TL074L-S14-T [UTC]
Operational Amplifier, 4 Func, 7000uV Offset-Max, BIPolar, PDSO14, LEAD FREE, SOP-14;型号: | TL074L-S14-T |
厂家: | Unisonic Technologies |
描述: | Operational Amplifier, 4 Func, 7000uV Offset-Max, BIPolar, PDSO14, LEAD FREE, SOP-14 放大器 光电二极管 |
文件: | 总10页 (文件大小:147K) |
中文: | 中文翻译 | 下载: | 下载PDF数据表文档文件 |
UNISONIC TECHNOLOGIES CO., LTD
TL074
LINEAR INTEGRATED CIRCUIT
LOW NOISE QUAD J-FET
OPERATIONAL AMPLIFIER
SOP-14
ꢀ
DESCRIPTION
The UTC TL074 is a high speed J-FET input quad
operational amplifier. It incorporates well matched, high
voltage J-FET and bipolar transistors in monolithic
a
integrated circuit. The device features high slew rates, low
input bias and offset current, and low offset voltage
temperature coefficient.
DIP-14
ꢀ
FEATURES
*Low power consumption
*Wide common-mode (up to Vcc+ ) and differential voltage
range
*Pb-free plating product number: TL074L
*Low input bias and offset current
*Low noise eN = 15nV / √ Hz(typ)
*Output short-circuit protection
*High input impedance J-FET input stage
*Low harmonic distortion:0.01%(typ)
*Internal frequency compensation
*Latch up free operation
*High slewrate:13V/µs(typ)
ꢀ
ORDERING INFORMATION
Ordering Number
Package
Packing
Normal
Lead Free Plating
TL074-D14-T
TL074-S14-R
TL074-S14-T
TL074L-D14-T
TL074L-S14-R
TL074L-S14-T
DIP-14
SOP-14
SOP-14
Tube
Tape Reel
Tube
TL074L-D14-T
(1)Packing Type
(2)Package Type
(3)Lead Plating
(1) T: Tube, R: Tape Reel
(2) D14: DIP-14, S14: SOP-14
(3) L: Lead Free Plating, Blank: Pb/Sn
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Copyright © 2007 Unisonic Technologies Co., Ltd
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TL074
LINEAR INTEGRATED CIRCUIT
ꢀ
PIN CONFIGURATIONS
Output 1 1
14 Output 4
-
-
Inverting Input 1 2
13 Inverting Input4
+
+
Non-inverting Input1 3
12 Non-inverting Input4
VCC+ 4
11 VCC
-
Non-inverting Input2 5
10 Non-inverting Input3
+
+
-
-
Inverting Input 2
Output 2
6
7
9
8
Inverting Input3
Output 3
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TL074
LINEAR INTEGRATED CIRCUIT
ꢀ
SCHEMATIC DIAGRAM
VCC+
Non-inverting
Input
Non-inverting
Input
100Ω
200Ω
Output
100Ω
30k
8.2k
1.3k
100Ω
1.3k
35k
35k
VCC
-
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TL074
LINEAR INTEGRATED CIRCUIT
ꢀ
ABSOLUTE MAXIMUM RATINGS (Ta=25
°C)
PARAMETER
SYMBOL
VCC
RATING
±18
UNIT
V
Supply Voltage (Note 1)
Input Voltage (Note 2)
VIN
±15
V
Differential Input Voltage (Note 3)
Power Dissipation
VI(DIFF)
PD
±30
V
680
mW
Output Short-Circuit Duration (Note 4)
Operating Temperature
Storage Temperature
Infinite
0 ~ 70
5 ~ 150
TOPR
TSTG
°
°
C
C
Notes: 1. All voltage values, except differential voltage, are with respect to the zero reference level (ground) of
the supply voltages where the zero reference level is the midpoint between Vcc- and Vcc+.
2. The magnitude of the input voltage must never exceed the magnitude of the supply voltage or 15 volts,
whichever is less.
3. Differential voltages are at the non-inverting input terminal with respect to the inverting input terminal.
4. The output may be shorted to ground or to either supply. Temperature and/or supply voltages must be
limited to ensure that the dissipation rating is not exceeded.
5. Absolute maximum ratings are those values beyond which the device could be permanently damaged.
Absolute maximum ratings are stress ratings only and functional device operation is not implied.
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TL074
LINEAR INTEGRATED CIRCUIT
ꢀ
ELECTRICAL CHARACTERISTICS
(
Vcc=±15V, Ta=25
°
C, unless otherwise specified
)
PARAMETER SYMBOL
TEST CONDITIONS
Ta=25
TMIN≤Ta≤TMAX
MIN
TYP
3
MAX
6
UNIT
mV
°
C
Input Offset Voltage
VI(OFF)
Rs=50Ω
7
mV
Temperature Coefficient of Input
Offset Voltage
Δ
VI(OFF)
Rs=50
Ω
10
5
µV/°C
Ta=25
TMIN≤Ta≤TMAX
Ta=25
°
C
100
4
pA
nA
Input Offset Current*
II(OFF)
°
C
20
200
20
pA
nA
V
Input Bias Current*
II(BIAS)
VI(CM)
T
MIN≤Ta≤TMAX
Input Common Mode Voltage
±11 -12~+15
RL=2k
Ω
Ω
10
12
10
12
50
25
2
12
V
Ta=25
°
C
C
RL=10k
13.5
V
Output Voltage Swing
VO(SW)
RL=2kΩ
V
T
MIN≤Ta≤TMAX
RL=10k
RL=10k
Ω
Ω
V
,
Ta=25
°
200
V/mV
V/mV
MHz
Ω
Large Signal Voltage Gain
GV
VOUT=±10V
TMIN≤Ta≤T MAX
, CL=100pF
Gain Bandwidth Product
Input Resistance
GBW
RIN
RL=10k
Ω
3
1012
86
Ta=25
TMIN≤Ta≤T MAX
Ta=25
TMIN≤Ta≤T MAX
Ta=25
TMIN≤Ta≤T MAX
°
C
80
80
80
80
dB
Common Mode Rejection Ratio
Supply Voltage Rejection Ratio
CMR
SVR
ICC
RS=50
Ω
dB
°
C
86
dB
RS=50
Ω
dB
°
C
1.4
2.5
2.5
mA
mA
dB
Supply Current
No Load
Channel Separation
Output Short-circuit Current
V01/V02 Gv=100
120
40
Ta=25
°
C
10
10
60
60
mA
mA
IO(SC)
SR
T
MIN≤Ta≤T MAX
VIN=10V, RL=2k
unity gain
Ω, CL=100pF,
Slew Rate
8
13
0.1
10
V/µs
VIN=20mV, RL=2k
unity gain
Ω
, CL=100pF,
, CL=100pF,
Rise Time
tR
µs
VIN=20mV, RL=2k
unity gain
Ω
Overshoot Factor
Total Harmonic Distortion
Kov
THD
%
%
Gv=20dB, f=1kHz, RL=2k
CL=100pF, VOUT=2Vpp)
Ω,
0.01
Phase Margin
45
15
Deg.
Equivalent Input Noise Voltage
eN
RS=100Ω, f=1KHz
*The Input bias currents are junction leakage currents, which approximately double for every 10
junction temperature.
°
C increase in the
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TL074
LINEAR INTEGRATED CIRCUIT
ꢀ
PARAMETER MEASUREMENT INFORMATION
Figure 1. Voltage Follow
Figure 2. Gain-of-10 Inverting Amplifier
10KΩ
-
1KΩ
-
e1
UTC TL074
e0
UTC TL074
e0
+
+
CL = 100pF
RL = 2KΩ
e1
RL
CL = 100pF
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TL074
LINEAR INTEGRATED CIRCUIT
ꢀ
TYPICAL APPLICATION
fO = 100kHz
-
UTC TL074
Output A
Output B
Output C
1MΩ
+
-
-
UTC TL074
+
1μF
100kΩ
100μF
UTC TL074
+
Input
100kΩ
100kΩ
VCC+
-
100kΩ
UTC TL074
+
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TL074
LINEAR INTEGRATED CIRCUIT
ꢀ
TYPICAL CHARACTERISTICS
Maximum Peak-To-Peak Output
Voltage Versus Frequency
Maximum Peak-To-Peak Output
Voltage Versus Frequency
30
25
30
25
RL = 10KΩ
Ta = +25℃
See Figure 2
Vcc = ±15V
RL = 2KΩ
Ta = +25℃
See Figure 2
Vcc = ±15V
20
20
Vcc = ±10V
Vcc = ±10V
Vcc = ±5V
15
10
5
15
10
5
Vcc = ±5V
0
0
100
1K
10K
100K
1M
10M
100
1K
10K
100K
1M
10M
Frequency(Hz)
Frequency(Hz)
Maximum Peak-To-Peak Output
Voltage Versus Frequency
Maximum Peak-To-Peak Output Voltage
Versus Free Air Temp
30
25
20
30
25
20
Vcc = ±15V
RL = 2KΩ
Ta = +25℃
See Figure 2
Vcc = ±10V
RL = 10KΩ
RL = 2KΩ
15
10
5
15
10
5
Ta = -55℃
Vcc = ±5V
Vcc = ±15V
See Figure 2
Tamb = +125℃
0
0
10K
40K
100K
400K
1M
4M
10M
-75 -50 -25
0
25
50
75 100 125
Frequency(Hz)
Temperature (℃)
Maximum Peak-To-Peak Output Voltage
Versus Load Resistance
Maximum Peak-To-Peak Output Voltage
Versus Supply Voltage
30
25
30
25
Vcc = ±15V
Ta = +25℃
See Figure 2
RL = 10KΩ
Ta = +25℃
20
20
15
10
5
15
10
5
0
0
0.1 0.2
0.4
0.7
1
2
4
7
10
2
4
6
8
10
12
14 16
Load Resistance(kΩ)
Supply Voltage(±V)
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TL074
LINEAR INTEGRATED CIRCUIT
ꢀ
TYPICAL CHARACTERISTICS(Cont.)
Large Signal Differential Voltage Amplification
Versus Free Air Temperature
Input Bias Current Versus Free Air Temperature
Vcc = ±15V
100
10
1000
400
200
100
40
20
10
1
0.1
Vcc = ±15V
VoUT = ±10V
RL = 2KΩ
4
2
1
0.01
-50
-25
0
25
50
75
100 125
-75 -50 -25
0
25
50
75 100 125
Temperature (℃)
Temperature (℃)
Large Signal Differential Voltage Amplification
And Phase Shift Versus Frequency
Total Power Dissipation Versus Free Air
Temperature
250
225
Vcc = ±15V
No signal
No load
100
10
1
180
90
0
Differential
Voltage
Amplification
(left scale)
200
175
150
125
100
75
Phase Shift
(right scale)
RL = 2KΩ
CL = 100pF
Vcc = ±15V
Ta = +125℃
50
25
0
100
1K
10K
100K
1M
10M
-75 -50 -25
0
25
50
75 100 125
Frequency(Hz)
Temperature (℃)
Supply Current Per Amplifier Versus Free Air
Temperature
Common Mode Rejection Ratio Versus Free Air
Temperature
2.0
89
88
1.8
1.6
Vcc = ±15V
No signal
No load
RL = 10KΩ
Vcc = ±15V
1.4
87
86
1.2
1.0
0.8
0.6
85
84
83
0.4
0.2
0
-75 -50 -25
0
25
50
75 100 125
-75 -50 -25
0
25
50
75 100 125
Temperature (℃)
Temperature (℃)
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TL074
LINEAR INTEGRATED CIRCUIT
ꢀ
TYPICAL CHARACTERISTICS(Cont.)
Voltage Follower Large Signal Pulse Response
Output Voltage Versus Elapsed Time
6
4
28
24
20
overshoot
90%
OUTPUT
INPUT
2
0
16
86
8
Vcc = ±15V
RL = 2KΩ
CL = 100pF
-2
-4
-6
Vcc = ±15V
RL = 2KΩ
4
0
10%
Ta = +25℃
Ta = +25℃
tr
0.1
-4
0
0.5
1
1.5
2
2.5
3
3.5
-75
0
0.2 0.3
0.4 0.5 0.6 0.7
Time (μs)
Time (μs)
Equivalent Input Noise Voltage Versus
Frequency
Total Harmonic Distortion Versus
Frequency
70
60
50
1
Vcc = ±15V
Av = 1
Vcc = ±15V
Av = 10
Rs = 100Ω
Ta = +25℃
0.4
V
O(MAX) = 6V
Ta = +25℃
0.1
40
30
0.04
0.01
20
10
0
0.004
0.001
10 40 100 400 1K
4K
10K 40K 100K
100
400
1K
4K
10K
40K 100K
Frequency (Hz)
Frequency(Hz)
UTC assumes no responsibility for equipment failures that result from using products at values that
exceed, even momentarily, rated values (such as maximum ratings, operating condition ranges, or
other parameters) listed in products specifications of any and all UTC products described or contained
herein. UTC products are not designed for use in life support appliances, devices or systems where
malfunction of these products can be reasonably expected to result in personal injury. Reproduction in
whole or in part is prohibited without the prior written consent of the copyright owner. The information
presented in this document does not form part of any quotation or contract, is believed to be accurate
and reliable and may be changed without notice.
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