参数资料
型号: ISL55002IBZ-T7
厂商: Intersil
文件页数: 12/12页
文件大小: 0K
描述: IC OPAMP 200MHZ UNITY-GAIN 8SOIC
产品培训模块: Solutions for Industrial Control Applications
标准包装: 1
放大器类型: 电压反馈
电路数: 2
转换速率: 300 V/µs
增益带宽积: 70MHz
-3db带宽: 200MHz
电流 - 输入偏压: 600nA
电压 - 输入偏移: 1200µV
电流 - 电源: 8.5mA
电流 - 输出 / 通道: 140mA
电压 - 电源,单路/双路(±): 4.5 V ~ 30 V,±2.25 V ~ 15 V
工作温度: -40°C ~ 85°C
安装类型: 表面贴装
封装/外壳: 8-SOIC(0.154",3.90mm 宽)
供应商设备封装: 8-SOIC
包装: 标准包装
产品目录页面: 1235 (CN2011-ZH PDF)
其它名称: ISL55002IBZ-T7DKR
9
FN7497.4
July 27, 2006
For sourcing:
For sinking:
Where:
VS = Supply voltage
ISMAX = Maximum quiescent supply current
VOUT = Maximum output voltage of the application
RLOAD = Load resistance tied to ground
ILOAD = Load current
N = number of amplifiers (max = 2)
By setting the two PDMAX equations equal to each other, we
can solve the output current and RLOAD to avoid the device
overheat.
Power Supply Bypassing Printed Circuit Board
Layout
As with any high frequency device, a good printed circuit
board layout is necessary for optimum performance. Lead
lengths should be as short as possible. The power supply
pin must be well bypassed to reduce the risk of oscillation.
For normal single supply operation, where the VS- pin is
connected to the ground plane, a single 4.7F tantalum
capacitor in parallel with a 0.1F ceramic capacitor from VS+
to GND will suffice. This same capacitor combination should
be placed at each supply pin to ground if split supplies are to
be used. In this case, the VS- pin becomes the negative
supply rail.
Printed Circuit Board Layout
For good AC performance, parasitic capacitance should be
kept to minimum. Use of wire wound resistors should be
avoided because of their additional series inductance. Use
of sockets should also be avoided if possible. Sockets add
parasitic inductance and capacitance that can result in
compromised performance. Minimizing parasitic capacitance
at the amplifier's inverting input pin is very important. The
feedback resistor should be placed very close to the
inverting input pin. Strip line design techniques are
recommended for the signal traces.
Application Circuits
Sallen Key Low Pass Filter
A common and easy to implement filter taking advantage of
the wide bandwidth, low offset and low power demands of
the ISL55002. A derivation of the transfer function is
provided for convenience (See Figure 28).
Sallen Key High Pass Filter
Again this useful filter benefits from the characteristics of the
ISL55002. The transfer function is very similar to the low
pass so only the results are presented (See Figure 29).
PD
MAX
V
S
I
SMAX
V
S
V
OUTi
()
i1
=
n
V
OUTi
R
Li
-----------------
×
+
×
=
PD
MAX
V
S
I
SMAX
V
OUTi
V
S
()
i1
=
n
I
LOADi
×
+
×
=
K
3
1
Q
RC
1
wo
K
Holp
C
R
C
R
C
R
C
R
C
R
C
R
)
K
1
(
1
Q
C
R
C
R
1
wo
K
Holp
)
C
R
C
R
C
R
)
K
1
((
jw
C
R
C
R
w
1
)
jw
(
H
1
s
)
C
R
C
R
C
R
)
K
1
((
s
C
R
C
R
K
)
s
(
H
0
s
C
1
Vi
Vo
R
V
K
Vo
1
R
Vi
V
1
s
C
R
1
K
Vo
R
1
K
1
2
1
2
1
2
1
2
1
2
1
2
1
2
21
2
1
2
1
2
1
2
A
B
=
+
=
+
+
=
+
+
=
+
+
+
=
+
=
Equations simplify if we let all
components be equal R=C
+
-
V+
V-
V2
5V
C5
1nF
VOUT
R7
1k
V3
5V
R1
1k
R2
1k
C
2
1nF
V1
C1
1nF
C5
1nF
RA
1k
RB
1k
FIGURE 28. SALLEN-KEY LOW PASS FILTER
ISL55002
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