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
19-4611; Rev 5; 5/09
Improved, Quad, SPST Analog Switches
General Description
Maxim’s redesigned DG441/DG442 analog switches
now feature on-resistance matching (4Ω max) between
switches and guaranteed on-resistance flatness over
the signal range (9Ω max). These low on-resistance
switches conduct equally well in either direction. They
guarantee low charge injection (10pC max), low power
consumption (1.65mW), and an ESD tolerance of 2000V
minimum per Method 3015.7. The new design offers
lower off-leakage current over temperature (less than
5nA at +85°C).
The DG441/DG442 are quad, single-pole/single-throw
(SPST) analog switches. The DG441 has four normally
closed switches, and the DG442 has four normally
open switches. Switching times are less than 250ns for
t
ON
and less than 170ns for t
OFF
. These devices oper-
ate from a single +10V to +30V supply, or bipolar ±4.5V
to ±20V supplies. Maxim’s improved DG441/DG442
continue to be fabricated with a 44V silicon-gate
process.
♦
♦
♦
♦
♦
New Features
Plug-In Upgrades for Industry-Standard DG441/DG442
Improved rDS(ON) Match Between Channels(4Ωmax)
Guaranteed rFLAT(ON) Over Signal Range (9Ωmax)
Improved Charge Injection (10pC max)
Improved Off-Leakage Current Over Temperature
(<5nA at +85°C)
♦
Withstand Electrostatic Discharge (2000V min)
per Method 3015.7
DG441/DG442
Existing Features
♦
Low r
DS(ON)
(85Ω max)
♦
Single-Supply Operation +10V to +30V
Bipolar-Supply Operation ±4.5V to ±20V
♦
Low Power Consumption (1.65mW max)
♦
Rail-to-Rail Signal Handling
♦
TTL/CMOS-Logic Compatible
Ordering Information
PART
DG441CJ
DG441CY
DG441C/D
DG441DJ
DG441DY
TEMP RANGE
0°C to +70°C
0°C to +70°C
0°C to +70°C
-40°C to +85°C
-40°C to +85°C
PIN-PACKAGE
16 Plastic DIP
16 Narrow SO
Dice*
16 Plastic DIP
16 Narrow SO
Applications
Sample-and-Hold Circuits
Communication Systems
Test Equipment
Battery-Operated Systems
Heads-Up Displays
Fax Machines
PBX, PABX
Guidance and Control
Systems
Audio-Signal Routing
Military Radios
Modems
Ordering Information continued at end of data sheet.
Note:
Devices are available in both leaded and lead(Pb)-free
packaging. Specify lead-free by adding the + symbol at the
end of the part number when ordering.
*Contact
factory for dice specifications.
Pin Configurations/Functional Diagrams/Truth Tables
TOP VIEW
TOP VIEW
D1
IN1
D1
S1
V-
GND
S4
D4
IN4
1
2
3
4
5
6
7
8
16
15
14
13
IN2
D2
S2
V+
N.C.
S3
D3
IN3
IN1
D1
S1
V-
GND
S4
D4
IN4
1
2
3
4
5
6
7
8
16
15
14
13
IN2
D2
S2
V+
N.C.
S3
D3
IN3
IN1
IN2
14
D2
D1
16
IN1
IN2
14
D2
16
15
13
15
13
S1
V-
GND
S4
1
2
12
11
S2
V+
N.C.
S3
S1
V-
GND
S4
1
2
12
11
S2
V+
N.C.
S3
DG441
12
11
10
9
DG442
12
11
10
9
DG441
3
*EP
DG442
10
9
3
*EP
10
9
5
D4
6
IN4
4
5
D4
6
IN4
4
7
IN3
8
D3
DIP/SO
DG441
LOGIC
0
1
SWITCH
ON
OFF
DIP/SO
DG442
LOGIC
0
1
SWITCH
OFF
ON
7
IN3
8
D3
THIN QFN
*EP = EXPOSED PAD. CONNECT EXPOSED PAD TO V+.
THIN QFN
SWITCHES SHOWN FOR LOGIC “0” INPUT
N.C. = Not Internally Connected
_______________________________________________________________________________________
1
For pricing, delivery, and ordering information, please contact Maxim Direct at 1-888-629-4642,
or visit Maxim’s website at www.maxim-ic.com.
Improved, Quad, SPST Analog Switches
DG441/DG442
ABSOLUTE MAXIMUM RATINGS
Voltage Referenced to V-
V+.......................................................................................44V
GND ...................................................................................25V
V
L
.................................................(GND - 0.3V) to (V+ + 0.3V)
Digital Inputs, V
S
, V
D
(Note 1)......(V- - 2V) to (V+ + 2V) or 30mA
(whichever occurs first)
Continuous Current (any terminal) ......................................30mA
Peak Current, S or D
(pulsed at 1ms, 10% duty-cycle max) .................................100mA
Continuous Power Dissipation (T
A
= +70°C)
Plastic DIP (derate 10.53mW/°C above +70°C) ..........842mW
Thin QFN (derate 20.8mW/°C above +70°C).............1667mW
Narrow SO (derate 8.70mW/°C above +70°C) ............696mW
CERDIP (derate 10.00mW/°C above +70°C) ...............800mW
Operating Temperature Ranges
DG441C/DG442C ...............................................0°C to +70°C
DG441D, E/DG442D, E ...................................-40°C to +85°C
DG441AK, MY/DG442AK, MY .......................-55°C to +125°C
Storage Temperature Range .............................-65°C to +150°C
Lead Temperature (soldering, 10s) .................................+300°C
Note 1:
Signals on S, D, or IN exceeding V+ or V- are clamped by internal diodes. Limit forward current to maximum current ratings.
Stresses beyond those listed under “Absolute Maximum Ratings” may cause permanent damage to the device. These are stress ratings only, and
functional operation of the device at these or any other conditions beyond those indicated in the operational sections of the specifications is not implied.
Exposure to absolute maximum rating conditions for extended periods may affect device reliability.
ELECTRICAL CHARACTERISTICS—Dual Supplies
(V+ = 15V, V- = -15V, V
GND
= 0V, V
INH
= 2.4V, V
INL
= 0.8V, T
A
= T
MIN
to T
MAX
, unless otherwise noted.)
PARAMETER
SWITCH
Analog-Signal Range
Drain-Source On-Resistance
V
ANALOG
r
DS(ON)
(Note 3)
V+ = 13.5V, V- = -13.5V, T
A
= +25°C
I
S
= -10mA,
T
A
= T
MIN
to T
MAX
V
D
= 8.5V or -8.5V
V+ = 15V, V- = -15V,
V
D
= ±10V,
I
S
= -10mA
V+ = 15V, V- = -15V,
V
D
= 5V or -5V,
I
S
= -10mA
T
A
= +25°C
T
A
= T
MIN
to T
MAX
T
A
= +25°C
T
A
= T
MIN
to T
MAX
-0.50
-5
-20
-.0.50
-5
-20
-0.50
-10
-20
0.08
0.01
0.01
-15
50
15
85
100
4
5
9
15
0.50
5
20
0.50
5
20
0.50
10
20
nA
nA
nA
V
Ω
SYMBOL
CONDITIONS
MIN
TYP
(Note 2)
MAX
UNITS
On-Resistance Match
Between Channels (Note 4)
On-Resistance Flatness
(Note 4)
Δr
DS(ON)
Ω
r
FLAT(ON)
Ω
I
S(OFF)
I
D(OFF)
Drain On-Leakage Current
(Note 5)
DIGITAL
Input Current with
Input Voltage High
Input Current with
Input Voltage Low
I
D(ON)
or
I
S(ON)
T
A
= +25°C
V+ = 16.5V, V- = -16.5V,
V
D
= ±15.5V,
C, D
T
A
= T
MAX
V
S
= ±15.5V
A
I
INH
I
INL
V
IN
= 2.4V
V
IN
= 0.8V
2
_______________________________________________________________________________________
±
Drain Off-Leakage Current
(Note 5)
T
A
= +25°C
V+ = 16.5V, V- = -16.5V,
V
D
= 15.5V,
C, D
T
A
= T
MAX
V
S
= ±15.5V
A
±
Source Off-Leakage Current
(Note 5)
T
A
= +25°C
V+ = 16.5V, V- = -16.5V,
V
D
= 15.5V,
C, D
T
A
= T
MAX
V
S
= ±15.5V
A
-500
-500
0.01
0.01
500
500
nA
nA
Improved, Quad, SPST Analog Switches
ELECTRICAL CHARACTERISTICS—Dual Supplies (continued)
(V+ = 15V, V- = -15V, V
GND
= 0V, V
INH
= 2.4V, V
INL
= 0.8V, T
A
= T
MIN
to T
MAX
, unless otherwise noted.)
PARAMETER
SUPPLY
Power-Supply Range
Positive Supply Current
V+, V-
I+
All channels on or off, V+ = 16.5V, V- = -16.5V,
V
IN
= 0V or 5V
All channels on or off,
V+ = 16.5V, V- = -16.5V,
V
IN
= 0V or 5V
T
A
= +25°C
T
A
= T
MIN
to T
MAX
-1
-5
-100
-15
±4.5
15
-0.0001
±20.0
100
1
µA
5
µA
V
µA
SYMBOL
CONDITIONS
MIN
TYP
(Note 2)
MAX
UNITS
DG441/DG442
Negative Supply Current
I-
Ground Current
DYNAMIC
Turn-On Time
Turn-Off Time
Charge Injection (Note 3)
Off-Isolation Rejection
Ratio (Note 6)
Crosstalk (Note 7)
Source Off-Capacitance
Drain Off-Capacitance
Drain On-Capacitance
I
GND
All channels on or off, V+ = 16.5V, V- = -16.5V,
V
IN
= 0V or 5V
t
ON
t
OFF
Q
OIRR
V
S
= ±10V, R
L
= 1kΩ, Figure 2 T
A
= +25°C
DG441, V
D
= ±10V, Figure 2
DG442, V
D
= ±10V, Figure 2
C
L
= 1nF, V
GEN
= 0V,
R
GEN
= 0Ω, Figure 3
R
L
= 50Ω, C
L
= 5pF,
f = 1MHz, Figure 4
R
L
= 50Ω, C
L
= 5pF,
f = 1MHz, Figure 5
T
A
= +25°C
T
A
= +25°C
T
A
= +25°C
T
A
= +25°C
T
A
= +25°C
T
A
= +25°C
T
A
= +25°C
T
A
= +25°C
150
90
110
5
60
-100
4
4
16
250
120
170
10
ns
ns
pC
dB
dB
pF
pF
pF
C
S(OFF)
C
D(OFF)
C
D(ON)
f = 1MHz, Figure 6
f = 1MHz, Figure 6
f = 1MHz, Figure 6
_______________________________________________________________________________________
3
Improved, Quad, SPST Analog Switches
DG441/DG442
ELECTRICAL CHARACTERISTICS—Single Supply
(V+ = 12V, V- = 0V, V
GND
= 0V, V
INH
= 2.4V, V
INL
= 0.8V, T
A
= T
MIN
to T
MAX
, unless otherwise noted.)
PARAMETER
SWITCH
Analog Signal Range
Drain-Source
On-Resistance
SUPPLY
Power-Supply Range
Positive Supply Current
Negative Supply Current
Ground Current
DYNAMIC
Turn-On Time
Turn-Off Time
Charge Injection (Note 3)
t
ON
t
OFF
Q
V
S
= 8V, Figure 2
V
S
= 8V, Figure 2
C
L
= 1nF, V
GEN
= 0V
T
A
= +25°C
T
A
= +25°C
T
A
= +25°C
300
60
5
400
200
10
ns
ns
pC
V+
I+
I-
I
GND
All channels on or off, V
IN
= 0V or 5V
All channels on or off,
V
IN
= 0V or 5V
T
A
= +25°C
T
A
= T
MIN
to T
MAX
-1
-5
-100
-15
10
15
-0.0001
30
100
1
5
V
µA
µA
µA
V
ANALOG
r
DS(ON)
(Note 3)
V+ = 10.8V, V
D
= 3V, 8V,
I
S
= 1.0mA
T
A
= +25°C
T
A
= T
MIN
to T
MAX
0
100
12
160
Ω
200
V
SYMBOL
CONDITIONS
MIN
TYP
(Note 2)
MAX
UNITS
All channels on or off, V
IN
= 0V or 5V
Note 2:
Typical values are for
design aid only,
are not guaranteed, and are not subject to production testing. The algebraic con-
vention, where the most negative value is a minimum and the most positive value a maximum, is used in this data sheet.
Note 3:
Guaranteed by design.
Note 4:
On-resistance match between channels and flatness is guaranteed only with bipolar-supply operation. Flatness is defined
as the difference between the maximum and the minimum value of on-resistance as measured at the extremes of the speci-
fied analog range.
Note 5:
Leakage parameters I
S(OFF)
, I
D(OFF)
, and I
D(ON)
are 100% tested at the maximum rated hot temperature and guaranteed
by correlation at +25°C.
Note 6:
Off-Isolation Rejection Ratio = 20log (V
D
/V
S
), V
D
= output, V
S
= input to off switch.
Note 7:
Between any two switches.
__________________________________________Typical Operating Characteristics
(T
A
= +25°C, unless otherwise noted.)
ON-LEAKAGE CURRENTS
4
3
ON-LEAKAGE (nA)
2
1
0
-1
-2
-15
-1
-10
-5
5
0
VS, VD (V)
10
15
-15
-10
-5
5
0
VS, VD (V)
10
15
T
A
= +125°C
T
A
= +85°C
V+ = 15V
V- = -15V
OFF-LEAKAGE (nA)
1
VIN (V)
T
A
= +125°C
T
A
= +85°C
1.5
0.5
0
MIN
2
V+ = 15V
V- = -15V
OFF-LEAKAGE CURRENTS
3.5
3.0
2.5
2.0
SWITCHING THRESHOLD vs.
BIPOLAR SUPPLY VOLTAGE
MAX
0
±5
±10
±15
±20
BIPOLAR SUPPLY VOLTAGE (V)
4
_______________________________________________________________________________________