MIC5235-2.5BM5TX
更新时间:2024-09-18 15:03:14
品牌:MICROCHIP
描述:IC,VOLT REGULATOR,FIXED,+2.5V,BIPOLAR,TSOP,5PIN,PLASTIC
MIC5235-2.5BM5TX 概述
IC,VOLT REGULATOR,FIXED,+2.5V,BIPOLAR,TSOP,5PIN,PLASTIC 其他稳压器
MIC5235-2.5BM5TX 规格参数
生命周期: | Active | 包装说明: | TSOP, TSOP5/6,.11,37 |
Reach Compliance Code: | compliant | 风险等级: | 5.02 |
Is Samacsys: | N | 可调性: | FIXED |
标称回动电压 1: | 0.31 V | 最大绝对输入电压: | 38 V |
JESD-30 代码: | R-PDSO-G5 | 最大负载调整率: | 0.025% |
输出次数: | 1 | 端子数量: | 5 |
工作温度TJ-Max: | 125 °C | 工作温度TJ-Min: | -40 °C |
最大输出电流 1: | 0.15 A | 标称输出电压 1: | 2.5 V |
封装主体材料: | PLASTIC/EPOXY | 封装代码: | TSOP |
封装等效代码: | TSOP5/6,.11,37 | 封装形状: | RECTANGULAR |
封装形式: | SMALL OUTLINE, THIN PROFILE | 包装方法: | TAPE AND REEL |
认证状态: | Not Qualified | 子类别: | Other Regulators |
表面贴装: | YES | 技术: | BIPOLAR |
端子形式: | GULL WING | 端子节距: | 0.95 mm |
端子位置: | DUAL | 最大电压容差: | 2% |
Base Number Matches: | 1 |
MIC5235-2.5BM5TX 数据手册
通过下载MIC5235-2.5BM5TX数据手册来全面了解它。这个PDF文档包含了所有必要的细节,如产品概述、功能特性、引脚定义、引脚排列图等信息。
PDF下载MIC5235
Ultra-Low Quiescent Current, 150mA
µCap LDO Regulator
General Description
Features
The MIC5235 is a 150mA highly accurate, low dropout
regulator with high input voltage and ultra-low ground
current. This combination of high voltage and low ground
current makes the MIC5235 ideal for USB and portable
electronics applications, using 1-cell, 2-cell or 3-cell Li-Ion
battery inputs.
• Wide input voltage range: 2.3V to 24V
• Ultra low ground current: 18µA
• Low dropout voltage: 310mV at 150mA
• High output accuracy: ±2.0% over temperature
• µCap: stable with ceramic or tantalum capacitors
• Excellent line and load regulation specifications
• Zero shutdown current
• Reverse battery protection
• Reverse leakage protection
• Thermal shutdown and current limit protection
• IttyBitty® SOT-23-5 package
• Adjustable output from 1.24V-20V
A µCap LDO design, the MIC5235 is stable with either
ceramic or tantalum output capacitor. It only requires a
2.2µF capacitor for stability.
Features of the MIC5235 includes enable input, thermal
shutdown, current limit, reverse battery protection, and
reverse leakage protection.
Available in fixed and adjustable output voltage versions,
the MIC5235 is offered in the IttyBitty® SOT-23-5 package
with a junction temperature range of –40°C to +125°C.
Applications
• USB power supply
• Cellular phones
• Keep-alive supply in notebook and portable computers
• Logic supply for high-voltage batteries
• Automotive electronics
• Battery powered systems
Typical Application
40
35
MIC5235BM5
VIN
CIN=1.0µF
VOUT=1.8V
1
5
30
IOUT = 1mA
2
3
IOUT = 100µA
R1
R2
COUT=2.2µF
ceramic
25
4
20
IGND=18µA
EN
15
IOUT = 10µA
10
4
9
14
19
24
INPUT VOLTAGE (V)
Ultra-Low Current Adjustable Regulator Application
Ground Current vs. Input Voltage
IttyBitty is a registered trademark 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
M9999-051508
May 2008
Micrel, Inc.
MIC5235
Ordering Information
Part Number
Marking Codes
Standard Pb-Free*
Junction
Temp. Range
Voltage**
Package
Standard
Pb-Free
MIC5235-1.5BM5 MIC5235-1.5YM5
MIC5235-1.8BM5 MIC5235-1.8YM5
MIC5235-2.5BM5 MIC5235-2.5YM5
MIC5235-2.7BM5 MIC5235-2.7YM5
MIC5235-3.0BM5 MIC5235-3.0YM5
MIC5235-3.3BM5 MIC5235-3.3YM5
MIC5235-5.0BM5 MIC5235-5.0YM5
L215
L218
L225
L227
L230
L233
L250
L2AA
L215
L218
L225
L227
L230
L233
L250
L2AA
1.5V
1.8V
2.5V
2.7V
3.0V
3.3V
5.0V
Adj.
–40° to +125°C 5-Pin SOT-23
–40° to +125°C 5-Pin SOT-23
–40° to +125°C 5-Pin SOT-23
–40° to +125°C 5-Pin SOT-23
–40° to +125°C 5-Pin SOT-23
–40° to +125°C 5-Pin SOT-23
–40° to +125°C 5-Pin SOT-23
–40° to +125°C 5-Pin SOT-23
MIC5235BM5
MIC5235YM5
* Under bar symbol (_) may not be to scale.
** Contact factory regarding availability for voltages not listed.
Pin Configuration
EN GND IN
EN GND IN
3
2
1
3
2
1
L2xx
L2xx
L2xx
L2xx
4
5
4
5
NC
ADJ
OUT
OUT
SOT-23-5 (Fixed)
SOT-23-5 (Adjustable)
Pin Description
Pin Number
Pin Name
IN
Pin Function
Supply Input.
Ground.
1
2
3
4
GND
EN
Enable (Input): Logic low = shutdown; logic high = enable.
No Connect.
NC (fixed)
ADJ (adj.)
OUT
Adjust (Input): Feedback input. Connect to resistive voltage-divider network.
Regulator Output.
5
M9999-051508
May 2008
2
Micrel, Inc.
MIC5235
Absolute Maximum Ratings(1)
Operating Ratings(2)
Input Supply Voltage........................................ –20V to 38V
Enable Input Voltage....................................... –0.3V to 38V
Power Dissipation .....................................Internally Limited
Junction Temperature ...............................–40°C to +125°C
Storage Temperature................................–65°C to +150°C
ESD Rating(3)
Input Supply Voltage......................................... 2.3V to 24V
Enable Input Voltage............................................ 0V to 24V
Junction Thermal.......................................–40°C to +125°C
Package Thermal Resistance
SOT-23-5 (θJA).................................................235°C/W
Electrical Characteristics(4)
TA = 25°C with VIN = VOUT + 1V; IOUT = 100µA, Bold values indicate –40°C<TJ<+125°C; unless otherwise specified.
Parameter
Condition
Min
Typ
Max
Units
Output Voltage Accuracy
Variation from nominal VOUT
–1.0
–2.0
+1.0
+2.0
%
%
Line Regulation
Load Regulation
Dropout Voltage
VIN = VOUT + 1V to 24V
Load = 100µA to 150mA
0.04
0.25
%
%
1
I
I
OUT = 100µA
OUT = 50mA
50
230
mV
mV
mV
mV
mV
mV
mV
300
400
400
450
450
500
IOUT = 100mA
IOUT = 150mA
270
310
Reference Voltage
Ground Current
1.22
1.24
18
1.25
V
I
I
OUT = 100µA
OUT = 50mA
30
35
0.7
2
µA
µA
mA
mA
mA
0.35
1
2
IOUT = 100mA
OUT = 150mA
I
4
Ground Current in Shutdown
Short Circuit Current
VEN ≤ 0.6V; VIN = 24V
VOUT = 0V
0.1
350
–0.1
1
µA
mA
µA
500
Output Leakage,
Load = 500Ω; VIN = –15V
Reverse Polarity Input
Enable Input
Input Low Voltage
Input High Voltage
Enable Input Current
Regulator OFF
Regulator ON
0.6
V
V
2.0
V
V
V
EN = 0.6V; Regulator OFF
EN = 2.0V; Regulator ON
EN = 24V; Regulator ON
–1.0
0.01
0.1
0.5
1.0
1.0
2.5
µA
µA
µA
Notes:
1. Exceeding the absolute maximum rating may damage the device.
2. The device is not guaranteed to function outside its operating rating.
3. Devices are ESD sensitive. Handling precautions recommended. Human body model, 1.5k in series with 100pF.
4. Specification for packaged product only.
M9999-051508
May 2008
3
Micrel, Inc.
MIC5235
Typical Characteristics
Power Supply
Rejection Ratio
Dropout Voltage
vs. Output Current
Dropout Voltage
vs. Temperature
350
300
250
200
150
100
50
500
450
400
350
300
250
200
150
100
50
70
ILOAD= 150mA
IOUT = 150mA
60
50
40
30
20
10
0
0
0
0
20 40 60 80 100 120 140 160
OUTPUT CURRENT (mA)
-40 -20
0
20 40 60 80 100120
0.01 0.1
1
10
100 1000
TEMPERATURE (°C)
FREQUENCY (kHz)
Dropout
Characteristics
Ground Pin Current
vs. Output Current
Ground Pin Current
vs. Output Current
3.5
3
30
28
26
24
22
20
18
16
14
12
10
3000
2500
2000
1500
1000
500
ILOAD= 100µA
ILOAD= 75mA
VIN = 4V
2.5
2
VIN = 24V
VIN = 12V
1.5
1
ILOAD= 150mA
VIN = 4V
0.5
0
0
0
100 200 300 400 500
OUTPUT CURRENT (µA)
0
0.5
1 1.5 2 2.5 3 3.5 4
0
20 40 60 80 100 120 140 160
OUTPUT CURRENT (mA)
INPUT VOLTAGE (V)
Ground Pin Current
vs. Temperature
Ground Pin Current
vs. Temperature
Ground Pin Current
vs. Temperature
80
75
70
65
60
55
50
45
40
700
680
660
640
620
600
580
560
540
520
500
2.5
2.4
2.3
2.2
2.1
2
ILOAD= 10mA
ILOAD= 75mA
ILOAD= 150mA
1.9
1.8
1.7
1.6
1.5
-40 -20
0
20 40 60 80 100 120
-40 -20
0
20 40 60 80 100 120
-40 -20
0
20 40 60 80 100120
TEMPERATURE (°C)
TEMPERATURE (°C)
TEMPERATURE (°C)
Ground Pin Current
vs. Input Voltage
Ground Pin Current
vs. Input Voltage
Ground Pin Current
vs. Input Voltage
2.4
2.2
2
40
35
30
25
20
15
10
100
90
80
70
60
50
40
30
20
10
0
IOUT = 10mA
IOUT =150mA
1.8
1.6
1.4
1.2
1
IOUT = 1mA
IOUT = 100µA
IOUT = 1mA
IOUT = 100µA
IOUT = 75mA
0.8
0.6
0.4
IOUT = 10µA
IOUT = 10µA
4
9
14
19
24
1.5
2
2.5
3
3.5
4
1.5
2
2.5
3
3.5
4
INPUT VOLTAGE (V)
INPUT VOLTAGE (V)
INPUT VOLTAGE (V)
M9999-051508
May 2008
4
Micrel, Inc.
MIC5235
Typical Characteristics (continued)
Input Current
vs. Supply Voltage
Output Voltage
vs. Temperature
Short Circuit Current
vs. Temperature
120
100
80
60
40
20
0
3.05
400
350
300
250
200
150
100
50
ILOAD= 100µA
3.04
3.03
3.02
3.01
3
2.99
2.98
2.97
2.96
2.95
VE N = 5V
RLOAD= 30
VIN = 4V
0
-40 -20
0
20 40 60 80 100120
-20
-10
0
10
-40 -20
0
20 40 60 80 100120
TEMPERATURE (°C)
SUPPLY VOLTAGE (V)
TEMPERATURE (°C)
150mA
0mA
VIN = 4V
VOUT = 3V
COUT = 4.7µF ceramic
M9999-051508
May 2008
5
Micrel, Inc.
MIC5235
Functional Diagram
OUT
IN
EN
ENABLE
1.24V
VREF
GND
Block Diagram – Fixed Output Voltage
OUT
IN
EN
ENABLE
R1
1.24V
VREF
ADJ
R2
GND
Block Diagram – Adjustable Output Voltage
M9999-051508
May 2008
6
Micrel, Inc.
MIC5235
T
− TA
Application Information
Enable/Shutdown
⎛
⎜
⎜
⎝
⎞
⎟
⎟
⎠
J(MAX)
PD(MAX)
=
θJA
The MIC5235 comes with an active-high enable pin that
allows the regulator to be disabled. Forcing the enable
pin low disables the regulator and sends it into a “zero”
off-mode-current state. In this state, current consumed
by the regulator goes nearly to zero. Forcing the enable
pin high enables the output voltage.
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 the
junction-to-ambient thermal resistance for the MIC5235.
Package
θJA Recommended
Minimum Footprint
Input Capacitor
SOT-23-5
235°C
The MIC5235 has high input voltage capability up to
24V. The input capacitor must be rated to sustain
voltages that may be used on the input. An input
capacitor may be required when the device is not near
the source power supply or when supplied by a battery.
Small, surface mount, ceramic capacitors can be used
for bypassing. Larger values may be required if the
source supply has high ripple.
Table 1. SOT-23-5 Thermal Resistance
The actual power dissipation of the regulator circuit can
be determined using the equation:
PD = (VIN – VOUT)IOUT + VINIGND
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, when operating the MIC5235-3.0BM5 at
50°C with a minimum footprint layout, the maximum
input voltage for a set output current can be determined
as follows:
Output Capacitor
The MIC5235 requires an output capacitor for stability.
The design requires 2.2µF or greater on the output to
maintain stability. The design is optimized for use with
low-ESR ceramic chip capacitors. High ESR capacitors
may cause high frequency oscillation. The maximum
recommended ESR is 3Ω. The output capacitor can be
increased without limit. Larger valued capacitors help to
improve transient response.
125°C − 50°C
235°C/W
⎛
⎜
⎞
⎟
PD(MAX)
=
⎝
⎠
PD(MAX) = 319mW
The junction-to-ambient (θJA) thermal resistance for the
minimum footprint is 235°C/W, from Table 1. It is
important that the maximum power dissipation not be
exceeded to ensure proper operation. Since the
MIC5235 was designed to operate with high input
voltages, careful consideration must be given so as not
to overheat the device. With very high input-to-output
voltage differentials, the output current is limited by the
total power dissipation. Total power dissipation is
calculated using the following equation:
X7R/X5R dielectric-type ceramic capacitors are
recommended
because
of
their
temperature
performance. X7R-type capacitors change capacitance
by 15% over their operating temperature range and are
the most stable type of ceramic capacitors. Z5U and
Y5V dielectric capacitors change value by as much as
50% and 60% respectively over their operating
temperature ranges. To use a ceramic chip capacitor
with Y5V dielectric, the value must be much higher than
a X7R ceramic capacitor to ensure the same minimum
capacitance over the equivalent operating temperature
range.
PD = (VIN – VOUT)IOUT + VIN × IGND
Due to the potential for input voltages up to 24V, ground
current must be taken into consideration. If we know the
maximum load current, we can solve for the maximum
input voltage using the maximum power dissipation
calculated for a 50°C ambient, 319mV.
No-Load Stability
The MIC5235 will remain stable and in regulation with no
load unlike many other voltage regulators. This is
especially important in CMOS RAM keep-alive
applications.
PD(MAX) = (VIN – VOUT)IOUT + VIN x IGND
319mW = (VIN – 3V)150mA + VIN x 2.8mA
Ground pin current is estimated using the typical
characteristics of the device.
Thermal Considerations
The MIC5235 is designed to provide 150mA of
continuous current in a very small package. 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 junction-to-ambient thermal resistance
of the device and the following basic equation:
769mW = VIN (152.8mA)
VIN = 5.03V
For higher current outputs only a lower input voltage will
work for higher ambient temperatures.
Assuming a lower output current of 20mA, the maximum
input voltage can be recalculated:
M9999-051508
May 2008
7
Micrel, Inc.
MIC5235
Where VREF = 1.24V.
319mW = (VIN – 3V)20mA + VIN x 0.2mA
379mW = VIN x 20.2mA
IN = 18.8V
Feedback resistor R2 should be no larger than 300kΩ.
MIC5235BM5
V
VIN
VOUT
Maximum input voltage for a 20mA load current at 50°C
ambient temperature is 18.8V, utilizing virtually the entire
operating voltage range of the device.
IN
OUT
R1
R2
EN
ADJ.
2.2µF
1.0µF
GND
Adjustable Regulator Application
The MIC5235BM5 can be adjusted from 1.24V to 20V by
using two external resistors (Figure 1). The resistors set
the output voltage based on the following equation:
Figure 1. Adjustable Voltage Application
⎛
⎜
⎝
⎞
⎟
⎟
⎠
⎛
⎞
R1
R2
⎜
⎜
⎜
⎟
⎟
VOUT = VREF 1+
⎝
⎠
M9999-051508
May 2008
8
Micrel, Inc.
MIC5235
Package Information
SOT-23-5 (M5)
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.
© 2003 Micrel, Incorporated.
M9999-051508
May 2008
9
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