TC7662BEOA Microchip Technology, TC7662BEOA Datasheet - Page 6

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TC7662BEOA

Manufacturer Part Number
TC7662BEOA
Description
IC CHARGE PUMP DC/DC CONV 8-SOIC
Manufacturer
Microchip Technology
Type
Switched Capacitor (Charge Pump), Invertingr
Datasheets

Specifications of TC7662BEOA

Package / Case
8-SOIC (3.9mm Width)
Internal Switch(s)
Yes
Synchronous Rectifier
No
Number Of Outputs
1
Voltage - Output
-1.5 ~ -15 V
Current - Output
20mA
Frequency - Switching
10kHz ~ 35kHz
Voltage - Input
1.5 ~ 15 V
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Power - Output
470mW
Minimum Operating Temperature
- 40 C
Mounting Style
SMD/SMT
Function
Inverting
Output Voltage
- 15 V to - 1.5 V
Output Current
20 mA
Maximum Operating Temperature
+ 85 C
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant
Other names
158-1060
158-1060

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
TC7662BEOA
Manufacturer:
MICROCHIP/微芯
Quantity:
20 000
Part Number:
TC7662BEOA713
Manufacturer:
MICROCHIP
Quantity:
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Part Number:
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0
TC7662A
4.0
4.1
The majority of applications will undoubtedly utilize the
TC7662A for generation of negative supply voltages.
Figure 4-1 shows typical connections to provide a
negative supply where a positive supply of +3V to +18V
is available.
FIGURE 4-1:
The output characteristics of the circuit in Figure 4-1
are those of a nearly ideal voltage source in series with
a resistance as shown in Figure 4-1b. The voltage
source has a value of -(V
(R
MOS switches (shown in the Functional Block
Diagram), the switching frequency, the value of C
C
and C
DS21468B-page 6
10µF
R
O
, and the ESR (equivalent series resistance) of C
) is a function of the ON resistance of the internal
(f
R
PUMP
O
R
+
. A good first order approximation for R
≅ 2(R
TYPICAL APPLICATIONS
Simple Negative Voltage
Converter
=
1
2
3
4
SW1
f
ESR
OSC
2
TC7662A
+ R
A
, R
CP
SW2
SWX
) +
SIMPLE NEGATIVE
CONVERTER AND ITS
OUTPUT EQUIVALENT
10µF
f
PUMP
8
7
6
5
+ ESR
= MOSFET switch resistance)
V
DD
+
DD
1
x C
). The output impedance
CP
V
) + 2(R
P
OUT
+ ESR
= -V+
SW3
CR
V
V
V
V
+ R
DD
DD
DD
DD
+
R
O
SW4
O
B
is:
P
V
+
OUT
and
P
Combining the four R
R
voltage and temperature (See Section 5.0, Typical
Characteristics “Output Source Resistance” graphs),
typically 23Ω at +25°C and 5V. Careful selection of C
and C
output impedance.
reduce the 1/(f
capacitors will lower the ESR term. Increasing the
oscillator frequency will reduce the 1/(f
but may have the side effect of a net increase in output
impedance when C
time to fully charge the capacitors every cycle. In a typ-
ical application when f
10µF:
Since the ESRs of the capacitors are reflected in the
output impedance multiplied by a factor of 5, a high
value could potentially swamp out a low 1/(f
term, rendering an increase in switching frequency
or filter capacitance ineffective. Typical electrolytic
capacitors may have ESRs as high as 10Ω.
SW
R
O
R
, the total switch resistance, is a function of supply
≅ 2 x 23 +
O
R
≅ 2 x R
will reduce the remaining terms, minimizing the
R
SW
(5 x 12
O
PUMP
+
≅ (46 + 20 + 5 x ESR
f
PUMP
P
3
SWX
> 10µF and there is not enough
x C
OSC
x 10 x 10
High
1
1
 2002 Microchip Technology Inc.
x C
P
terms as R
= 12kHz and C = C
) component, and low ESR
P
+ 4 x ESR
value
-6
)
+ 4 x ESR
C
) Ω
SW
PUMP
CP
capacitors
, we see that:
+ ESR
CP
PUMP
x C
+ ESR
P
CR
P
= C
) term,
x C
CR
R
will
P
=
P
)

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