D ts e t
aa h e
R c e t r lc r nc
o h se Ee to is
Ma u a t r dCo o e t
n fc u e
mp n n s
R c e tr b a d d c mp n ns ae
o h se rn e
o oet r
ma ua trd u ig ete dewaes
n fcue sn i r i/ fr
h
p rh s d f m te oiia s p l r
uc a e r
o h r n l u pi s
g
e
o R c e tr waes rce td f m
r o h se
fr e rae r
o
te oiia I. Al rce t n ae
h
r nl P
g
l e rai s r
o
d n wi tea p o a o teOC
o e t h p rv l f h
h
M.
P r aetse u igoiia fcoy
at r e td sn r n la tr
s
g
ts p o rmso R c e tr e eo e
e t rga
r o h se d v lp d
ts s lt n t g aa te p o u t
e t oui s o u rne
o
rd c
me t o e c e teOC d t s e t
es r x e d h
M aa h e.
Qu l yOv riw
ai
t
e ve
• IO- 0 1
S 90
•A 92 cr ct n
S 1 0 et ai
i
o
• Qu l e Ma ua trr Ls (
ai d
n fcues it QML MI- R -
) LP F
385
53
•C a sQ Mitr
ls
lay
i
•C a sVS a eL v l
ls
p c ee
• Qu l e S p l r Ls o D sr uos( L )
ai d u pi s it f it b tr QS D
e
i
•R c e trsacic l u pir oD A a d
o h se i
r ia s p l t L n
t
e
me t aln u t a dD A sa d r s
es lid sr n L tn ad .
y
R c e tr lcrnc , L i c mmi e t
o h se Ee t is L C s o
o
tdo
t
s p ligp o u t ta s t f c so r x e t-
u pyn rd cs h t ai y u tme e p ca
s
t n fr u lya daee u loto eoiial
i s o q ai n r q a t h s r n l
o
t
g
y
s p l db id sr ma ua trr.
u pi
e yn ut
y n fcues
T eoiia ma ua trr d ts e t c o a yn ti d c me t e e t tep r r n e
h r n l n fcue’ aa h e a c mp n ig hs o u n r cs h ef ma c
g
s
o
a ds e ic t n o teR c e tr n fcue v rino ti d vc . o h se Ee t n
n p c ai s f h o h se ma ua trd eso f hs e ie R c e tr lcr -
o
o
isg aa te tep r r n eo i s mio d co p o u t t teoiia OE s e ic -
c u rne s h ef ma c ft e c n u tr rd cs o h r n l M p c a
o
s
g
t n .T pc lv le aefr eee c p r o e o l. eti mii m o ma i m rt g
i s ‘y ia’ au s r o rfrn e up s s ny C r n nmu
o
a
r xmu ai s
n
ma b b s do p o u t h rceiain d sg , i lt n o s mpetsig
y e a e n rd c c aa tr t , e in smuai , r a l e t .
z o
o
n
© 2 1 R cetr l t n s LC Al i t R sre 0 1 2 1
0 3 ohs E cr i , L . lRg s eevd 7 1 0 3
e e oc
h
T l r m r, l s v iw wrcl . m
o e n oe p ae it w . e c o
a
e
s
o ec
MIC916
Micrel, Inc.
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.
Supply voltage range is from
±2.5V
to
±9V,
allowing the
MIC916 to be used in low-voltage circuits or applications
requiring large dynamic range.
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.
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
Standard
Pb-Free
MIC916BQS
MIC916YQS
Junction
Temp. Range
–40°C to +85°C
Package
QSOP-16
Pin Configuration
INA-
V+(A)
INA+
INB-
INB+
INC-
NC
INC+
1
2
3
4
5
6
7
8
16
15
14
13
12
11
10
9
V–(A)*
OUTA
V–(B)*
OUTB
V+(B)
V–(C)*
OUTC
V+(C)
QSOP-16
* V– pins must be externally shorted together
Micrel, Inc. • 2180 Fortune Drive • San Jose, CA 95131 • USA • tel + 1 (408) 944-0800 • fax + 1 (408) 474-1000 • http://www.micrel.com
April 2005
1
M9999-042205
MIC916
Micrel, Inc.
Pin Description
Pin Number
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
Pin Name
INA–
V+(A)
INA+
INB–
INB+
INC–
NC
INC+
V+(C)
OUTC
V–(C)
V+(B)
OUTB
V–(B)
OUTA
V–(A)
Pin Function
Inverting Input A
Positive Supply Input (Op Amp A)
Noninverting Input A
Inverting Input B
Noninverting Input B
Inverting Input C
Not Connected
Noninverting Input C
Positive Supply Input (Op Amp C)
Output C
Negative Supply Input (Op Amp C)
Positive Supply Input(Op Amp B)
Output B
Negative Supply Input (Op Amp B)
Output A
Negative Supply Input (Op Amp A)
M9999-042205
2
April 2005
MIC916
Micrel, Inc.
Absolute Maximum Ratings
(Note 1)
Supply Voltage (V
V+
– V
V–
) ........................................... 20V
Differentail Input Voltage (V
IN+
– V
IN–
)
.......... 8V,
Note 4
Input Common-Mode Range (V
IN+
, V
IN–
) .......... V
V+
to V
V–
Lead Temperature (soldering, 5 sec.) ....................... 260°C
Storage Temperature (T
S
) ........................................ 150°C
ESD Rating,
Note 3
................................................... 1.5kV
Operating Ratings
(Note 2)
Supply Voltage (V
S
) .......................................
±2.5V
to
±9V
Junction Temperature (T
J
) ......................... –40°C to +85°C
Package Thermal Resistance ............................... 260°C/W
Electrical Characteristics (
±
5V)
V
V+
= +5V, V
V–
= –5V, V
CM
= 0V, V
OUT
= 0V; R
L
= 10MΩ; T
J
= 25°C,
bold
values indicate –40°C
≤
T
J
≤
+85°C; unless noted.
Symbol
V
OS
V
OS
I
B
I
OS
V
CM
CMRR
PSRR
A
VOL
V
OUT
Parameter
Input Offset Voltage
Input Offset Voltage
Temperature Coefficient
Input Bias Current
Input Offset Current
Input Common-Mode Range
Common-Mode Rejection Ratio
Power Supply Rejection Ratio
Large-Signal Voltage Gain
CMRR > 60dB
–2.5V < V
CM
< +2.5V
±5V
< V
S
<
±9V
R
L
= 2k, V
OUT
=
±2V
R
L
= 200Ω, V
OUT
=
±2V
Maximum Output Voltage Swing
positive, R
L
= 2kΩ
negative, R
L
= 2kΩ
positive, R
L
= 200Ω
negative, R
L
= 200Ω
GBW
BW
SR
Gain-Bandwidth Product
–3dB Bandwidth
Slew Rate
Crosstalk
f = 1MHz, between op amp A and B or B and C
f = 1 MHz, between op amp A and C
I
GND
I
GND
Short-Circuit Output Current
source
sink
Supply Current per Op Amp
R
L
= 1kΩ
A
V
= 1, R
L
= 100Ω
+3.0
+2.75
–3.25
70
60
74
70
60
60
+3.3
+3.0
90
81
71
71
3.5
–3.5
3.2
–2.8
125
192
230
56
72
72
25
2.4
3.5
4.1
–2.45
–2.2
–3.3
–3.0
Condition
Min
Typ
1
4
3.5
0.05
5.5
9
3
+3.25
Max
15
Units
mV
µV/°C
µA
µA
µA
V
dB
dB
dB
dB
dB
dB
V
V
V
V
V
V
V
V
MHz
MHz
V/µs
dB
dB
mA
mA
mA
mA
Electrical Characteristics
V
V+
= +9V, V
V–
= –9V, V
CM
= 0V, V
OUT
= 0V; R
L
= 10MΩ; T
J
= 25°C,
bold
values indicate –40°C
≤
T
J
≤
+85°C; unless noted
Symbol
V
OS
V
OS
Parameter
Input Offset Voltage
Input Offset Voltage
Temperature Coefficient
Condition
Min
Typ
1
4
Max
15
Units
mV
µV/°C
April 2005
3
M9999-042205
MIC916
Symbol
I
B
I
OS
V
CM
CMRR
A
VOL
V
OUT
Parameter
Input Bias Current
Input Offset Current
Input Common-Mode Range
Common-Mode Rejection Ratio
Large-Signal Voltage Gain
Maximum Output Voltage Swing
CMRR > 60dB
–6.5V < V
CM
< 6.5V
R
L
= 2kΩ, V
OUT
=
±6V
positive, R
L
= 2kΩ
negative, R
L
= 2kΩ
GBW
SR
Gain-Bandwidth Product
Slew Rate
Crosstalk
f = 1MHz, between op amp A and B or B and C
f = 1 MHz, between op amp A and C
I
GND
I
GND
Note 1.
Note 2.
Note 3.
Note 4.
Micrel, Inc.
Condition
Min
Typ
3.5
0.05
–7.25
70
60
60
+7.2
+6.8
98
73
+7.4
–7.4
135
270
56
72
90
32
2.5
3.7
4.3
–7.2
–6.8
Max
5.5
9
3
+7.25
Units
µA
µA
µA
V
dB
dB
dB
V
V
V
V
MHz
V/µs
dB
dB
mA
mA
mA
mA
R
L
= 1kΩ
Short-Circuit Output Current
source
sink
Supply Current per Op Amp
Exceeding the absolute maximum rating may damage the device.
The device is not guaranteed to function outside its operating rating.
Devices are ESD sensitive. Handling precautions recommended. Human body model, 1.5k in series with 100pF.
Exceeding the maximum differential input voltage will damage the input stage and degrade performance (in particular, input bias current is
likely to increase.
Test Circuits
V
CC
10µF
R2
5k
V
CC
10µF
BNC
50Ω
BNC
0.1µF
Input
R1 5k
R7c 2k
R7b 200Ω
R7a 100Ω
0.1µF
BNC
Input
0.1µF
10k
10k
50Ω
BNC
Output
0.1µF
R6
2k
BNC
5k
Output
All resistors 1%
R3
200k
R4
250Ω
R5
5k
V
EE
10µF
10k
0.1µF
50Ω
Input
0.1µF
R2 R2
+
R 5
+
R4
V
OUT
=
V
ERROR
1
+
+
R1
R7
CMRR vs. Frequency
All resistors:
1% metal film
V
EE
10µF
PSRR vs. Frequency
M9999-042205
4
April 2005