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
MICROCIRCUIT DATA SHEET
MNCLC406A-X REV 0A0
Original Creation Date: 02/10/99
Last Update Date: 09/08/99
Last Major Revision Date:
WIDEBAND, LOW POWER MONOLITHIC OP AMP
General Description
The CLC406 is a wideband monolithic operational amplifier designed for low-gain
applications where power and cost are of primary concern. Operating from +5V supplies,
the CLC406 consumes only 50mW of power yet maintains a 160MHz small signal bandwidth and a
1500V/us slew rate. Benefitting from Comlinear's current feedback architecture, the
CLC406 offers a gain range of + 1 to + 10 while providing stable, oscillation free
operation without external compensation, even at unity gain.
With its exceptional differential gain and phase, typically 0.02% and 0.02 degrees at
3.58MHz, the CLC406 is designed to meet the performance and cost requirements of high
volume composite video applications. The CLC406's large signal bandwidth, high slew rate
and high drive capability are features well suited for RGB video applications.
Providing a 12ns settling time to 0.05% (1/2 LSB in 10-bit systems) and -68/-75dBc 2nd/3rd
harmonic distortion (2Vpp at 10MHz, Rl = 1kOhms), the CLC406 is an excellent choice as a
buffer or driver for high speed A/D and D/A converter systems.
Commercial remote sensing applications and battery powered radio transceivers requiring a
high performance, low power amplifier will find the CLC406 to be an attractive,
cost-effective solution.
Industry Part Number
CLC406A
NS Part Numbers
CLC406AJ-QML
Prime Die
UB1373C
Controlling Document
5962-9200401MPA
Processing
MIL-STD-883, Method 5004
Subgrp Description
1
2
3
4
5
6
7
8A
8B
9
10
11
Static tests at
Static tests at
Static tests at
Dynamic tests at
Dynamic tests at
Dynamic tests at
Functional tests at
Functional tests at
Functional tests at
Switching tests at
Switching tests at
Switching tests at
Temp (
o
C)
+25
+125
-55
+25
+125
-55
+25
+125
-55
+25
+125
-55
Quality Conformance Inspection
MIL-STD-883, Method 5005
1
MNCLC406A-X REV 0A0
MICROCIRCUIT DATA SHEET
Features
-
-
-
-
-
-
-
160MHz small signal bandwidth
50mW power (+5V supplies)
0.02%/0.02degrees differential gain/phase
12ns settling to 0.05%
1500V/us slew rate
2.2ns rise and fall time (2Vpp)
70mA output current
Applications
-
-
-
-
-
-
-
Video distribution amp
HDTV amplifier
Flash A/D driver
D/A transimpedance buffer
Pulse amplifier
Photodiode amp
LAN amplifier
2
MNCLC406A-X REV 0A0
MICROCIRCUIT DATA SHEET
(Absolute Maximum Ratings)
Supply voltage (Vcc)
(Note 1)
+7 V dc
Output current (Io)
+70 mA
Common mode input voltage (Vcm)
+Vcc
Differential input voltage
+10 V dc
Maximum Power Dissipation (Pd)
(Note 2)
1.2W
Lead Temperature (soldering, 10 seconds)
+300C
Junction temperature (Tj)
+175C
Storage temperature range
-65C to +150C
Thermal Resistance
Junction -to-ambient (ThetaJA)
Ceramic DIP
(Still Air)
(500 LFPM)
Junction -to-case
(ThetaJC)
Ceramic DIP
Package Weight
(typical)
Ceramic DIP
ESD Tolerance
ESD Rating
(Note 3)
Note 1:
TBD
TBD
TBD
TBD
2000V
Note 2:
Note 3:
Absolute Maximum Ratings are limits beyond which damage to the device may occur.
Operating Ratings are conditions for which the device is functional, but do not
guarantee specific performance limits. For guaranteed specifications apply only for
the test conditions listed. Some performance characteristics may degrade when the
device is not operated under the listed test conditions.
The maximum power dissipation must be derated at elevated temperatures and is
dictated by Tjmax (maximum junction temperature), ThetaJA (package junction to
ambient thermal resistance), and TA (ambient temperature). The maximum allowable
power dissipation at any temperature is Pdmax = (Tjmax - TA) / ThetaJA or the number
given in the Absolute Maximum Ratings, whichever is lower.
Human body model, 100 pF discharged through 1.5K Ohms.
Recommended Operating Conditions
Supply voltage (Vcc)
+5 V dc
Gain Range
+1 to +10
Ambient Operating Temperature Range (Ta)
-55C to +125C
3
MNCLC406A-X REV 0A0
MICROCIRCUIT DATA SHEET
Electrical Characteristics
AC/DC PARAMETERS
(The following conditions apply to all the following parameters, unless otherwise specified.)
DC: Rl = 100 Ohms, Vcc = +5 V dc, Av = +6, Rf (feedback resistor) = 500 Ohms, Rg (gain resistor) = 100
Ohms, -55C < Ta < +125C (note 3)
SYMBOL
Ibn
PARAMETER
Input bias
current,
noninverting
Input bias
current, average
temperature
coefficient,
noninverting
Input bias
current,
inverting
1
1
CONDITIONS
NOTES
PIN-
NAME
MIN
-12
-24
-50
-125
MAX
12
24
50
125
UNIT
uA
uA
SUB-
GROUPS
1, 2
3
DIBN
nA/C 2
nA/C 3
Ibi
-15
-20
-23
15
20
23
50
100
uA
uA
uA
1
2
3
DIBI
Input bias
currrent, average
temperature
coefficient,
inverting
Input offset
voltage
1
1
-50
-100
nA/C 2
nA/C 3
Vio
-6
-12
-10
6
12
10
60
mV
mV
mV
1
2
3
DVIO
Input offset
voltage, average
temperature
coefficient
Supply current no
load
Power supply
rejection ratio
Output current
-Vcc = -4.5 V to -5.0 V, +Vcc = +4.5 V
to +5.0 V
1
-60
uV/C 2, 3
Icc
6.0
6.4
mA
mA
dB
dB
mA
mA
1, 2
3
1, 3
2
1, 2
3
1, 2
3
1, 2
3
1, 2
3
PSRR
2
2
46
44
45
25
-45
-25
2.7
2.0
+Io
1
1
-Io
Output current
1
1
mA
mA
V
V
+Vo
Output voltage
range
Output voltage
range
-Vo
-2.7
-2.5
V
V
4