Datasheet MIC916BQS Datasheet (MICREL)

Page 1
MIC916 Micrel
MIC916
Triple 135MHz Low-Power Op Amp
General Description
The MIC916 is a high-speed, unity-gain stable operational amplifier. It provides a gain-bandwidth product of 135MHz with a very low, 2.4mA supply current per op amp.
The MIC916 is stable driving any capacitative load and achieves excellent PSRR, making it much easier to use than most conventional high-speed devices. Low supply voltage , low power consumption, and small packing make the MIC916 ideal for portable equipment. The ability to drive capacitative loads also makes it possible to drive long coaxial cables.
Pin Configuration
Features
• 135MHz gain bandwidth product
• 2.4mA supply current per op amp
• QSOP-16 package
• 270V/µs slew rate
• drives any capacitive load
Applications
• Video
• Imaging
• Ultrasound
• Portable equipment
Ordering Information
Part Number Junction Temp. Range Package
MIC916BQS –40°C to +85°C QSOP-16
* V– pins must be externally shorted together
INA-
V+(A)
INA+
INB-
INB+
INC-
NC
INC+
1
2
3
4
5
6
7
8
QSOP-16
16
15
14
13
12
11
10
9
V–(A)*
OUTA
V–(B)*
OUTB V+(B) V–(C)* OUTC V+(C)
September 2000 1 MIC916
Page 2
MIC916 Micrel
Pin Description
Pin Number Pin Name Pin Function
1 INA– Inverting Input A 2 V+(A) Positive Supply Input (Op Amp A) 3 INA+ Noninverting Input A 4 INB– Inverting Input B 5 INB+ Noninverting Input B 6 INC– Inverting Input C 7 NC Not Connected 8 INC+ Noninverting Input C
9 V+(C) Positive Supply Input (Op Amp C) 10 OUTC Output C 11 V–(C) Negative Supply Input (Op Amp C) 12 V+(B) Positive Supply Input(Op Amp B) 13 OUTB Output B 14 V–(B) Negative Supply Input (Op Amp B) 15 OUTA Output A 16 V–(A) Negative Supply Input (Op Amp A)
MIC916 2 September 2000
Page 3
MIC916 Micrel
Absolute Maximum Ratings (Note 1)
Supply Voltage (V Differentail Input Voltage (V Input Common-Mode Range (V
– VV–)...........................................20V
V+
IN+
– V
IN+
) ..........8V, Note 4
IN–
, V
) .......... VV+ to V
IN–
Operating Ratings (Note 2)
Supply Voltage (V Junction Temperature (T
Package Thermal Resistance ...............................260°C/W
V–
) ....................................... ±2.5V to ±9V
S
) ......................... –40°C to +85°C
J
Lead Temperature (soldering, 5 sec.) .......................260°C
Storage Temperature (T
) ........................................ 150°C
S
ESD Rating, Note 3 ................................................... 1.5kV
Electrical Characteristics (±5V)
VV+ = +5V, VV– = –5V, VCM = 0V, V
Symbol Parameter Condition Min Typ Max Units
V
OS
V
OS
Input Offset Voltage 1 15 mV Input Offset Voltage 4 µV/°C
Temperature Coefficient
I
B
I
OS
V
CM
Input Bias Current 3.5 5.5 µA
Input Offset Current 0.05 3 µA Input Common-Mode Range CMRR > 60dB –3.25 +3.25 V
CMRR Common-Mode Rejection Ratio –2.5V < V
PSRR Power Supply Rejection Ratio ±5V < V
A
V
VOL
OUT
Large-Signal Voltage Gain RL = 2k, V
Maximum Output Voltage Swing positive, RL = 2k +3.3 3.5 V
GBW Gain-Bandwidth Product RL = 1k 125 MHz BW –3dB Bandwidth AV = 1, RL = 100 192 MHz SR Slew Rate 230 V/µs
Crosstalk f = 1MHz,
I
GND
I
GND
Short-Circuit Output Current source 72 mA
Supply Current per Op Amp 2.4 3.5 mA
= 0V; RL = 10MΩ; TJ = 25°C, bold values indicate –40°C ≤ TJ +85°C; unless noted.
OUT
< +2.5V 70 90 dB
CM
60 dB
< ±9V 74 81 dB
S
70 dB
= ±2V 60 71 dB
OUT
RL = 200, V
= ±2V 60 71 dB
OUT
+3.0 V
negative, R
positive, R
= 2k –3.5 –3.3 V
L
= 200 +3.0 3.2 V
L
+2.75 V
negative, R
f = 1 MHz,
= 200 –2.8 –2.45 V
L
between op amp A and B or B and C
56 dB
between op amp A and C 72
sink 25 mA
9 µA
–3.0 V
–2.2 V
dB
4.1 mA
Electrical Characteristics
VV+ = +9V, VV– = –9V, VCM = 0V, V
Symbol Parameter Condition Min Typ Max Units
V
OS
V
OS
Input Offset Voltage 1 15 mV Input Offset Voltage 4 µV/°C
Temperature Coefficient
September 2000 3 MIC916
= 0V; RL = 10MΩ; TJ = 25°C, bold values indicate –40°C ≤ TJ +85°C; unless noted
OUT
Page 4
MIC916 Micrel
Symbol Parameter Condition Min Typ Max Units
I
B
I
OS
V
CM
CMRR Common-Mode Rejection Ratio –6.5V < V
A
VOL
V
OUT
GBW Gain-Bandwidth Product RL = 1k 135 MHz SR Slew Rate 270 V/µs
I
GND
I
GND
Input Bias Current 3.5 5.5 µA
9 µA Input Offset Current 0.05 3 µA Input Common-Mode Range CMRR > 60dB –7.25 +7.25 V
< 6.5V 70 98 dB
CM
60 dB
Large-Signal Voltage Gain RL = 2k, V
= ±6V 60 73 dB
OUT
Maximum Output Voltage Swing positive, RL = 2k +7.2 +7.4 V
+6.8 V
negative, R
= 2k –7.4 –7.2 V
L
–6.8 V
Crosstalk f = 1MHz,
f = 1 MHz,
between op amp A and B or B and C
between op amp A and C
56 dB 72 dB
Short-Circuit Output Current source 90 mA
sink 32 mA
Supply Current per Op Amp 2.5 3.7 mA
4.3 mA
Note 1. Exceeding the absolute maximum rating may damage the device. Note 2. The device is not guaranteed to function outside its operating rating. Note 3. Devices are ESD sensitive. Handling precautions recommended. Human body model, 1.5k in series with 100pF. Note 4. Exceeding the maximum differential input voltage will damage the input stage and degrade performance (in particular, input bias current is
likely to increase.
V
R7
R5 5k
CC
R2 5k
10µF
0.1µF
0.1µF
10µF
V
EE
5
 
BNC
Test Circuits
BNC
Input
10k
BNC
Input
10k
10k
50
50
0.1µF
0.1µF
50
V
CC
10µF
0.1µF
2k
0.1µF
BNC
Output
Input
BNC
VV
R1 5k
R7c 2k
R7b 200
R7a 100
All resistors 1%
=++
OUT ERROR
R6
5k
200k
R2R1R2 R R4
1
CMRR vs. Frequency
R3
R4
250
++
Output
All resistors: 1% metal film
10µF
V
EE
PSRR vs. Frequency
MIC916 4 September 2000
Page 5
MIC916 Micrel
c
r
100pF
V
CC
R1
20
R5
20
10pF
R3 27k
S1 S2
R4 27k
10pF
R2 4k
10µF
0.1µF
0.1µF
10µF
V
EE
Noise Measurement
BNC
To Dynami Analyze
September 2000 5 MIC916
Page 6
MIC916 Micrel
Electrical Characteristics
Supply Current
vs. Supply Voltage
3.5
+85°C
3.0
2.5
SUPPLY CURRENT (mA)
2.0 2345678910
SUPPLY VOLTAGE (±V)
+25°C
-40°C
Bias Current
vs. Temperature
5
4
V
= ±5V
V
SUPPLY
SUPPLY
= ±9V
3
2
BIAS CURRENT (µA)
1
-40 -20 0 20 40 60 80 100
TEMPERATURE (°C)
Supply Current
vs. Temperature
4.0
3.5 V
= ±9V
SUPPLY
3.0
2.5
SUPPLY CURRENT (mA)
2.0
-40 -20 0 20 40 60 80 100
V
= ±5V
SUPPLY
TEMPERATURE (°C)
Offset Voltage
vs. Common-Mode Voltage
6
5
4
+85°C
3
2
1
OFFSET VOLTGE (mV)
+25°C
0
-8-6-4-202468
COMMON-MODE VOLTAGE (V)
V
SUPPLY
= ±9V
-40°C
Offset Voltage
vs. Temperature
2.5
V
= ±5V
SUPPLY
2.0
V
= ±9V
1.5
OFFSET VOLTAGE (mV)
1.0
-40 -20 0 20 40 60 80 100
SUPPLY
TEMPERATURE (°C)
Offset Voltage
vs. Common-Mode Voltage
5
4
3
2
-40°C
1
OFFSET VOLTGE (mV)
0
-5 -4 -3 -2 -1 0 1 2 3 4 5
COMMON-MODE VOLTAGE (V)
+85°C
+25°C
V
SUPPLY
= ±5V
Short-Circuit Current
vs. Temperature
95 90 85 80 75 70 65
SUPPLY CURRENT (mA)
60 55
-40 -20 0 20 40 60 80 100
V
SUPPLY
SOURCING
CURRENT
V
= ±5V
SUPPLY
TEMPERATURE (°C)
= ±9V
Short-Circuit Current
vs. Supply Voltage
-15
-20
-25
-30
-35 SINKING
OUTPUT CURRENT (mA)
CURRENT
-40
2345678910
SUPPLY VOLTAGE (±V)
-40°C +85°C
+25°C
Short-Circuit Current
vs. Temperature
-20
-25
-30
-35
SUPPLY CURRENT (mA)
-40
-40 -20 0 20 40 60 80 100
V
= ±5V
SUPPLY
SINKING
CURRENT
V
= ±9V
SUPPLY
TEMPERATURE (°C)
Output Voltage
vs. Output Current
10
9 8 7 6 5 4 3 2
OUTPUT VOLTAGE (V)
SOURCING
1
CURRENT
0
0 20406080100
OUTPUT CURRENT (mA)
V
SUPPLY
+85°C
= ±9V
+25°C
-40°C
Short-Circuit Current
vs. Supply Voltage
100
80
60
40
OUTPUT CURRENT (mA)
20
2345678910
-40°C +25°C
+85°C
SOURCING
CURRENT
SUPPLY VOLTAGE (±V)
Output Voltage
vs. Output Current
0
-1
-2
-3
-4
+25°C
-5
-6
-7
-8
OUTPUT VOLTAGE (V)
V
-9
SUPPLY
-10
-40 -30 -20 -10 0
OUTPUT CURRENT (mA)
-40°C +85°C
= ±9V
SINKING
CURRENT
MIC916 6 September 2000
Page 7
MIC916 Micrel
0
25
50
75
100
125
150
34
36
38
40
42
44
46
0 200 400 600 800 1000
GAIN BANDWIDTH (MHz)
PHASE MARGIN (°)
CAPACITIVE LOAD (pF)
Gain Bandwidth and
Phase Margin vs. Load
V
SUPPLY
= ±5V
0
20
40
60
80
100
1x1021x1031x1041x1051x1061x10
7
+PSRR (dB)
FREQUENCY (Hz)
0
20
40
60
80
100
1x1021x1031x1041x1051x1061x10
7
–PSRR (dB)
FREQUENCY (Hz)
-100
-90
-80
-70
-60
-50
-40
-30
-20
-10
0
1x1051x1061x10
7
1x10
8
CROSS TALK (dB)
FREQUENCY (Hz)
Distant Channel
Cross Talk
Output Voltage
vs. Output Current
4.5
4.0
3.5
3.0
2.5
2.0
1.5
1.0
OUTPUT VOLTAGE (V)
SOURCING
0.5 CURRENT
0
0 20406080
OUTPUT CURRENT (mA)
+85°C
V
SUPPLY
+25°C
= ±5V
-40°C
Gain Bandwidth and
Phase Margin vs. Load
150
125
100
75
50
25
GAIN BANDWIDTH (MHz)
0
0 200 400 600 800 1000
V
= ±9V
SUPPLY
CAPACITIVE LOAD (pF)
Output Voltage
vs. Output Current
0.0
-0.5
-1.0
-1.5
-2.0
-2.5
-3.0
-3.5
OUTPUT VOLTAGE (V)
-4.0
V
SUPPLY
-4.5
-30 -25 -20 -15 -10 -5 0
OUTPUT CURRENT (mA)
Gain Bandwidth and
Phase Margin vs. Supply Voltage
46
44
42
40
38
PHASE MARGIN (°)
36
34
150
125
100
75
50
25
GAIN BANDWIDTH (MHz)
0
2345678910
SUPPLY VOLTAGE (±V)
-40°C
= ±5V
SINKING
CURRENT
+25°C
+85°C
Common-Mode
54
52
50
48
46
PHASE MARGIN (°)
44
42
120
100
CMRR (dB)
Rejection Ratio
80
60
40
20
V
= ±9V
SUPPLY
0
1x1021x1031x1041x1051x1061x10
FREQUENCY (Hz)
7
September 2000 7 MIC916
Common-Mode
120
100
80
60
CMRR (dB)
40
20
Rejection Ratio
V
= ±5V
SUPPLY
0
1x1021x1031x1041x1051x1061x10
FREQUENCY (Hz)
Positive Power Supply
100
80
60
40
+PSRR (dB)
20
Rejection Ratio
V
= ±5V
SUPPLY
0
1x1021x1031x1041x1051x1061x10
FREQUENCY (Hz)
Positive Power Supply
Rejection Ratio
V
= ±9V
SUPPLY
7
Negative Power Supply
100
–PSRR (dB)
Rejection Ratio
80
60
40
20
0
V
= ±9V
SUPPLY
1x1021x1031x1041x1051x1061x10
FREQUENCY (Hz)
7
Negative Power Supply
Rejection Ratio
V
= ±5V
SUPPLY
7
Page 8
MIC916 Micrel
Closed-Loop
Frequency Response
RF
Test Circuit
V
CC
MIC916
50
V
EE
10µF
0.1µF
10µF
FET probe
C
L
-10
-20
-30
-40
-50
-60
CROSS TALK (dB)
-70
-80
-90
Adjacent Channel
0
5
1x10
FREQUENCY (Hz)
Cross Talk
6
1x10
7
1x10
8
1x10
Closed-Loop
Frequency Response
50 40 30 20 10
0
-10
GAIN (dB)
-20
-30 VCC = ±2.5V
-40
-50
1 10 100 200
1000pF
500pF
200pF
FREQUENCY (MHz)
100pF
50pF
0p
Open-Loop
Frequency Response
50 40 30 20 10
0
-10
GAIN (dB)
-20
-30 VCC = ±5V
-40
-50
1 10 100 200
RL=100
No Load
FREQUENCY (MHz)
Voltage
120
Hz
100
nV
80
60
40
20
NOISE VOL TAGE
0
1x1011x1021x1031x1041x10
Noise
FREQUENCY (Hz)
225 180 135 90 45 0
-45
-90
-135
-180
-225
5
Closed-Loop
Frequency Response
50 40 30 20 10
0
-10
PHASE (°)
GAIN (dB)
-20
-30 VCC = ±5V
-40
-50
1 10 100 200
1000pF
500pF
200pF
FREQUENCY (MHz)
100pF
50pF
0p
50 40 30 20 10
0
-10
GAIN (dB)
-20
-30
-40
-50
Positive
250
200
150
100
SLEW RATE (V/µs)
50
0
0 200 400 600 800 1000
Slew Rate
VCC = ±5V
LOAD CAPACITANCE (pF)
SLEW RATE (V/µs)
250
200
150
100
50
0
Open-Loop
Frequency Response
RL=100
No Load
VCC = ±9V
1 10 100200
FREQUENCY (MHz)
Negative
Slew Rate
VCC = ±5V
0 200 400 600 800 1000
LOAD CAPACITANCE (pF)
225 180 135 90 45 0
-45
-90
-135
-180
-225
PHASE (°)
Current
5
Hz
4
pA
3
2
1
NOISE CURRENT
0
1x1011x1021x1031x1041x10
Noise
FREQUENCY (Hz)
Positive
300
250
200
150
100
SLEW RATE (V/µs)
50
5
0
0 200 400 600 800 1000
Slew Rate
VCC = ±9V
LOAD CAPACITANCE (pF)
300
250
200
150
100
SLEW RATE (V/µs)
50
0
0 200 400 600 800 1000
Negative
Slew Rate
VCC = ±9V
LOAD CAPACITANCE (pF)
MIC916 8 September 2000
Page 9
MIC916 Micrel
OUTPUT INPUT
Small-Signal
Pulse Response
VCC = ±9V
= 1
A
V
= 1.7pF
C
L
= 10M
R
L
Small-Signal
Pulse Response
VCC = ±9V
= 1
A
V
= 100pF
C
L
= 10M
R
L
OUTPUT INPUT
Small-Signal
Pulse Response
VCC = ±5V
= 1
A
V
= 1.7pF
C
L
= 10M
R
L
Small-Signal
Pulse Response
VCC = ±5V
= 1
A
V
= 100pF
C
L
= 10M
R
L
OUTPUT INPUT
OUTPUT INPUT
Small-Signal
Pulse Response
VCC = ±9V
= 1
A
V
= 1000pF
C
L
= 10M
R
L
OUTPUT INPUT
OUTPUT INPUT
Small-Signal
Pulse Response
VCC = ±5V
= 1
A
V
= 1000pF
C
L
= 10M
R
L
September 2000 9 MIC916
Page 10
MIC916 Micrel
Large-Signal
Large-Signal
Pulse Response
VCC = ±9V A C
= 1
V
= 1.7pF
L
Pulse Response
VCC = ±5V
= 1
A
V
= 1.7pF
C
L
OUTPUT
OUTPUT
V = 5.64Vt = 21ns
Large-Signal
Pulse Response
V = 5.84Vt = 22.5ns
VCC = ±9V
= 1
A
V
= 100pF
C
L
OUTPUT
OUTPUT
V = 5.68Vt = 24.5ns
Large-Signal
Pulse Response
V = 5.84Vt = 26ns
VCC = ±5V
= 1
A
V
= 100pF
C
L
OUTPUT
Large-Signal
Pulse Response
V = 5.88Vt = 70ns
VCC = ±9V
= 1
A
V
= 1000pF
C
L
OUTPUT
Large-Signal
Pulse Response
VCC = ±5V A C
V = 5.48Vt = 95ns
= 1
V
= 1000pF
L
MIC916 10 September 2000
Page 11
MIC916 Micrel
PVVI
DVV
S
(noload)
=−
()
+−
TotalPower Dissipation P P
DDt
=+
(noload) (outpu stage)
Max AllowablePower Dissipation
TT
W
JA
. =
(max) (max)
TBD
Applications Information
The MIC916 is a high-speed, voltage-feedback operational amplifier featuring very low supply current and excellent stability. This device is unity gain stable and capable of driving high capacitance loads.
Driving High Capacitance
The MIC916 is stable when driving any capacitance (see Typical Characteristics: Gain Bandwidth and Phase Margin vs. Load Capacitance) making it ideal for driving long coaxial cables or other high-capacitance loads.
Phase margin remains constant as load capacitance is increased. Most high-speed op amps are only able to drive limited capacitance.
Note: increasing load capacitance does reduce the
speed of the device (see Typical Characteris­tics: Gain Bandwidth and Phase Margin vs. Load). In applications where the load capaci­tance reduces the speed of the op amp to an unacceptable level, the effect of the load capaci­tance can be reduced by adding a small resistor (<100) in series with the output.
Feedback Resistor Selection
Conventional op amp gain configurations and resistor selec­tion apply, the MIC916 is NOT a current feedback device. Resistor values in the range of 1k to 10k are recommended.
Layout Considerations
All high speed devices require careful PCB layout. The high stability and high PSRR of the MIC916 make this op amp easier to use than most, but the following guidelines should be observed: Capacitance, particularly on the two inputs pins will degrade performance; avoid large copper traces to the inputs. Keep the output signal away from the inputs and use a ground plane.
It is important to ensure adequate supply bypassing capaci­tors are located close to the device.
Power Supply Bypassing
Regular supply bypassing techniques are recommended. A 10µF capacitor in parallel with a 0.1µF capacitor on both the positive and negative supplies are ideal. For best perfor­mance all bypassing capacitors should be located as close to the op amp as possible and all capacitors should be low ESL (equivalent series inductance), ESR (equivalent series resis­tance). Surface-mount ceramic capacitors are ideal. All V–
pins must be externally shorted together. Thermal Considerations
It is important to ensure the IC does not exceed the maximum operating junction (die) temperature of 85°C. The part can be operated up to the absolute maximum temperature rating of 125°C, but between 85°C and 125°C performance will de­grade, in particular CMRR will reduce.
A MIC916 with no load, dissipates power equal to the quies­cent supply current * supply voltage
When a load is added, the additional power is dissipated in the output stage of the op amp. The power dissipated in the device is a function of supply voltage, output voltage and output current.
PVVI
DV
(outputstage)
=−
()
+
OUT OUT
Ensure the total power dissipated in the device is no greater than the thermal capacity of the package. The QSOP-16 package has a thermal resistance of 260°C/W.
September 2000 11 MIC916
Page 12
MIC916 Micrel
Package Information
PIN 1
0.009 (0.2286)
0.0098 (0.249)
0.0040 (0.102)
SEATING
PLANE
0.157 (3.99)
0.150 (3.81)
REF
0.0688 (1.748)
0.0532 (1.351)
0.025 (0.635) BSC
0.012 (0.30)
0.008 (0.20)
0.196 (4.98)
0.189 (4.80)
QSOP-16
DIMENSIONS:
INCHES (MM)
0.0098 (0.249)
0.0075 (0.190)
45°
0.050 (1.27)
0.016 (0.40)
0.2284 (5.801)
0.2240 (5.690)
8° 0°
MIC916 12 September 2000
Page 13
MIC916 Micrel
MICREL INC. 1849 FORTUNE DRIVE SAN JOSE, CA 95131 USA
TEL + 1 (408) 944-0800 FAX + 1 (408) 944-0970 WEB http://www.micrel.com
This information is believed to be accurate and reliable, however no responsibility is assumed by Micrel for its use nor for any infringement of patents or
other rights of third parties resulting from its use. No license is granted by implication or otherwise under any patent or patent right of Micrel Inc.
© 2000 Micrel Incorporated
September 2000 13 MIC916
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