  
LOSSES  
The internal losses are associated with the IC’s internal  
functions such as driving the switches, oscillator, etc.  
These losses are affected by operating conditions such  
as input voltage, temperature, frequency, and connec-  
tions to the LV, BOOST, and OSC pins.  
The next two losses are associated with the output  
resistance of the voltage converter circuit. Switch losses  
occur because of the on-resistances of the MOSFET  
switches in the IC. Charge-pump capacitor losses  
occur because of their ESR. The relationship between  
these losses and the output resistance is as follows:  
Inrush Current and EMI Considerations  
During start-up, pump capacitors C1 and C2 must be  
charged. Consequently, the MAX1044/ICL7660 devel-  
op inrush currents during start-up. While operating,  
short bursts of current are drawn from the supply to C1,  
and then from C1 to C2 to replenish the charge drawn  
by the load during each charge-pump cycle. If the  
voltage converters are being powered by a high-  
impedance source, the supply voltage may drop too  
low during the current bursts for them to function prop-  
erly. Furthermore, if the supply or ground impedance is  
too high, or if the traces between the converter IC and  
charge-pump capacitors are long or have large loops,  
2
P
+ P  
= I  
x R  
OUT  
OUT  
PUMP  
SWITCH  
LOSSES  
CAPACITOR  
LOSSES  
where:  
1
R
+
OUT  
(f  
/ 2) x C1  
OSC  
4 2R  
+ ESR  
+ ESR  
C2  
(
)
SWITCHES  
C1  
and fOSC is the oscillator frequency.  
8
Maxim Integrated  
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
The first term is the effective resistance from the  
oscillator to 400Hz by connecting a 100pF capacitor to  
OSC reduces the quiescent current to about 15µA.  
Maintaining 20mA output current capability requires  
increasing the bucket and reservoir capacitors to  
100µF.  
switched-capacitor circuit.  
Conversion losses occur during the transfer of charge  
between capacitors C1 and C2 when there is a voltage  
difference between them. The power loss is:  
Note that lower capacitor values can be used for lower  
output currents. For example, setting the oscillator to  
40Hz by connecting a 1000pF capacitor to OSC pro-  
vides the highest efficiency possible. Leaving the bucket  
and reservoir capacitors at 100µF gives a maximum  
IOUT of 2mA, a no-load quiescent current of 10µA, and  
a power conversion efficiency of 98%.  
1
2
2
2
P
=
C1 (V+) V  
+
CONV.LOSS  
OUT  
1
2
2
C2  
V
2V  
V
x f  
/ 2  
RIPPLE  
OUT RIPPLE  
OSC  
Increasing Efficiency  
Efficiency can be improved by lowering output voltage  
ripple and output impedance. Both output voltage rip-  
ple and output impedance can be reduced by using  
large capacitors with low ESR.  
General Precautions  
1) Connecting any input terminal to voltages greater  
than V+ or less than ground may cause latchup. Do  
not apply any input sources operating from external  
supplies before device power-up.  
The output voltage ripple can be calculated by noting  
that the output current is supplied solely from capacitor  
C2 during one-half of the charge-pump cycle.  
2) Never exceed maximum supply voltage ratings.  
3) Do not connect C1 and C2 with the wrong polarity.  
1
4) Do not short V+ to ground for extended periods with  
supply voltages above 5.5V present on other pins.  
V
+ 2 x ESR  
I
RIPPLE  
C2 OUT  
2 x f  
x C2  
OSC  
5) Ensure that VOUT (pin 5) does not go more positive  
than GND (pin 3). Adding a diode in parallel with  
C2, with the anode connected to VOUT and cathode  
to LV, will prevent this condition.  
Slowing the oscillator frequency reduces quiescent cur-  
rent. The oscillator frequency can be reduced by con-  
necting a capacitor to the OSC pin.  
Reducing the oscillator frequency increases the ripple  
voltage in the MAX1044/ICL7660. Compensate by  
increasing the values of the bucket and reservoir  
capacitors. For example, in a negative voltage converter,  
the pump frequency is around 4kHz or 5kHz. With the  
recommended 10µF bucket and reservoir capacitors,  
the circuit consumes about 70µA of quiescent current  
while providing 20mA of output current. Setting the  
________________Application Circuits  
Negative Voltage Converter  
Figure 8 shows a negative voltage converter, the most  
popular application of the MAX1044/ICL7660. Only two  
external capacitors are needed. A third power-supply  
bypass capacitor is recommended (0.1µF to 10µF)  
V+  
1
2
3
4
8
7
6
5
1
2
3
4
8
7
6
5
V+  
BOOST  
MAX1044  
ICL7660  
C
BYPASS  
0.1µF  
V
= 2(V+) - 2V  
D
OUT  
MAX1044  
ICL7660  
C1  
10µF  
C1  
C2  
LV  
V
= -(V+)  
OUT  
C2  
10µF  
Figure 9. Voltage Doubler  
Figure 8. Negative Voltage Converter with BOOST and LV  
Connections  
Maxim Integrated  
9
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
V+  
V+  
1
2
3
4
8
7
6
5
1
2
3
4
8
7
6
5
V
= -(V+)  
OUT  
MAX1044  
ICL7660  
MAX1044  
ICL7660  
C3  
C1  
10µF  
LV  
C1  
LV  
V
= 2(V+) - 2V  
C4  
OUT  
D
1
2
V
=
V+  
OUT  
C2  
10µF  
C2  
Figure 10. Voltage Divider  
Figure 11. Combined Positive and Negative Converter  
capacitors for the doubled positive voltage. This circuit  
has higher output impedances resulting from the use of  
a common charge-pump driver.  
Positive Voltage Doubler  
Figure 9 illustrates the recommended voltage doubler  
circuit for the MAX1044/ICL7660. To reduce the voltage  
drops contributed by the diodes (VD), use Schottky  
diodes. For true voltage doubling or higher output cur-  
rents, use the MAX660.  
Cascading Devices  
Larger negative multiples of the supply voltage can be  
obtained by cascading MAX1044/ICL7660 devices  
(Figure 12). The output voltage is nominally VOUT = -n(V+)  
where n is the number of devices cascaded. The out-  
put voltage is reduced slightly by the output resistance  
of the first device, multiplied by the quiescent current of  
the second, etc. Three or more devices can be cascaded  
in this way, but output impedance rises dramatically.  
For example, the output resistance of two cascaded  
MAX1044s is approximately five times the output resis-  
tance of a single voltage converter. A better solution  
may be an inductive switching regulator, such as the  
MAX755, MAX759, MAX764, or MAX774.  
Voltage Divider  
The voltage divider shown in Figure 10 splits the power  
supply in half. A third capacitor can be added between  
V+ and VOUT  
.
Combined Positive Multiplication and  
Negative Voltage Conversion  
Figure 11 illustrates this dual-function circuit.  
Capacitors C1 and C3 perform the bucket and reser-  
voir functions for generating the negative voltage.  
Capacitors C2 and C4 are the bucket and reservoir  
1
2
3
4
8
7
6
5
V+  
1
2
3
4
8
7
6
5
1
2
3
4
8
7
6
5
MAX1044  
ICL7660  
MAX1044  
ICL7660  
MAX1044  
ICL7660  
10µF  
10µF  
10µF  
V
= -n(V+)  
OUT  
1
2
3
10µF  
10µF  
10µF  
Figure 12. Cascading MAX1044/ICL7660 for Increased Output Voltage  
10  
Maxim Integrated  
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
Paralleling Devices  
Paralleling multiple MAX1044/ICL7660s reduces output  
resistance and increases current capability. As illus-  
trated in Figure 13, each device requires its own pump  
capacitor C1, but the reservoir capacitor C2 serves all  
devices. The equation for calculating output resistance is:  
1
2
3
4
8
7
6
5
V+  
MAX1044  
ICL7660  
C1  
R
(of MAX1044 or ICL7660)  
n (number of devices)  
OUT  
R
=
OUT  
1
Shutdown Schemes  
Figures 14a–14c illustrate three ways of adding shut-  
down capability to the MAX1044/ICL7660. When using  
these circuits, be aware that the additional capacitive  
loading on the OSC pin will reduce the oscillator fre-  
quency. The first circuit has the least loading on the  
OSC pin and has the added advantage of controlling  
shutdown with a high or low logic level, depending on  
the orientation of the switching diode.  
1
2
3
4
8
7
6
5
MAX1044  
ICL7660  
V
= -(V+)  
OUT  
C1  
C2  
n
Figure 13. Paralleling MAX1044/ICL7660 to Reduce Output  
Resistance  
_Ordering Information (continued)  
V+  
10kΩ REQUIRED FOR TTL  
PART  
TEMP. RANGE  
-40°C to +85°C  
-55°C to +125°C  
0°C to +70°C  
PIN-PACKAGE  
8 SO  
V+  
CMOS or  
TTL GATE  
1
2
3
4
8
7
6
5
MAX1044ESA  
MAX1044MJA  
ICL7660CPA  
ICL7660CSA  
ICL7660CUA  
ICL7660C/D  
ICL7660EPA  
ICL7660ESA  
ICL7660AMJA  
ICL7660AMTV  
1N4148  
8 CERDIP**  
8 Plastic DIP  
8 SO  
MAX1044  
ICL7660  
10µF  
0°C to +70°C  
0°C to +70°C  
8 µMAX  
0°C to +70°C  
Dice*  
V
= -(V+)  
OUT  
-40°C to +85°C  
-40°C to +85°C  
-55°C to +125°C  
-55°C to +125°C  
8 Plastic DIP  
8 SO  
10µF  
a)  
8 CERDIP**  
8 TO-99**  
V+  
74HC03  
OPEN-DRAIN OR  
74LS03  
OPEN-COLLECTOR  
NAND GATES  
* Contact factory for dice specifications.  
MAX1044  
ICL7660  
7
** Contact factory for availability.  
The Maxim ICL7660 meets or exceeds all “A” and “S”  
specifications.  
b)  
c)  
V+  
OUTPUT  
ENABLE  
74HC126 OR  
74LS126  
TRI-STATE BUFFER  
MAX1044  
ICL7660  
7
Figure 14a-14c. Shutdown Schemes for MAX1044/ICL7660  
Maxim Integrated  
11  
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
__________________________________________________________Chip Topographies  
MAX1044  
CAP+  
ICL7660  
GND  
BOOST  
V+  
0.084"  
(2.1mm)  
CAP+  
GND  
0.076"  
(1.930mm)  
OSC  
CAP-  
CAP-  
V+  
LV  
V
OUT  
V
OUT  
LV  
OSC  
0.060"  
(1.5mm)  
0.076"  
(1.930mm)  
TRANSISTOR COUNT: 72  
SUBSTRATE CONNECTED TO V+  
TRANSISTOR COUNT: 71  
SUBSTRATE CONNECTED TO V+  
________________________________________________________Package Information  
INCHES  
MILLIMETERS  
DIM  
MIN  
0.036  
MAX  
0.044  
0.008  
0.014  
0.007  
0.120  
0.120  
MIN  
0.91  
0.10  
0.25  
0.13  
2.95  
2.95  
MAX  
1.11  
0.20  
0.36  
0.18  
3.05  
3.05  
A
A1 0.004  
B
C
D
E
e
0.010  
0.005  
0.116  
0.116  
E
H
0.0256  
0.65  
H
L
0.188  
0.016  
0°  
0.198  
0.026  
6°  
4.78  
0.41  
0°  
5.03  
0.66  
6°  
α
21-0036  
D
C
α
A
8-PIN μMAX  
PACKAGE  
0.127mm  
0.004 in  
e
B
A1  
L
12  
Maxim Integrated  
MAX1044/ICL7660  
Switched-Capacitor Voltage Converters  
Maxim cannot assume responsibility for use of any circuitry other than circuitry entirely embodied in a Maxim product. No circuit patent licenses are implied.  
Maxim reserves the right to change the circuitry and specifications without notice at any time. The parametric values (min and max limits) shown in the Electrical  
Characteristics table are guaranteed. Other parametric values quoted in this data sheet are provided for guidance.  
13  
The Maxim logo and Maxim Integrated are trademarks of Maxim Integrated Products, Inc.  
Maxim Integrated 160 Rio Robles, San Jose, CA 95134 USA 1-408-601-1000  
©
1994 Maxim Integrated  

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