LM2687LDX/NOPB [TI]

Low Noise Regulated Switched Capacitor Voltage Inverter;
LM2687LDX/NOPB
型号: LM2687LDX/NOPB
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Low Noise Regulated Switched Capacitor Voltage Inverter

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LM2687  
LM2687 Low Noise Regulated Switched Capacitor Voltage Inverter  
Literature Number: SNVS060D  
April 2003  
LM2687  
Low Noise Regulated Switched Capacitor Voltage  
Inverter  
General Description  
Features  
n Inverts and regulates the input supply voltage  
n Small MSOP-8 or LLP-8 package  
The LM2687 CMOS Negative Regulated Switched Capacitor  
Voltage Inverter delivers a very low noise adjustable output  
for an input voltage in the range of +2.7V to +5.5V. Four low  
cost capacitors are used in this circuit to provide up to 10mA  
of output current. The regulated output for the LM2687 is  
adjustable between −1.5V and −5.2V. The LM2687 operates  
at 100 kHz (typical) switching frequency to reduce output  
resistance and voltage ripple. With an operating current of  
only 500 µA (charge pump power efficiency greater than  
90% with most loads) and 0.05 µA typical shutdown current,  
the LM2687 provides ideal performance for cellular phone  
power amplifier bias and other low current, low noise nega-  
tive voltage needs. The device comes in a small 8-pin MSOP  
or LLP package.  
n 91% typical charge pump power efficiency at 10mA  
n Low output ripple (1mV typical)  
n Shutdown lowers Quiescent current to 0.05 µA (typical)  
Applications  
n Wireless Communication Systems  
n Cellular Phone Power Amplifier Biasing  
n Interface Power Supplies  
n Handheld Instrumentation  
n Laptop Computers and PDA’s  
Typical Application Circuit  
10118001  
Connection Diagrams  
8-Pin MSOP  
8-Pin LLP  
10118002  
10118025  
© 2003 National Semiconductor Corporation  
DS101180  
www.national.com  
Ordering Information for MSOP Package  
*
*
Device Order Number  
Package Number  
Package Marking  
S12A  
Supplies As  
LM2687MM  
MUA08A  
Tape and Reel (1000 units/reel)  
Tape and Reel (3500 units/reel)  
LM2687MMX  
MUA08A  
S12A  
Ordering Information for LLP Package  
Device Order Number  
Package Number  
Package Marking  
L050B  
Supplies As  
LM2687LD  
LDA08A  
Tape and Reel (1000 units/reel)  
Tape and Reel (3500 units/reel)  
LM2687LDX  
LDA08A  
L050B  
*
Note: The small physical sizes of the MSOP-8 and LLP-8 packages do not  
allow for the full part number marking. Devices will be marked with the  
designation shown in the column Package Marking.  
Pin Description  
Pin No.  
Name  
Cap+  
GND  
Cap−  
SD  
Function  
1
2
3
4
5
6
Positive terminal for C1.  
Ground.  
Negative terminal for C1.  
Active low, logic-level shutdown input.  
Negative unregulated output voltage.  
VNEG  
Feedback input. Connect VFB to an external resistor divider between VOUT and a positive  
adjust voltage VADJ (0VADJVIN). DO NOT leave unconnected.  
Regulated negative output voltage.  
VFB  
7
8
VOUT  
VIN  
Positive power supply input.  
DAP  
Die Attach Pad  
LLP package only. Connect this pad to VNEG.  
www.national.com  
2
Absolute Maximum Ratings (Note 1)  
TJMAX (Note 3)  
150˚C  
250˚C/W  
θJA (Note 3)  
If Military/Aerospace specified devices are required,  
please contact the National Semiconductor Sales Office/  
Distributors for availability and specifications.  
Operating Input Voltage Range  
Operating Output Current Range  
Operating Ambient  
2.7V to 5.5V  
0mA to 10mA  
−40˚C to 85˚C  
Supply Voltage (VIN to GND or GND  
to OUT)  
SD  
+ 5.8V  
(GND − 0.3V) to  
(VIN + 0.3V)  
Temp. Range  
Operating Junction Temp. Range  
Storage Temperature  
Lead Temp. (Soldering, 10 sec.)  
ESD Rating (Note 4)  
−40˚C to 110˚C  
−65˚C to 150˚C  
300˚C  
VNEG and VOUT Continuous Output  
Current  
10mA  
1 sec.  
2kV  
VOUT Short-Circuit Duration to GND  
(Note 2)  
Continuous Power Dissipation (TA  
25˚C) (Note 3)  
=
600mW  
Electrical Characteristics  
Limits with standard typeface apply for TJ = 25˚C, and limits in boldface type apply over the full temperature range. Unless  
otherwise specified VIN = 3.6V, C1 = C2 = 1µF, C3 = 10µF.  
Symbol  
IQ  
Parameter  
Supply Current  
Conditions  
Min  
Typ  
500  
0.05  
110  
105  
94  
Max  
950  
1
Units  
µA  
Open Circuit, No Load  
ISD  
Shutdown Supply Current  
Switching Frequency  
(Note 5)  
µA  
FSW  
2.7V VIN .5.5V  
VIN = 3.6V  
IL = 3.6mA  
IL = 10mA  
50  
60  
180  
170  
kHz  
%
ηPOWER  
Power Efficiency at VNEG  
91  
TSTART  
RNEG  
VR  
Start Up time  
(Note 6)  
120  
30  
600  
µs  
Output Resistance to VNEG (Note 7)  
Output Voltage Ripple  
(Note 8)  
IL =2.5mA, VOUT = −2.7V  
1
mV  
V
IL = 10mA, VOUT = −3.8V  
IL = 2.5mA (Note 9)  
2
VFB  
Feedback Pin Reference  
Voltage  
−1.25  
−1.20  
−1.15  
VOUT  
Adjustable Output Voltage  
5.5V VIN 2.7V, 2.5mA IL  
5.5V VIN 3.0V, 10mA IL  
0mA  
− (VIN −0.3V)  
− (VIN −1.2V)  
V
Load Regulation  
Line Regulation  
0 to 10mA, VOUT = − 2.4V  
5.5V VIN 2.7V, IL = 2.5mA  
5
1
mV/mA  
mV/V  
V
VIH  
VIL  
Shutdown Pin Input Voltage 5.5V VIN 2.7V  
2.2  
High  
Shutdown Pin Input Voltage 5.5V VIN 2.7V  
0.5  
V
Low  
Note 1: Absolute Maximum Ratings indicate limits beyond which damage to the device may occur. Electrical specifications do not apply when operating the device  
beyond its rated operating conditions.  
Note 2: OUT may be shorted to GND for one second without damage. However, shorting OUT to V may damage the device and must be avoided. Also, for  
IN  
temperatures above T = 85˚C, OUT must not be shorted to GND or V or device may be damaged.  
A
IN  
Note 3: The maximum power dissipation must be de-rated at elevated temperatures and is limited by T  
(maximum junction temperature), T (ambient  
A
JMAX  
temperature) and θ (junction-to-ambient thermal resistance). The maximum power dissipation at any temperature is:  
JA  
PDissMAX = (TJMAX — TA)/θJA up to the value listed in the Absolute Maximum Ratings.  
Note 4: Rating is for the human body model, a 100pF capacitor discharged through a 1.5 kresistor into each pin.  
Note 5: The output switches operate at one half the oscillator frequency, f  
Note 6: All capacitors are 1µF.  
= 2f  
.
OSC  
SW  
Note 7: Current drawn from V  
pin decreases power efficiency and will increase output voltage ripple.  
NEG  
Note 8: In the test circuit, capacitors C and C are 1µF, C = 1F, 0.30maximum ESR capacitors. Capacitors with higher ESR will increase output resistance,  
1
2
3
increase output voltage ripple, and reduce efficiency.  
Note 9: The feedback resistors R1 and R2 are 200kresistors.  
3
www.national.com  
10118021  
FIGURE 1. Standard Application Circuit for Minimum Capacitance Values  
10118022  
FIGURE 2. Standard Application Circuit for Low Output Noise  
www.national.com  
4
Typical Performance Characteristics Unless otherwise specified, TA = 25˚C, VOUT = −2.5V.  
Output Voltage vs. Output Current  
Output Voltage vs. Output Current  
Figure 2  
Figure 1  
10118005  
10118004  
Output Voltage vs. Input Voltage  
Maximum Output Current vs. Input Voltage  
10118006  
10118007  
Maximum VNEG Current vs. Input Voltage  
No Load Supply Current vs. Input Voltage  
10118008  
10118009  
5
www.national.com  
Typical Performance Characteristics Unless otherwise specified, TA = 25˚C,  
VOUT = −2.5V. (Continued)  
Start-Up Time vs. Input Voltage  
Figure 1  
Switching Frequency vs. Input Voltage  
10118010  
10118011  
10118013  
10118017  
Start-Up from Shutdown (no load)  
Output Ripple  
Figure 2  
Figure 1  
10118012  
Output Ripple  
Figure 2  
Line Transient Response  
10118014  
www.national.com  
6
Typical Performance Characteristics Unless otherwise specified, TA = 25˚C,  
VOUT = −2.5V. (Continued)  
Load Transient Response  
VFB vs. Temperature  
10118018  
10118015  
Output Noise Spectrum  
Output Noise Spectrum  
Figure 1  
Figure 2  
10118024  
10118023  
10118003  
FIGURE 3. Functional Block Diagram  
7
www.national.com  
Device Description  
The LM2687 is an inverting, regulated charge-pump power  
converter. It features low noise, small physical size, and is  
simple to use. It is an ideal solution for biasing GaAsFET  
devices such as power amplifier modules found in portable  
devices and cellular phones.  
The switching frequency is fixed at 100kHz and RSW (the  
combined resistance of the internal switches) is typically  
10. It is clear from this equation that low ESR capacitors  
are desirable and that larger values of C1 will further reduce  
the output resistance. The output resistance of the entire  
circuit (in dropout) is:  
A switched capacitor charge-pump circuit is used to invert  
the input voltage VIN to its corresponding negative value  
which is seen at VNEG. This voltage is regulated by a low  
dropout linear regulator at VOUT (Figure 3). The output volt-  
age can be regulated anywhere from −1.5V to −5.2V and is  
determined by a pair of feedback resistors (see Setting the  
Output Voltage). The PSRR of the linear regulator reduces  
the output voltage ripple produced by the charge-pump in-  
verter to 1mVP-P (typical) at the output VOUT. The regulator  
also attenuates noise from the incoming supply due to its  
high PSRR.  
ROUT = RNEG + Rregulator  
Rregulator (the output impedance of the linear regulator) is  
approximately 10. When the circuit is in regulation, the  
overall output resistance is equal to the linear regulator load  
regulation (5mV/mA). The dropout voltage is therefore af-  
fected by the capacitors used since it is simply defined as  
*
IOUT ROUT  
.
A larger value of capacitor and lower ESR for C2 will lower  
the output voltage ripple of the charge-pump. This ripple will  
then be subject to the PSRR of the linear regulator and  
reduced at VOUT. A larger value and lower ESR for C3 will  
further reduce this ripple.  
Shutdown  
The LM2687 features a logic-level shutdown feature. The  
function is active-low and will reduce the supply current to  
0.05µA (typical) when engaged. When shutdown is active  
VOUT and VNEG are switched to ground.  
The Low Dropout Linear Regulator uses an N-channel FET  
device which behaves similarly to an NPN device. Because  
of this and the internal compensation there are no strict ESR  
requirements for the output capacitor to maintain stability.  
Using the minimum recommended values will ensure stabil-  
ity under all conditions.  
Application Information  
SETTING THE OUTPUT VOLTAGE  
The output voltage on the LM2687 is set by using a resistor  
divider between the output, the feedback pin, and an arbi-  
trary voltage VADJ (Figure 3). VADJ can range from GND to  
any positive voltage up to VIN. VADJ is usually chosen to be  
GND and should not be connected to a different voltage  
unless it is well regulated so the output will stay constant.  
The feedback pin is held at a constant voltage VFB which  
equals −1.2V. The output voltage can be selected using the  
equation:  
In summation, larger value capacitors with lower ESR will  
give the lowest output noise and ripple. C1, C2, and C3  
should be 1.0µF minimum with less than 0.3ESR. Larger  
values may be used for any or all capacitors. All capacitors  
should be either ceramic, surface-mount chip tantalum, or  
polymer electrolytic.  
OUTPUT NOISE AND RIPPLE  
Low output noise and output voltage ripple are two of the  
attractive features of the LM2687. Because they are small,  
the noise and ripple (1mV typ.) can be hard to measure  
accurately. Ground loop error between the circuit and the  
oscilloscope caused by the switching of the charge-pump  
produces ground currents in the probe wires. This causes  
sharp voltage spikes on the oscilloscope waveform. To re-  
duce this error measure, the output directly at the output  
capacitor (C3) and use the shortest wires possible. Also, do  
not use the ground lead on the probe. Take the tip cover off  
of the probe and touch the grounding ring of the probe  
directly to the ground terminal of C3. This should give the  
most accurate reading of the actual output waveform.  
The current into the feedback pin IFB is in the range of 10nA  
to 100nA. Therefore using a value of 500kor smaller for R1  
should make this current of little concern when setting the  
output voltage. For best accuracy, use resistors with 1% or  
better tolerance.  
CAPACITOR SELECTION  
Selecting the right capacitors for your circuit is important.  
The capacitors affect the output resistance of the charge-  
pump, the output voltage ripple, and the overall dropout  
voltage (VIN-|VOUT|) of the circuit. The output resistance of  
the charge-pump inverter is:  
www.national.com  
8
Physical Dimensions inches (millimeters) unless otherwise noted  
MSOP-8 Package  
8-Lead Mini SO-8 (MM)  
For Ordering, Refer to Ordering Information Table  
NS Package Number MUA08A  
9
www.national.com  
Physical Dimensions inches (millimeters) unless otherwise noted (Continued)  
LLP-8 Package  
8-Lead Leadless Leadframe Package (LD)  
For Ordering, Refer to Ordering Information Table  
NS Package Number LDA08A  
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