LT3022EDHC#PBF Linear Technology, LT3022EDHC#PBF Datasheet - Page 13

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LT3022EDHC#PBF

Manufacturer Part Number
LT3022EDHC#PBF
Description
IC REG LDO ADJ 1A 16DFN
Manufacturer
Linear Technology
Datasheet

Specifications of LT3022EDHC#PBF

Regulator Topology
Positive Adjustable
Voltage - Output
0.2 ~ 9.5 V
Voltage - Input
0.9 ~ 10 V
Voltage - Dropout (typical)
0.145V @ 1A
Number Of Regulators
1
Current - Output
1A
Current - Limit (min)
1.1A
Operating Temperature
-40°C ~ 125°C
Mounting Type
Surface Mount
Package / Case
16-WFDFN, Exposed Pad
Lead Free Status / RoHS Status
Lead free / RoHS Compliant

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APPLICATIONS INFORMATION
and are more suitable for use as the output capacitor at
fractionally increased cost. X5R and X7R dielectrics both
exhibit excellent voltage coeffi cient characteristics. X7R
works over a larger temperature range and exhibits better
temperature stability whereas X5R is less expensive and
is available in higher values. Figures 2 and 3 show voltage
coeffi cient and temperature coeffi cient comparisons
between Y5V and X5R material.
Figure 3. Ceramic Capacitor Temperature Characteristics
Figure 2. Ceramic Capacitor DC Bias Characteristics
–100
–100
–20
–40
–60
–80
–20
–40
–60
–80
20
40
20
0
0
–50
0
BOTH CAPACITORS ARE 16V,
1210 CASE SIZE, 10μF
2
–25
4
DC BIAS VOLTAGE (V)
0
TEMPERATURE (°C)
BOTH CAPACITORS ARE 16V,
1210 CASE SIZE, 10μF
6
25
8
Y5V
X5R
50
10
Y5V
75
12
X5R
100
14
3022 F02
3022 F03
16
125
Voltage and temperature coeffi cients are not the only
sources of problems. Some ceramic capacitors have a
piezoelectric response. A piezoelectric device generates
voltage across its terminals due to mechanical stress,
similar to the way a piezoelectric accelerometer or
microphone works. For a ceramic capacitor, the stress can
be induced by vibrations in the system or thermal transients.
The resulting voltages produced can cause appreciable
amounts of noise. A ceramic capacitor produced Figure 4’s
trace in response to light tapping from a pencil. Similar
vibration induced behavior can masquerade as increased
output voltage noise.
No-Load/Light-Load Recovery
A possible transient load step that occurs is where the
output current changes from its maximum level to zero
current or a very small load current. The output voltage
responds by overshooting until the regulator lowers the
amount of current it delivers to the new level. The regulator
loop response time and the amount of output capacitance
control the amount of overshoot. Once the regulator has
decreased its output current, the current provided by
the resistor divider (which sets V
remaining to discharge the output capacitor from the level
to which it overshot. The amount of time it takes for the
output voltage to recover easily extends to milliseconds
with minimum divider current and many microfarads of
output capacitance.
Figure 4. Noise Resulting from Tapping on a Ceramic Capacitor
1mV/DIV
V
C
I
LOAD
OUT
OUT
LT3022-1.5/LT3022-1.8
= 1.3V
= 10μF
= 0
LT3022/LT3022-1.2
1ms/DIV
OUT
) is the only current
3022 F04
13
3022fa

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