MIC5216-3.6YM5 [MICREL]

500mA-Peak Output LDO Regulator;
MIC5216-3.6YM5
型号: MIC5216-3.6YM5
厂家: MICREL SEMICONDUCTOR    MICREL SEMICONDUCTOR
描述:

500mA-Peak Output LDO Regulator

光电二极管 输出元件 调节器
文件: 总13页 (文件大小:294K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
MIC5216  
500mA-Peak Output LDO Regulator  
General Description  
Features  
The MIC5216 is an efficient linear voltage regulator with  
high peak output current capability, very low dropout  
voltage, and better than 1% output voltage accuracy.  
Dropout is typically 10mV at light loads and less than  
500mV at full load.  
Error Flag indicates undervoltage fault  
Guaranteed 500mA-peak output over the full operating  
temperature range  
Low 500mV maximum dropout voltage at full load  
Extremely tight load and line regulation  
Tiny SOT-23-5 and MM8™ power MSOP-8 package  
Low-noise output  
Low temperature coefficient  
Current and thermal limiting  
The MIC5216 is designed to provide a peak output current  
for startup conditions where higher inrush current is  
demanded. It features a 500mA peak output rating.  
Continuous output current is limited only by package and  
layout.  
Reversed input polarity protection  
CMOS/TTL-compatible enable/shutdown control  
Near-zero shutdown current  
The MIC5216 has an internal undervoltage monitor with a  
flag output. It also can be enabled or shutdown by a  
CMOS or TTL compatible signal. When disabled, power  
consumption drops nearly to zero. Dropout ground current  
is minimized to help prolong battery life. Other key features  
include reversed-battery protection, current limiting,  
overtemperature shutdown, and low noise performance.  
Applications  
Laptop, notebook, and palmtop computers  
Cellular telephones and battery-powered equipment  
Consumer and personal electronics  
PC Card VCC and VPP regulation and switching  
SMPS post-regulator/dc-to-dc modules  
High-efficiency linear power supplies  
The MIC5216 is available in fixed output voltages in  
space-saving SOT-23-5 and MM8™ 8-pin power MSOP  
packages. For higher power requirements see the  
MIC5209 or MIC5237.  
Data sheets and support documentation can be found on  
Micrel’s web site at www.micrel.com.  
Typical Application  
5V Low-Noise Regulator  
3.3V Low-Noise Regulator  
MM8 and Micrel Mini 8 are trademarks of Micrel, Inc.  
Micrel Inc. • 2180 Fortune Drive • San Jose, CA 95131 • USA • tel +1 (408) 944-0800 • fax + 1 (408) 474-1000 • http://www.micrel.com  
M9999-032307  
March 2007  
Micrel, Inc.  
MIC5216  
Ordering Information  
Part Number  
Junction  
Temp. Range  
Voltage  
Package  
Standard  
Marking Pb-Free  
Marking  
MIC5216-2.5BMM  
MIC5216-3.3BMM  
MIC5216-5.0BMM  
MIC5216-2.5BM5  
MIC5216-3.3BM5  
MIC5216-3.6BM5  
MIC5216-5.0BM5  
MIC5216-2.5YMM  
2.5V  
3.3V  
5.0V  
2.5V  
3.3V  
3.6V  
5.0V  
–40° to +125°C  
–40° to +125°C  
–40° to +125°C  
–40° to +125°C  
–40° to +125°C  
–40° to +125°C  
–40° to +125°C  
8-Pin MSOP  
8-Pin MSOP  
8-Pin MSOP  
5-Pin SOT-23  
5-Pin SOT-23  
5-Pin SOT-23  
5-Pin SOT-23  
MIC5216-3.3YMM  
MIC5216-5.0YMM  
MIC5216-2.5YM5  
MIC5216-3.3YM5  
MIC5216-3.6YM5  
MIC5216-5.0YM5  
LH25  
LH33  
LH36  
LH50  
LH25  
LH33  
LH36  
LH50  
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MIC5216  
Pin Configuration  
MIC5216-xxBMM/YMM  
MIC5216-xxBM5/YM5  
SOT-23-5  
MM8™ MSOP-8  
Fixed Voltages  
Fixed Voltages  
Pin Description  
Pin Number  
MSOP-8  
Pin Number  
SOT-23-5  
Pin Name Pin Function  
2
5–8  
3
1
2
5
3
IN  
Supply Input  
GND  
OUT  
EN  
Ground: MSOP-8 pins 5 through 8 are internally connected.  
Regulator Output  
1
Enable (Input): CMOS compatible control input. Logic high = enable; logic  
low or open = shutdown.  
4
4
FLG  
Error Flag (Output): Open-Collector output. Active low indicates an output  
undervoltage condition.  
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Micrel, Inc.  
MIC5216  
Absolute Maximum Ratings  
Operating Ratings  
Supply Input Voltage (VIN).............................. –20V to +20V  
Power Dissipation (PD)..............................Internally Limited  
Junction Temperature (TJ) ........................40°C to +125°C  
Lead Temperature (soldering, 5 sec.)........................ 260°C  
Supply Input Voltage (VIN)................................. 2.5V to 12V  
Enable Input Voltage (VEN)..................................... 0V to VIN  
Junction Temperature (TJ) ........................40°C to +125°C  
Thermal Resistance (θJA).......................................... Note 1  
Electrical Characteristics  
VIN = VOUT +1V; COUT = 4.7µF; IOUT = 100µA; TJ = 25°C, bold values indicate –40°C < TJ < +125°C, unless noted.  
Symbol  
Parameter  
Condition  
Min  
Typ  
Max  
Units  
VO  
Output Voltage Accuracy  
Variation from nominal VOUT  
–1  
–2  
1
2
%
%
VO/T  
VO/VO  
VO/VO  
VIN – VO  
Output Voltage Temperature  
Coefficient  
Note 2  
40  
ppm/°C  
Line Regulation  
VIN = VOUT +1V to 12V  
0.009  
0.05  
0.05  
0.1  
%/V  
%/V  
Load Regulation  
I
I
OUT = 100µA to 150mA (Note 3)  
0.5  
0.7  
%
%
Dropout Voltage, Note 4  
OUT = 100µA  
10  
60  
80  
mV  
mV  
mV  
mV  
mV  
mV  
mV  
mV  
IOUT = 50mA  
IOUT = 150mA  
IOUT = 500mA  
115  
165  
300  
175  
250  
300  
400  
500  
600  
IGND  
Ground Pin Current, Notes 5, 6  
(per regulator)  
V
EN 3.0V, IOUT = 100µA  
80  
350  
1.8  
8
130  
170  
650  
900  
2.5  
3.0  
20  
µA  
µA  
µA  
VEN 3.0V, IOUT = 50mA  
VEN 3.0V, IOUT = 150mA  
VEN 3.0V, IOUT = 500mA  
µA  
mA  
mA  
mA  
mA  
25  
IGND  
Quiescent Current, Note 6  
V
EN 0.4V  
0.05  
0.10  
3
8
µA  
µA  
VEN 0.18V  
Frequency = 120Hz  
VOUT = 0V  
PSRR  
ILIMIT  
Ripple Rejection  
Current Limit  
75  
dB  
mA  
700  
0.05  
1000  
VO/PD  
Thermal Regulation  
Note 7  
%/W  
eno  
Output Noise  
IOUT = 50mA, COUT = 2.2µF  
500  
nV/Hz  
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MIC5216  
Symbol  
Parameter  
Condition  
Min  
Typ  
Max  
Units  
Enable Input  
VENL  
Enable Input Voltage  
VEN = logic low (regulator shutdown)  
VEN = logic high (regulator enabled)  
0.4  
0.18  
V
V
VENH  
IENL  
2.0  
V
Enable Input Current  
V
V
V
ENL 0.4V  
ENL 0.18V  
ENH 2.0V  
0.01  
0.01  
5
–1  
–2  
20  
25  
µA  
µA  
µA  
µA  
IENH  
Error Flag Output  
VERR  
Flag Threshold  
Undervoltage condition (below nominal)  
Note 8  
–2  
–1  
–6  
–10  
%
VIL  
IFL  
Output Logic-Low Voltage  
Flag Leakage Current  
IL = 1mA, undervoltage condition  
Flag off, VFLAG = 0V to 12V  
0.2  
0.1  
0.4  
V
+1  
µA  
Notes:  
1. Absolute maximum ratings indicate limits beyond which damage to the component may occur. Electrical specifications do not apply when operating  
the device outside of its operating ratings. The maximum allowable power dissipation is a function of the maximum junction temperature, TJ(max), the  
junction-to-ambient thermal resistance, θJA, and the ambient temperature, TA. The maximum allowable power dissipation at any ambient temperature  
is calculated using: PD(max) = (TJ(max) – TA) / θJA. Exceeding the maximum allowable power dissipation will result in excessive die temperature, and the  
regulator will go into thermal shutdown. See Table 1 and the “Thermal Considerations” section for details.  
2. Output voltage temperature coefficient is defined as the worst case voltage change divided by the total temperature range.  
3. Regulation is measured at constant junction temperature using low duty cycle pulse testing. Parts are tested for load regulation in the load range from  
100mA to 500mA. Changes in output voltage due to heating effects are covered by the thermal regulation specification.  
4. Dropout voltage is defined as the input to output differential at which the output voltage drops 2% below its nominal value measured at 1V differential.  
5. Ground pin current is the regulator quiescent current plus pass transistor base current. The total current drawn from the supply is the sum of the load  
current plus the ground pin current.  
6. VEN is the voltage externally applied to devices with the EN (enable) input pin.  
7. Thermal regulation is defined as the change in output voltage at a time “t” after a change in power dissipation is applied, excluding load or line  
regulation effects. Specifications are for a 500mA load pulse at VIN = 12V for t = 10ms.  
8. The error flag comparator includes 3% hysteresis.  
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Micrel, Inc.  
MIC5216  
Typical Characteristics  
Power Supply  
Power Supply  
Power Supply  
Rejection Ratio  
Rejection Ratio  
Rejection Ratio  
0
0
-20  
0
-20  
VIN = 6V  
VIN = 6V  
VOUT = 5V  
VIN = 6V  
OUT = 5V  
VOUT = 5V  
V
-20  
-40  
-40  
-40  
-60  
-60  
-60  
IOUT = 100mA  
OUT = 1µF  
-80  
-80  
-80  
IOUT = 100µA  
COUT = 1µF  
IOUT = 1mA  
COUT = 1µF  
C
-100  
-100  
-100  
1E+11E+21E1k+311E0+k41E+51E1M+6 E+7  
1E+11E+21E1k+311E0+k41E+51E1M+6 E+7  
1E+11E+21E1k+311E0+k41E+51E1M+6 E+7  
10 100k 10M  
100  
10  
100k  
FREQUENCY (Hz)  
10M  
10  
100k  
FREQUENCY (Hz)  
10M  
100  
100  
FREQUENCY (Hz)  
Power Supply Ripple Rejection  
vs. Voltage Drop  
Noise Performance  
Noise Performance  
60  
10  
1
10  
500mA pending  
1mA  
10mA, COUT = 1µF  
50  
40  
30  
20  
10  
0
1
0.1  
100mA  
10mA  
0.1  
10mA  
IOUT = 100mA  
500mA Pending  
500mA Pending  
0.01  
0.001  
0.0001  
0.01  
VOUT = 5V  
COUT = 10µF  
electrolytic  
1mA  
0.001  
COUT = 1µF  
0.3  
VOUT = 5V  
0.0001  
0
0.1  
0.2  
0.4  
10  
1E+11E+21E+31E+41E+51E+61E+7  
1k  
10  
1k  
1E+11E+21E+311E0+k411E00+5k1E1M+611E0M+7  
100  
100  
10k 100k 1M 10M  
VOLTAGE DROP (V)  
FREQUENCY (Hz)  
FREQUENCY (Hz)  
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March 2007  
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Micrel, Inc.  
MIC5216  
Block Diagram  
MIC5216 Fixed Regulator with External Components  
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MIC5216  
Thermal Considerations  
Application Information  
The MIC5216 is designed to provide 200mA of  
continuous current in two very small profile packages.  
Maximum power dissipation can be calculated based on  
the output current and the voltage drop across the part.  
To determine the maximum power dissipation of the  
package, use the thermal resistance, junction-to-  
ambient, of the device and the following basic equation.  
The MIC5216 is designed for 150mA to 200mA output  
current applications where a high current spike (500mA)  
is needed for short, startup conditions. Basic application  
of the device will be discussed initially followed by a  
more detailed discussion of higher current applications.  
Enable/Shutdown  
Forcing EN (enable/shutdown) high (> 2V) enables the  
regulator. EN is compatible with CMOS logic. If the  
enable/shutdown feature is not required, connect EN to  
IN (supply input). See Figure 5.  
(
TJ(MAX) TA  
)
PD(MAX)  
=
θJA  
TJ(MAX) is the maximum junction temperature of the die,  
125°C, and TA is the ambient operating temperature. θJA  
is layout dependent; table 1 shows examples of thermal  
resistance, junction-to-ambient, for the MIC5216.  
Input Capacitor  
A 1µF capacitor should be placed from IN to GND if  
there is more than 10 inches of wire between the input  
and the ac filter capacitor or if a battery is used as the  
input.  
Package  
θ
JA Recommended  
θ
JA 1” Square  
Copper Clad  
θJC  
Minimum Footprint  
MM8™ (MM)  
160°C/W  
220°C/W  
70°C/W  
30°C/W  
Output Capacitor  
SOT-23-5 (M5)  
170°C/W  
130°C/W  
An output capacitor is required between OUT and GND  
to prevent oscillation. 1µF minimum is recommended.  
Larger values improve the regulator’s transient  
response. The output capacitor value may be increased  
without limit.  
Table 1. MIC5216 Thermal Resistance  
The actual power dissipation of the regulator circuit can  
be determined using one simple equation.  
The output capacitor should have an ESR (equivalent  
series resistance) of about 5or less and a resonant  
frequency above 1MHz. Ultralow-ESR capacitors could  
cause oscillation and/or underdamped transient  
response. Most tantalum or aluminum electrolytic  
capacitors are adequate; film types will work, but more  
PD = (VIN – VOUT) IOUT + VIN IGND  
Substituting PD(MAX) for PD and solving for the operating  
conditions that are critical to the application will give the  
maximum operating conditions for the regulator circuit.  
For example, if we are operating the MIC5216-3.3BM5  
at room temperature, with a minimum footprint layout,  
we can determine the maximum input voltage for a set  
output current.  
expensive.  
Many  
aluminum  
electrolytics  
have  
electrolytes that freeze at about –30°C, so solid  
tantalums are recommended for operation below –25°C.  
At lower values of output current, less output  
capacitance is needed for stability. The capacitor can be  
reduced to 0.47µF for current below 10mA or 0.33µF for  
currents below 1mA.  
(
125°C 25°C  
)
PD(MAX)  
=
220°C/W  
P
D(MAX) = 455mW  
No-Load Stability  
The thermal resistance, junction-to-ambient, for the  
minimum footprint is 220°C/W, taken from table 1. The  
maximum power dissipation number cannot be  
exceeded for proper operation of the device. Using the  
output voltage of 3.3V, and an output current of 150mA,  
we can determine the maximum input voltage. Ground  
current, maximum of 3mA for 150mA of output current,  
can be taken from the Electrical Characteristics section  
of the data sheet.  
The MIC5216 will remain stable and in regulation with no  
load (other than the internal voltage divider) unlike many  
other voltage regulators. This is especially important in  
CMOS RAM keep-alive applications.  
Error Flag Output  
The error flag is an open-collector output and is active  
(low) when an undervoltage of approximately 5% below  
the nominal output voltage is detected. A pull-up resistor  
from IN to FLAG is shown in all schematics.  
455mW = (VIN – 3.3V) 150mA + VIN × 3mA  
455mW + 3.3V  
(
150mA  
)
If an error indication is not required, FLAG may be left  
open and the pull-up resistor may be omitted.  
VIN  
150mA + 3mA  
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Micrel, Inc.  
VIN = 6.2VMAX  
MIC5216  
Therefore, to be able to obtain a constant 500mA output  
current from the 5216-5.0BM5 at room temperature, you  
need extremely tight input-output voltage differential,  
barely above the maximum dropout voltage for that  
current rating.  
Therefore, a 3.3V application at 150mA of output current  
can accept a maximum input voltage of 6.2V in a SOT-  
23-5 package. For a full discussion of heat sinking and  
thermal effects on voltage regulators, refer to the  
Regulator Thermals section of Micrel’s Designing with  
Low-Dropout Voltage Regulators handbook.  
You can run the part from larger supply voltages if the  
proper precautions are taken. Varying the duty cycle  
using the enable pin can increase the power dissipation  
of the device by maintaining a lower average power  
figure. This is ideal for applications where high current is  
only needed in short bursts. Figure 1 shows the safe  
operating regions for the MIC5216-x.xBM5 at three  
different ambient temperatures and at different output  
currents. The data used to determine this figure  
assumed a minimum footprint PCB design for minimum  
heat sinking. Figure 2 incorporates the same factors as  
the first figure, but assumes a much better heat sink. A  
1” square copper trace on the PC board reduces the  
thermal resistance of the device. This improved thermal  
resistance improves power dissipation and allows for a  
larger safe operating region.  
Peak Current Applications  
The MIC5216 is designed for applications where high  
start-up currents are demanded from space constrained  
regulators. This device will deliver 500mA start-up  
current from a SOT-23-5 or MM8 package, allowing high  
power from a very low profile device. The MIC5216 can  
subsequently provide output current that is only limited  
by the thermal characteristics of the device. You can  
obtain higher continuous currents from the device with  
the proper design. This is easily proved with some  
thermal calculations.  
If we look at a specific example, it may be easier to  
follow. The MIC5216 can be used to provide up to  
500mA continuous output current. First, calculate the  
maximum power dissipation of the device, as was done  
in the thermal considerations section. Worst case  
thermal resistance (θJA = 220°C/W for the MIC5216-  
x.xBM5), will be used for this example.  
Figures 3 and 4 show, safe operating regions for the  
MIC5216-x.xBMM, the power MSOP package part.  
These graphs show three typical operating regions at  
different temperatures. The lower the temperature, the  
larger the operating region. The graphs were obtained in  
a similar way to the graphs for the MIC5216-x.xBM5,  
taking all factors into consideration and using two  
different board layouts, minimum footprint and 1” square  
copper PC board heat sink. (For further discussion of PC  
board heat sink characteristics, refer to Application Hint  
17, “Designing PC Board Heat Sinks”.  
(
TJ(MAX) TA  
)
PD(MAX)  
=
θJA  
Assuming room temperature, we have a maximum  
power dissipation number of  
The information used to determine the safe operating  
regions can be obtained in a similar manner to that used  
in determining typical power dissipation, already  
discussed. Determining the maximum power dissipation  
based on the layout is the first step, this is done in the  
same manner as in the previous two sections. Then, a  
larger power dissipation number multiplied by a set  
maximum duty cycle would give that maximum power  
dissipation number for the layout. This is best shown  
through an example. If the application calls for 5V at  
500mA for short pulses, but the only supply voltage  
available is 8V, then the duty cycle has to be adjusted to  
determine an average power that does not exceed the  
maximum power dissipation for the layout.  
(
125°C 25°C  
)
PD(MAX)  
=
220°C/W  
P
D(MAX) = 455mW  
Then we can determine the maximum input voltage for a  
five-volt regulator operating at 500mA, using worst case  
ground current.  
P
D(MAX) = 455mW = (VIN – VOUT) IOUT + VIN IGND  
OUT = 500mA  
OUT = 5V  
GND =20mA  
I
V
I
%DC  
100  
Avg.P =  
(
V
IN VOUT IOUT + V I  
)
D
IN GND  
455mW = (VIN – 5V) 500mA + VIN × 20mA  
2.995mW = 520mA × VIN  
2.955W  
%DC  
100  
455mW =  
(
8V 5V  
)
500mA + 8V × 20mA  
VIN(MAX)  
=
= 5.683V  
520mA  
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Micrel, Inc.  
455mW =  
MIC5216  
PD × 50mA = 173mW  
%Duty Cycle  
100  
1.66W  
However, this is continuous power dissipation, the actual  
on-time for the device at 50mA is (100%-12.5%) or  
87.5% of the time, or 87.5% duty cycle. Therefore, PD  
must be multiplied by the duty cycle to obtain the actual  
average power dissipation at 50mA.  
%Duty Cycle  
100  
0.274 =  
% Duty Cycle Max = 27.4%  
PD × 50mA = 0.875 × 173mW  
PD × 50mA = 151mW  
With an output current of 500mA and a three-volt drop  
across the MIC5216-xxBMM, the maximum duty cycle is  
27.4%.  
The power dissipation at 500mA must also be  
calculated.  
Applications also call for a set nominal current output  
with a greater amount of current needed for short  
durations. This is a tricky situation, but it is easily  
remedied. Calculate the average power dissipation for  
each current section, then add the two numbers giving  
the total power dissipation for the regulator. For  
example, if the regulator is operating normally at 50mA,  
but for 12.5% of the time it operates at 500mA output,  
the total power dissipation of the part can be easily  
determined. First, calculate the power dissipation of the  
device at 50mA. We will use the MIC5216-3.3BM5 with  
5V input voltage as our example.  
PD × 500mA = (5V – 3.3V) 500mA + 5V × 20mA  
PD × 500mA = 950mW  
This number must be multiplied by the duty cycle at  
which it would be operating, 12.5%.  
PD × = 0.125mA × 950mW  
PD × = 119mW  
PD × 50mA = (5V – 3.3V) × 50mA + 5V × 650µA  
a. 25°C Ambient  
b. 50°C Ambient  
c. 85°C Ambient  
Figure 1. MIC5216-x.xBM5 (SOT-23-5) on Minimum Recommended Footprint  
a. 25  
°
C Ambient  
b. 50  
°
C Ambient  
c. 85°C Ambient  
Figure 2. MIC5216-x.xBM5 (SOT-23-5) on 1-inch2 Copper Cladding  
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MIC5216  
a. 25°C Ambient  
b. 50°C Ambient  
c. 85°C Ambient  
Figure 3. MIC5216-x.xBMM (MSOP-8) on Minimum Recommended Footprint  
a. 25  
°
C Ambient  
b. 50  
°
C Ambient  
c. 85°C Ambient  
Figure 4. MIC5216-x.xBMM (MSOP-8) on on 1-inch2 Copper Cladding  
The total power dissipation of the device under these  
conditions is the sum of the two power dissipation  
figures.  
Fixed Regulator Circuits  
MIC5216  
VIN  
VOUT  
1µF  
IN  
OUT  
FLG  
GND  
PD(total) = PD × 50mA + PD × 500mA  
PD(total) = 151mW + 119mW  
PD(total) = 270mW  
EN  
100k  
Figure 5. Low-Noise Fixed Voltage Regulator  
The total power dissipation of the regulator is less than  
the maximum power dissipation of the SOT-23-5  
package at room temperature, on a minimum footprint  
board and therefore would operate properly.  
Figure 5 shows a basic MIC5216-x.xBMx fixed-voltage  
regulator circuit. A 1µF minimum output capacitor is  
required for basic fixed-voltage applications.  
Multilayer boards with a ground plane, wide traces near  
the pads, and large supply-bus lines will have better  
thermal conductivity.  
The flag output is an open-collector output and requires  
a pull-up resistor to the input voltage. The flag indicates  
an undervoltage condition on the output of the device.  
For additional heat sink characteristics, please refer to  
Micrel Application Hint 17, “Designing P.C. Board Heat  
Sinks”, included in Micrel’s Databook. For a full  
discussion of heat sinking and thermal effects on voltage  
regulators, refer to Regulator Thermals section of  
Micrel’s Designing with Low-Dropout Voltage Regulators  
handbook.  
M9999-032307  
March 2007  
11  
Micrel, Inc.  
MIC5216  
Package Information  
8-Pin MSOP (MM)  
SOT-23-5 (M5)  
M9999-032307  
March 2007  
12  
Micrel, Inc.  
MIC5216  
MICREL, INC. 2180 FORTUNE DRIVE SAN JOSE, CA 95131 USA  
TEL +1 (408) 944-0800 FAX +1 (408) 474-1000 WEB http:/www.micrel.com  
The information furnished by Micrel in this data sheet is believed to be accurate and reliable. However, no responsibility is assumed by Micrel for its  
use. Micrel reserves the right to change circuitry and specifications at any time without notification to the customer.  
Micrel Products are not designed or authorized for use as components in life support appliances, devices or systems where malfunction of a product  
can reasonably be expected to result in personal injury. Life support devices or systems are devices or systems that (a) are intended for surgical implant  
into the body or (b) support or sustain life, and whose failure to perform can be reasonably expected to result in a significant injury to the user. A  
Purchaser’s use or sale of Micrel Products for use in life support appliances, devices or systems is a Purchaser’s own risk and Purchaser agrees to fully  
indemnify Micrel for any damages resulting from such use or sale.  
© 2000 Micrel, Incorporated.  
M9999-032307  
March 2007  
13  

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