74LVC2G66DC [NXP]

Bilateral switch; 双向开关
74LVC2G66DC
型号: 74LVC2G66DC
厂家: NXP    NXP
描述:

Bilateral switch
双向开关

开关 光电二极管 PC
文件: 总22页 (文件大小:141K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
74LVC2G66  
Bilateral switch  
Rev. 01 — 29 June 2004  
Product data sheet  
1. General description  
The 74LVC2G66 is a high-performance, low-power, low-voltage, Si-gate CMOS device.  
The 74LVC2G66 provides two analog switches. Each switch has a input and output (pins  
Yand Z) and an active HIGH enable input (pin E). When pin E is LOW, the analog switch  
is turned off.  
2. Features  
Wide supply voltage range from 1.65 V to 5.5 V  
Very low ON-resistance:  
7.5 (typical) at VCC = 2.7 V  
6.5 (typical) at VCC = 3.3 V  
6 (typical) at VCC = 5 V.  
High noise immunity  
Complies with JEDEC standard:  
JESD8-7 (1.65 V to 1.95 V)  
JESD8-5 (2.3 V to 2.7 V)  
JESD8-B/JESD36 (2.7 V to 3.6 V).  
ESD protection:  
HBM EIA/JESD22-A114-B exceeds 2000 V  
MM EIA/JESD22-A115-A exceeds 200 V.  
CMOS low-power consumption  
Latch-up performance meets requirements of JESD78 Class I  
Direct interface with TTL levels  
Enable inputs accept voltages up to 5 V  
SOT505-2 and SOT765-1 package  
Specified from 40 °C to +85 °C and 40 °C to +125 °C.  
3. Quick reference data  
Table 1:  
Quick reference data  
GND = 0 V; Tamb = 25 °C; tr = tf 2.5 ns.  
Symbol Parameter  
Conditions  
Min Typ Max Unit  
tPZH, tPZL turn-on time nE to VOS  
CL = 50 pF; RL = 500 Ω  
VCC = 3 V  
-
-
2.4  
1.8  
-
-
ns  
ns  
VCC = 5 V  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
Table 1:  
Quick reference data …continued  
GND = 0 V; Tamb = 25 °C; tr = tf 2.5 ns.  
Symbol Parameter  
Conditions  
Min Typ Max Unit  
tPHZ, tPLZ turn-off time nE to VOS  
CL = 50 pF; RL = 500 Ω  
VCC = 3 V  
-
-
-
-
-
-
3.0  
2.2  
2.0  
5
-
-
-
-
-
ns  
ns  
pF  
pF  
pF  
pF  
VCC = 5 V  
CI  
enable input capacitance  
switch capacitance  
CS  
OFF-state  
ON-state  
9.5  
[1] [2]  
CPD  
power dissipation capacitance CL = 50 pF; fi = 10 MHz;  
CC = 3.3 V  
11.0 -  
V
[1] CPD is used to determine the dynamic power dissipation (PD in µW).  
PD = CPD × VCC2 × fi × N + {(CL + CS) × VCC2 × fo} where:  
fi = input frequency in MHz;  
fo = output frequency in MHz;  
CL = output load capacitance in pF;  
CS = switch capacitance in pF;  
VCC = supply voltage in V;  
N = total load switching outputs.  
[2] The condition is VI = GND to VCC  
.
4. Ordering information  
Table 2:  
Ordering information  
Type number  
Package  
Temperature range Name  
Description  
Version  
74LVC2G66DP  
74LVC2G66DC  
40 °C to +125 °C  
TSSOP8  
plastic thin shrink small outline package; 8 leads; SOT505-2  
body width 3 mm; lead length 0.5 mm  
40 °C to +125 °C  
VSSOP8  
plastic very thin shrink small outline package;  
8 leads; body width 2.3 mm  
SOT765-1  
5. Marking  
Table 3:  
Marking  
Type number  
74LVC2G66DP  
74LVC2G66DC  
Marking code  
V66  
V66  
9397 750 13259  
© Koninklijke Philips Electronics N.V. 2004. All rights reserved.  
Product data sheet  
Rev. 01 — 29 June 2004  
2 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
6. Functional diagram  
1
7
1Y  
1E  
1Z  
1
2
1
#
#
X1  
5
3
1
6
1
2Z  
2Y  
2E  
X1  
001aaa531  
001aaa530  
Fig 1. Logic symbol.  
Fig 2. IEC logic symbol.  
Z
Y
E
V
CC  
001aaa532  
Fig 3. Logic diagram (one switch).  
7. Pinning information  
7.1 Pinning  
V
1Z  
1Y  
1
2
3
4
8
7
6
5
CC  
1E  
2Y  
2Z  
66  
2E  
GND  
001aaa529  
Fig 4. Pin configuration.  
7.2 Pin description  
Table 4:  
Symbol  
1Y  
Pin description  
Pin  
1
Description  
independent input or output  
independent input or output  
enable input (active HIGH)  
ground (0 V)  
1Z  
2
2E  
3
GND  
2Y  
4
5
independent input or output  
9397 750 13259  
© Koninklijke Philips Electronics N.V. 2004. All rights reserved.  
Product data sheet  
Rev. 01 — 29 June 2004  
3 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
Table 4:  
Symbol  
2Z  
Pin description …continued  
Pin  
6
Description  
independent input or output  
enable input (active HIGH)  
supply voltage  
1E  
7
VCC  
8
8. Functional description  
8.1 Function table  
[1]  
Table 5:  
Function table  
Input E  
Switch  
L
OFF-state  
ON-state  
H
[1] H = HIGH voltage level;  
L = LOW voltage level.  
9. Limiting values  
Table 6:  
Limiting values  
In accordance with the Absolute Maximum Rating System (IEC 60134). Voltages are referenced to  
GND (ground = 0 V).  
Symbol Parameter  
Conditions  
Min  
Max  
Unit  
V
VCC  
VI  
supply voltage  
0.5 +6.5  
0.5 +6.5  
[1]  
input voltage  
V
IIK  
input diode current  
switch diode current  
VI < 0.5 V or VI > VCC + 0.5 V  
VI < 0.5 V or VI > VCC + 0.5 V  
enable and disable mode  
-
-
50  
±50  
mA  
mA  
V
ISK  
VS  
DC switch voltage  
range  
0.5 VCC + 0.5  
IS  
switch source or sink VS > 0.5 V or  
-
±50  
mA  
current  
VS < VCC + 0.5 V  
ICC, IGND VCC or GND current  
-
±100  
+150  
300  
mA  
°C  
Tstg  
Ptot  
storage temperature  
power dissipation  
65  
Tamb = 40 °C to +125 °C  
-
mW  
[1] The input and output voltage ratings may be exceeded if the input and output current ratings are observed.  
10. Recommended operating conditions  
Table 7:  
Recommended operating conditions  
Conditions  
Symbol Parameter  
Min  
1.65  
0
Typ Max  
Unit  
V
VCC  
VI  
supply voltage  
input voltage  
-
-
-
5.5  
5.5  
VCC  
V
[1] [2]  
VS  
DC switch voltage range enable and disable mode  
0
V
9397 750 13259  
© Koninklijke Philips Electronics N.V. 2004. All rights reserved.  
Product data sheet  
Rev. 01 — 29 June 2004  
4 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
Table 7:  
Recommended operating conditions …continued  
Conditions  
Symbol Parameter  
Min  
Typ Max  
Unit  
Tamb  
operating ambient  
temperature  
40  
-
+125 °C  
[3]  
[3]  
tr, tf  
input rise and fall times VCC = 1.65 V to 2.7 V  
VCC = 2.7 V to 5.5 V  
0
0
-
-
20  
10  
ns/V  
ns/V  
[1] To avoid drawing VCC current out of terminal nZ, when switch current flows in terminal nY, the voltage drop  
across the bidirectional switch must not exceed 0.4 V. If the switch current flows into terminal nZ, no VCC  
current will flow out of terminal nY. In this case there is no limit for the voltage drop across the switch.  
[2] For overvoltage tolerant switch voltage capability, see the 74LVCV2G66.  
[3] Applies to control signal levels.  
11. Static characteristics  
Table 8:  
Static characteristics  
At recommended operating conditions; voltages are referenced to GND (ground = 0 V).  
Symbol Parameter  
Conditions  
Min  
Typ  
Max  
Unit  
Tamb = 40 °C to +85 °C[1]  
VIH  
HIGH-level input  
voltage  
VCC = 1.65 V to 1.95 V  
VCC = 2.3 V to 2.7 V  
VCC = 2.7 V to 3.6 V  
VCC = 4.5 V to 5.5 V  
VCC = 1.65 V to 1.95 V  
VCC = 2.3 V to 2.7 V  
VCC = 2.7 V to 3.6 V  
VCC = 4.5 V to 5.5 V  
0.65 × VCC  
-
-
V
V
V
V
V
V
V
V
µA  
1.7  
-
-
2.0  
-
-
0.7 × VCC  
-
-
VIL  
LOW-level input  
voltage  
-
-
-
-
-
-
0.35 × VCC  
0.7  
-
-
0.8  
-
0.3 × VCC  
±5  
ILI  
input leakage current VI = 5.5 V or GND; VCC = 5.5 V  
on control pin  
±0.1  
IS(OFF)  
IS(ON)  
ICC  
analog switch  
OFF-state current  
VI = VIH or VIL; |VS| = VCC GND;  
VCC = 5.5 V; see Figure 5  
-
-
-
-
±0.1  
±0.1  
0.1  
5
±5  
µA  
µA  
µA  
µA  
analog switch  
ON-state current  
VI = VIH or VIL; |VS| = VCC GND;  
VCC = 5.5 V; see Figure 6  
±5  
quiescent supply  
current  
VI = VCC or GND; VS = GND or VCC  
IO = 0 A; VCC = 5.5 V  
;
10  
ICC  
additional quiescent  
supply current per  
control pin  
VI = VCC 0.6 V; VS = GND or VCC  
IO = 0 A; VCC = 5.5 V  
;
500  
CI  
input capacitance  
switch capacitance  
-
-
-
2.0  
5
-
-
-
pF  
pF  
pF  
CS  
OFF-state  
ON-state  
9.5  
Tamb = 40 °C to +125 °C  
VIH  
HIGH-level input  
voltage  
VCC = 1.65 V to 1.95 V  
VCC = 2.3 V to 2.7 V  
VCC = 2.7 V to 3.6 V  
VCC = 4.5 V to 5.5 V  
0.65 × VCC  
1.7  
-
-
-
-
-
-
-
-
V
V
V
V
2.0  
0.7 × VCC  
9397 750 13259  
© Koninklijke Philips Electronics N.V. 2004. All rights reserved.  
Product data sheet  
Rev. 01 — 29 June 2004  
5 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
Table 8:  
Static characteristics …continued  
At recommended operating conditions; voltages are referenced to GND (ground = 0 V).  
Symbol Parameter  
Conditions  
Min  
Typ  
Max  
Unit  
V
VIL  
LOW-level input  
voltage  
VCC = 1.65 V to 1.95 V  
VCC = 2.3 V to 2.7 V  
VCC = 2.7 V to 3.6 V  
VCC = 4.5 V to 5.5 V  
-
-
-
-
-
-
-
-
-
-
0.35 × VCC  
0.7  
V
0.8  
V
0.3 × VCC  
±100  
V
ILI  
input leakage current VI = 5.5 V or GND; VCC = 5.5 V  
on control pin  
µA  
IS(OFF)  
IS(ON)  
ICC  
analog switch  
OFF-state current  
VI = VIH or VIL; |VS| = VCC GND;  
VCC = 5.5 V; see Figure 5  
-
-
-
-
-
-
-
-
±200  
±200  
200  
µA  
µA  
µA  
µA  
analog switch  
ON-state current  
VI = VIH or VIL; |VS| = VCC GND;  
VCC = 5.5 V; see Figure 6  
quiescent supply  
current  
VI = VCC or GND; VS = GND or VCC  
IO = 0 A; VCC = 5.5 V  
;
ICC  
additional quiescent  
supply current per  
control pin  
VI = VCC 0.6 V; VS = GND or VCC  
IO = 0 A; VCC = 5.5 V  
;
5000  
[1] All typical values are measured at Tamb = 25 °C.  
V
V
CC  
CC  
E
Y
E
V
V
IH  
IL  
Z
Z
Y
I
I
I
S
S
S
V
V
O
V
V
I
O
I
GND  
GND  
001aaa534  
001aaa535  
VI = VCC or GND and VO = GND or VCC  
.
VI = VCC or GND and VO = open circuit.  
Fig 5. Test circuit for measuring switch OFF-state  
current.  
Fig 6. Test circuit for measuring switch ON-state  
current.  
Table 9:  
Resistance RON  
At recommended operating conditions; voltages are referenced to GND (ground = 0 V); see test circuit Figure 7.  
Symbol Parameter  
Conditions  
Min  
Typ  
Max  
Unit  
Tamb = 40 °C to +85 °C  
[1]  
RON(peak) switch ON-state  
resistance (peak)  
VS = GND to VCC; VI = VIH  
IS = 4 mA; VCC = 1.65 V to 1.95 V  
IS = 8 mA; VCC = 2.3 V to 2.7 V  
IS = 12 mA; VCC = 2.7 V  
-
-
-
-
-
35  
100  
30  
25  
20  
15  
14  
11.5  
8.5  
6.5  
IS = 24 mA; VCC = 3.0 V to 3.6 V  
IS = 32 mA; VCC = 4.5 V to 5.5 V  
9397 750 13259  
© Koninklijke Philips Electronics N.V. 2004. All rights reserved.  
Product data sheet  
Rev. 01 — 29 June 2004  
6 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
Table 9:  
Resistance RON …continued  
At recommended operating conditions; voltages are referenced to GND (ground = 0 V); see test circuit Figure 7.  
Symbol Parameter  
RON(rail) switch ON-state  
Conditions  
Min  
Typ  
Max  
Unit  
[1]  
VS = GND; VI = VIH  
resistance (rail)  
IS = 4 mA; VCC = 1.65 V to 1.95 V  
IS = 8 mA; VCC = 2.3 V to 2.7 V  
IS = 12 mA; VCC = 2.7 V  
-
-
-
-
-
10  
8.5  
7.5  
6.5  
6
30  
20  
18  
15  
10  
IS = 24 mA; VCC = 3.0 V to 3.6 V  
IS = 32 mA; VCC = 4.5 V to 5.5 V  
VS = VCC; VI = VIH  
IS = 4 mA; VCC = 1.65 to 1.95 V  
IS = 8 mA; VCC = 2.3 V to 2.7 V  
IS = 12 mA; VCC = 2.7 V  
-
-
-
-
-
12  
8.5  
7.5  
6.5  
6
30  
20  
18  
15  
10  
IS = 24 mA; VCC = 3.0 V to 3.6 V  
IS = 32 mA; VCC = 4.5 V to 5.5 V  
[2]  
RON(flat)  
switch ON-state  
resistance (flatness)  
VS = GND to VCC; VI = VIH;  
see Figure 9 to Figure 13  
IS = 4 mA; VCC = 1.65 V to 1.95 V  
IS = 8 mA; VCC = 2.3 V to 2.7 V  
IS = 12 mA; VCC = 2.7 V  
-
-
-
-
-
100  
17  
10  
5
-
-
-
-
-
IS = 24 mA; VCC = 3.0 V to 3.6 V  
IS = 32 mA; VCC = 4.5 V to 5.5 V  
3
Tamb = 40 °C to +125 °C  
RON(peak) switch ON-state  
resistance (peak)  
VS = GND to VCC; VI = VIH  
IS = 4 mA; VCC = 1.65 V to 1.95 V  
IS = 8 mA; VCC = 2.3 V to 2.7 V  
IS = 12 mA; VCC = 2.7 V  
-
-
-
-
-
-
-
-
-
-
150  
45  
38  
30  
23  
IS = 24 mA; VCC = 3.0 V to 3.6 V  
IS = 32 mA; VCC = 4.5 V to 5.5 V  
VS = GND; VI = VIH  
RON(rail)  
switch ON-state  
resistance (rail)  
IS = 4 mA; VCC = 1.65 V to 1.95 V  
IS = 8 mA; VCC = 2.3 V to 2.7 V  
IS = 12 mA; VCC = 2.7 V  
-
-
-
-
-
-
-
-
-
-
45  
30  
27  
23  
15  
IS = 24 mA; VCC = 3.0 V to 3.6 V  
IS = 32 mA; VCC = 4.5 V to 5.5 V  
VS = VCC; VI = VIH  
IS = 4 mA; VCC = 1.65 V to 1.95 V  
IS = 8 mA; VCC = 2.3 V to 2.7 V  
IS = 12 mA; VCC = 2.7 V  
-
-
-
-
-
-
-
-
-
-
45  
30  
27  
23  
15  
IS = 24 mA; VCC = 3.0 V to 3.6 V  
IS = 32 mA; VCC = 4.5 V to 5.5 V  
[1] These typical values are measured at Tamb = 25 °C and nominal VCC  
.
[2] These typical values are measured at Tamb = 40 °C to +85 °C and nominal VCC  
.
9397 750 13259  
© Koninklijke Philips Electronics N.V. 2004. All rights reserved.  
Product data sheet  
Rev. 01 — 29 June 2004  
7 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
001aaa707  
40  
R
ON  
()  
(1)  
30  
V
S
V
CC  
20  
10  
0
E
Z
V
IH  
(2)  
Y
I
S
(3)  
(4)  
(5)  
V
I
GND  
0
1
2
3
4
5
V (V)  
I
001aaa533  
VI = GND to VCC  
.
(1) VCC = 1.8 V.  
(2) VCC = 2.5 V.  
(3) VCC = 2.7 V.  
(4) VCC = 3.3 V.  
(5) VCC = 5.0 V.  
Measured at Tamb = 25 °C.  
Fig 7. Test circuit for measuring switch  
ON-resistance.  
Fig 8. Typical switch ON-resistance as a function of  
input voltage; VS = GND to VCC  
.
001aaa712  
001aaa708  
80  
16  
R
ON  
R
ON  
()  
()  
60  
12  
(1)  
(2)  
40  
20  
0
8
4
0
(3)  
(4)  
(1)  
(2)  
(3)  
(4)  
0
1
2
3
4
5
0
1
2
3
4
5
V (V)  
I
V (V)  
I
(1) Tamb = 125 °C.  
(2) Tamb = 85 °C.  
(3) Tamb = 25 °C.  
(4) Tamb = 40 °C.  
(1) Tamb = 125 °C.  
(2) Tamb = 85 °C.  
(3) Tamb = 25 °C.  
(4) Tamb = 40 °C.  
Fig 9. Switch ON-resistance as a function of input  
voltage; VCC = 1.8 V.  
Fig 10. Switch ON-resistance as a function of input  
voltage; VCC = 2.5 V.  
9397 750 13259  
© Koninklijke Philips Electronics N.V. 2004. All rights reserved.  
Product data sheet  
Rev. 01 — 29 June 2004  
8 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
001aaa709  
001aaa710  
16  
16  
R
ON  
R
ON  
()  
()  
12  
12  
(1)  
(2)  
(1)  
(2)  
8
4
0
8
4
0
(3)  
(4)  
(3)  
(4)  
0
1
2
3
4
5
0
1
2
3
4
5
V (V)  
I
V (V)  
I
(1) Tamb = 125 °C.  
(2) Tamb = 85 °C.  
(3) Tamb = 25 °C.  
(4) Tamb = 40 °C.  
(1) Tamb = 125 °C.  
(2) Tamb = 85 °C.  
(3) Tamb = 25 °C.  
(4) Tamb = 40 °C.  
Fig 11. Switch ON-resistance as a function of input  
voltage; VCC = 2.7 V.  
Fig 12. Switch ON-resistance as a function of input  
voltage; VCC = 3.3 V.  
001aaa711  
16  
R
ON  
()  
12  
8
4
0
(1)  
(2)  
(3)  
(4)  
0
1
2
3
4
5
V (V)  
I
(1) Tamb = 125 °C.  
(2) Tamb = 85 °C.  
(3) Tamb = 25 °C.  
(4) Tamb = 40 °C.  
Fig 13. Switch ON-resistance as a function of input voltage; VCC = 5.0 V.  
9397 750 13259  
© Koninklijke Philips Electronics N.V. 2004. All rights reserved.  
Product data sheet  
Rev. 01 — 29 June 2004  
9 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
12. Dynamic characteristics  
Table 10: Dynamic characteristics  
At recommended operating conditions; voltages are referenced to GND (ground = 0 V); test circuit Figure 16.  
Symbol  
Parameter  
Conditions  
Min  
Typ  
Max  
Unit  
Tamb = 40 °C to +85 °C[1]  
tPHL, tPLH propagation delay nY to nZ  
or nZ to nY  
see Figure 14  
VCC = 1.65 V to 1.95 V  
VCC = 2.3 V to 2.7 V  
VCC = 2.7 V  
-
-
-
-
-
0.8  
0.4  
0.4  
0.3  
0.2  
2
ns  
ns  
ns  
ns  
ns  
1.2  
1
VCC = 3.0 V to 3.6 V  
VCC = 4.5 V to 5.5 V  
see Figure 15  
0.8  
0.6  
tPZH, tPZL turn-on time nE to VOS  
VCC = 1.65 V to 1.95 V  
VCC = 2.3 V to 2.7 V  
VCC = 2.7 V  
1.0  
1.0  
1.0  
1.0  
1.0  
4.6  
2.7  
2.7  
2.4  
1.8  
10  
ns  
ns  
ns  
ns  
ns  
5.6  
5.0  
4.4  
3.9  
VCC = 3.0 V to 3.6 V  
VCC = 4.5 V to 5.5 V  
see Figure 15  
tPHZ, tPLZ turn-off time nE to VOS  
VCC = 1.65 V to 1.95 V  
VCC = 2.3 V to 2.7 V  
VCC = 2.7 V  
1.0  
1.0  
1.0  
1.0  
1.0  
3.8  
2.1  
3.5  
3.0  
2.2  
9.0  
5.5  
6.5  
6.0  
5.0  
ns  
ns  
ns  
ns  
ns  
VCC = 3.0 V to 3.6 V  
VCC = 4.5 V to V 5.5 V  
fi = 10 MHz  
[2] [3]  
CPD  
power dissipation  
capacitance  
VCC = 2.5 V  
-
-
-
9.0  
-
-
-
pF  
pF  
pF  
VCC = 3.3 V  
11.0  
15.7  
VCC = 5.0 V  
Tamb = 40 °C to +125 °C  
tPHL, tPLH propagation delay nY to nZ  
or nZ to nY  
see Figure 14  
VCC = 1.65 V to 1.95 V  
VCC = 2.3 V to 2.7 V  
VCC = 2.7 V  
-
-
-
-
-
-
-
-
-
-
3.0  
2.0  
1.5  
1.5  
1.0  
ns  
ns  
ns  
ns  
ns  
VCC = 3.0 V to 3.6 V  
VCC = 4.5 V to 5.5 V  
see Figure 15  
tPZH, tPZL turn-on time nE to VOS  
VCC = 1.65 V to 1.95 V  
VCC = 2.3 V to 2.7 V  
VCC = 2.7 V  
1.0  
1.0  
1.0  
1.0  
1.0  
-
-
-
-
-
13.0  
7.5  
6.5  
6.0  
5.0  
ns  
ns  
ns  
ns  
ns  
VCC = 3.0 V to 3.6 V  
VCC = 4.5 V to 5.5 V  
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Product data sheet  
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Philips Semiconductors  
Bilateral switch  
Table 10: Dynamic characteristics …continued  
At recommended operating conditions; voltages are referenced to GND (ground = 0 V); test circuit Figure 16.  
Symbol  
Parameter  
Conditions  
Min  
Typ  
Max  
Unit  
tPHZ, tPLZ turn-off time nE to VOS  
see Figure 15  
VCC = 1.65 V to 1.95 V  
VCC = 2.3 V to 2.7 V  
VCC = 2.7 V  
1.0  
1.0  
1.0  
1.0  
1.0  
-
-
-
-
-
11.5  
7.0  
8.5  
8.0  
6.5  
ns  
ns  
ns  
ns  
ns  
VCC = 3.0 V to 3.6 V  
VCC = 4.5 V to 5.5 V  
[1] All typical values are measured at Tamb = 25 °C and nominal VCC  
.
[2] CPD is used to determine the dynamic power dissipation (PD in µW).  
PD = CPD × VCC2 × fi × N + {(CL + CS) × VCC2 × fo} where:  
fi = input frequency in MHz;  
fo = output frequency in MHz;  
CL = output load capacitance in pF;  
VCC = supply voltage in V;  
N = total load switching outputs;  
CS = switch capacitance.  
[3] The condition is VI = GND to VCC  
.
13. Waveforms  
V
I
nY or nZ  
input  
V
V
M
M
GND  
t
t
PLH  
PHL  
V
OH  
nZ or nY  
output  
V
M
V
M
V
OL  
001aaa541  
Measurement points are given in Table 11.  
Logic levels: VOL and VOH are typical output voltage drop that occur with the output load.  
Fig 14. The input (nY, nZ) to output (nZ, nY) propagation delays and the output transition  
times.  
Table 11: Measurement points  
Supply voltage  
VCC  
Input  
Output  
VM  
VM  
1.65 V to 1.95 V  
2.3 V to 2.7 V  
2.7 V  
0.5 × VCC  
0.5 × VCC  
1.5 V  
0.5 × VCC  
0.5 × VCC  
1.5 V  
3.0 V to 3.6 V  
4.5 V to 5.5 V  
1.5 V  
1.5 V  
0.5 × VCC  
0.5 × VCC  
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Product data sheet  
Rev. 01 — 29 June 2004  
11 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
V
I
nE input  
V
M
GND  
t
t
PZL  
PLZ  
V
CC  
output  
nY or nZ  
nY or nZ  
LOW-to-OFF  
OFF-to-LOW  
V
M
V
X
V
OL  
t
t
PZH  
PHZ  
V
OH  
V
y
output  
HIGH-to-OFF  
OFF-to-HIGH  
V
M
GND  
switch  
enabled  
switch  
enabled  
switch  
disabled  
001aaa542  
Measurement points are given in Table 12.  
Logic levels: VOL and VOH are typical output voltage drop that occur with the output load.  
Fig 15. The turn-on and turn-off times.  
Table 12: Measurement points  
Supply voltage  
VCC  
Input  
Output  
VM  
VM  
VX  
VY  
1.65 V to 1.95 V  
2.3 V to 2.7 V  
2.7 V  
0.5 × VCC  
0.5 × VCC  
1.5 V  
0.5 × VCC  
0.5 × VCC  
1.5 V  
VOL + 0.1 × VCC  
VOL + 0.1 × VCC  
VOL + 0.3 V  
VOL + 0.3 V  
VOL + 0.3 V  
V
V
V
V
V
OH 0.1 × VCC  
OH 0.1 × VCC  
OH 0.3 V  
3.0 V to 3.6 V  
4.5 V to 5.5 V  
1.5 V  
1.5 V  
OH 0.3 V  
0.5 × VCC  
0.5 × VCC  
OH 0.3 V  
V
EXT  
V
CC  
R
L
V
I
V
O
PULSE  
GENERATOR  
D.U.T.  
C
L
R
L
R
T
mna616  
Test data is given in Table 13.  
Definitions test circuit:  
RL = Load resistor.  
CL = Load capacitance including jig and probe capacitance.  
RT = Termination resistance should be equal to output impedance Zo of the pulse generator.  
VEXT = Test voltage for switching times.  
Fig 16. Load circuitry for switching times.  
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Product data sheet  
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74LVC2G66  
Philips Semiconductors  
Bilateral switch  
Table 13: Test data  
Supply voltage Input  
VCC VI  
1.65 V to 1.95 V VCC  
Load  
CL  
VEXT  
tr, tf  
RL  
tPLH, tPHL  
open  
tPZH, tPHZ  
GND  
tPZL, tPLZ  
2 × VCC  
2 × VCC  
6 V  
2.0 ns  
2.0 ns  
2.5 ns  
2.5 ns  
2.5 ns  
30 pF  
30 pF  
50 pF  
50 pF  
50 pF  
1 kΩ  
2.3 V to 2.7 V  
2.7 V  
VCC  
500 open  
500 open  
500 open  
500 open  
GND  
2.7 V  
2.7 V  
VCC  
GND  
3.0 V to 3.6 V  
4.5 V to 5.5 V  
GND  
6 V  
GND  
2 × VCC  
14. Additional dynamic characteristics  
Table 14: Additional dynamic characteristics  
At recommended conditions; typical values measured at Tamb = 25 °C.  
Symbol  
Parameter  
Conditions  
Min  
Typ  
Max  
Unit  
dsin  
sine-wave distortion  
RL = 10 k; CL = 50 pF; fi = 1 kHz; see  
Figure 17  
VCC = 1.65 V  
VCC = 2.3 V  
VCC = 3 V  
-
-
-
-
0.032  
0.008  
0.006  
0.005  
-
-
-
-
%
%
%
%
VCC = 4.5 V  
RL = 10 k; CL = 50 pF; fi = 10 kHz;  
see Figure 17  
VCC = 1.65 V  
VCC = 2.3 V  
VCC = 3 V  
-
-
-
-
0.068  
0.009  
0.008  
0.006  
-
-
-
-
%
%
%
%
VCC = 4.5 V  
[1]  
fON-state(res) switch ON-state signal RL = 600 ; CL = 50 pF; see Figure 18  
frequency response  
VCC = 1.65 V  
-
-
-
-
135  
145  
150  
155  
-
-
-
-
MHz  
MHz  
MHz  
MHz  
VCC = 2.3 V  
VCC = 3 V  
VCC = 4.5 V  
[1]  
RL = 50 ; CL = 5 pF; see Figure 18  
VCC = 1.65 V  
-
-
-
-
>500  
>500  
>500  
>500  
-
-
-
-
MHz  
MHz  
MHz  
MHz  
VCC = 2.3 V  
VCC = 3 V  
VCC = 4.5 V  
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Product data sheet  
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74LVC2G66  
Philips Semiconductors  
Bilateral switch  
Table 14: Additional dynamic characteristics …continued  
At recommended conditions; typical values measured at Tamb = 25 °C.  
Symbol  
Parameter  
Conditions  
Min  
Typ  
Max  
Unit  
[2]  
αOFF(ft)  
switch OFF-state signal RL = 600 ; CL = 50 pF; fi = 1 MHz;  
feed-through  
attenuation  
see Figure 19  
VCC = 1.65 V  
VCC = 2.3 V  
VCC = 3 V  
-
-
-
-
46  
46  
46  
46  
-
-
-
-
dB  
dB  
dB  
dB  
VCC = 4.5 V  
[2]  
RL = 50 ; CL = 5 pF; fi = 1 MHz; see  
Figure 19  
VCC = 1.65 V  
VCC = 2.3 V  
VCC = 3 V  
-
-
-
-
37  
37  
37  
37  
-
-
-
-
dB  
dB  
dB  
dB  
VCC = 4.5 V  
Vct(cti-sw)  
crosstalk between  
control input to signal  
output  
RL = 600 ; CL = 50 pF; fi = 1 MHz;  
tr = tf = 2 ns; see Figure 20  
VCC = 1.65 V  
VCC = 2.3 V  
VCC = 3 V  
-
-
-
-
-
-
-
-
-
mV  
mV  
mV  
mV  
91  
119  
205  
VCC = 4.5 V  
Vct(sw-sw)  
crosstalk between  
switches  
RL = 600 ; CL = 50 pF; fi = 1 MHz;  
see Figure 21  
VCC = 1.65 V  
VCC = 2.3 V  
VCC = 3 V  
-
-
-
-
-
-
-
-
-
dB  
dB  
dB  
dB  
56  
56  
56  
VCC = 4.5 V  
RL = 50 ; CL = 5 pF; fi = 1 MHz; see  
Figure 21  
VCC = 1.65 V  
VCC = 2.3 V  
-
-
-
-
-
-
-
-
-
dB  
dB  
dB  
dB  
29  
28  
28  
VCC = 3 V  
VCC = 4.5 V  
[1]  
fmax  
frequency response  
(3 dB)  
RL = 50 ; CL = 10 pF; see Figure 18  
VCC = 1.65 V  
-
-
-
-
200  
350  
410  
440  
-
-
-
-
MHz  
MHz  
MHz  
MHz  
VCC = 2.3 V  
VCC = 3 V  
VCC = 4.5 V  
[3]  
Q
charge injection  
CL = 0.1 nF; Vgen = 0 V; Rgen = 0 ;  
fi = 1 MHz; RL = 1 M; see Figure 22  
VCC = 3.5 V  
VCC = 5.5 V  
-
-
0.003  
-
-
pC  
pC  
0.0035  
[1] Adjust fi voltage to obtain 0 dBm level at output. Increase fi frequency until dB meter reads 3 dB.  
[2] Adjust fi voltage to obtain 0 dBm level at input.  
[3] Guaranteed by design.  
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Product data sheet  
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14 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
0.5V  
CC  
V
CC  
R
L
E
V
IH  
10 µF  
Y or Z  
Z or Y  
C
L
f
600 Ω  
D
i
GND  
001aaa544  
Test conditions:  
VCC = 1.65 V: Vi = 1.4 V (p-p).  
VCC = 2.3 V: Vi = 2 V (p-p).  
VCC = 3 V: Vi = 2.5 V (p-p).  
VCC = 4 V: Vi = 4 V (p-p).  
Fig 17. Test circuit for measuring sine-wave distortion.  
0.5V  
CC  
V
CC  
R
L
E
V
IH  
0.1 µF  
50 Ω  
Y or Z  
Z or Y  
C
L
f
dB  
i
GND  
001aaa543  
Fig 18. Test circuit for measuring the frequency response when switch is in ON-state.  
0.5V  
0.5V  
CC  
CC  
V
CC  
R
L
R
L
E
V
IL  
0.1 µF  
50 Ω  
Y or Z  
Z or Y  
C
L
f
dB  
i
GND  
001aaa545  
Fig 19. Test circuit for measuring feed-through attenuation when switch is in OFF-state.  
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Product data sheet  
Rev. 01 — 29 June 2004  
15 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
0.5V  
0.5V  
CC  
CC  
V
CC  
R = 600 Ω  
i
R = 600 Ω  
L
E
Y or Z  
Z or Y  
logic  
input  
C =  
L
50 pF  
50 Ω  
V
O
GND  
001aaa546  
Fig 20. Test circuit for measuring crosstalk between control input and output.  
0.5V  
CC  
1E  
V
R
L
IH  
0.1 µF  
R
i
1Y or 1Z  
1Z or 1Y  
600 Ω  
f
i
C
L
50 pF  
50 Ω  
V
O1  
channel ON  
0.5V  
CC  
2E  
V
R
L
IL  
2Y or 2Z  
2Z or 2Y  
R
600 Ω  
i
C
50 pF  
L
V
O2  
channel OFF  
001aaa547  
20 log10 (VO2/VO1) or 20 log10 (VO1/VO2).  
Fig 21. Test circuit for measuring crosstalk between switches.  
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Product data sheet  
Rev. 01 — 29 June 2004  
16 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
V
CC  
E
Y or Z  
Z or Y  
R
gen  
logic  
input  
R
1 MΩ  
=
C
0.1 nF  
=
L
L
V
V
gen  
O
GND  
001aaa548  
logic  
input  
(E) off  
on  
off  
V
O
V  
OUT  
001aaa549  
Q = (VOUT) × (CL).  
Fig 22. Test circuit for measuring injection charge.  
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Product data sheet  
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17 of 22  
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Philips Semiconductors  
Bilateral switch  
15. Package outline  
TSSOP8: plastic thin shrink small outline package; 8 leads; body width 3 mm; lead length 0.5 mm  
SOT505-2  
D
E
A
X
c
H
v
M
y
A
E
Z
5
8
A
2
A
(A )  
3
A
1
pin 1 index  
θ
L
p
L
detail X  
1
4
e
w
M
b
p
0
2.5  
5 mm  
scale  
DIMENSIONS (mm are the original dimensions)  
A
(1)  
(1)  
(1)  
A
A
A
b
c
D
E
e
H
E
L
L
p
UNIT  
v
w
y
Z
θ
1
2
3
p
max.  
0.15  
0.00  
0.95  
0.75  
0.38  
0.22  
0.18  
0.08  
3.1  
2.9  
3.1  
2.9  
4.1  
3.9  
0.47  
0.33  
0.70  
0.35  
8°  
0°  
mm  
1.1  
0.65  
0.25  
0.5  
0.2  
0.13  
0.1  
Note  
1. Plastic or metal protrusions of 0.15 mm maximum per side are not included.  
REFERENCES  
OUTLINE  
EUROPEAN  
PROJECTION  
ISSUE DATE  
VERSION  
IEC  
JEDEC  
JEITA  
02-01-16  
SOT505-2  
- - -  
Fig 23. Package outline TSSOP8.  
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Product data sheet  
Rev. 01 — 29 June 2004  
18 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
VSSOP8: plastic very thin shrink small outline package; 8 leads; body width 2.3 mm  
SOT765-1  
D
E
A
X
c
y
H
v
M
A
E
Z
5
8
Q
A
2
A
A
1
(A )  
3
pin 1 index  
θ
L
p
L
detail X  
1
4
e
w
M
b
p
0
2.5  
5 mm  
scale  
DIMENSIONS (mm are the original dimensions)  
A
(1)  
(2)  
(1)  
A
A
A
b
c
D
E
e
H
L
L
p
Q
UNIT  
v
w
y
Z
θ
1
2
3
p
E
max.  
0.15  
0.00  
0.85  
0.60  
0.27  
0.17  
0.23  
0.08  
2.1  
1.9  
2.4  
2.2  
3.2  
3.0  
0.40  
0.15  
0.21  
0.19  
0.4  
0.1  
8°  
0°  
mm  
1
0.5  
0.12  
0.4  
0.2  
0.13  
0.1  
Notes  
1. Plastic or metal protrusions of 0.15 mm maximum per side are not included.  
2. Plastic or metal protrusions of 0.25 mm maximum per side are not included.  
REFERENCES  
OUTLINE  
EUROPEAN  
PROJECTION  
ISSUE DATE  
VERSION  
IEC  
JEDEC  
JEITA  
02-06-07  
SOT765-1  
MO-187  
Fig 24. Package outline VSSOP8.  
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Product data sheet  
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19 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
16. Revision history  
Table 15: Revision history  
Document ID  
Release date Data sheet status  
20040629 Product data sheet  
Change notice Order number  
9397 750 13259  
Supersedes  
74LVC2G66_1  
-
-
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Product data sheet  
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20 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
17. Data sheet status  
Level Data sheet status[1] Product status[2] [3]  
Definition  
I
Objective data  
Development  
This data sheet contains data from the objective specification for product development. Philips  
Semiconductors reserves the right to change the specification in any manner without notice.  
II  
Preliminary data  
Qualification  
This data sheet contains data from the preliminary specification. Supplementary data will be published  
at a later date. Philips Semiconductors reserves the right to change the specification without notice, in  
order to improve the design and supply the best possible product.  
III  
Product data  
Production  
This data sheet contains data from the product specification. Philips Semiconductors reserves the  
right to make changes at any time in order to improve the design, manufacturing and supply. Relevant  
changes will be communicated via a Customer Product/Process Change Notification (CPCN).  
[1]  
[2]  
Please consult the most recently issued data sheet before initiating or completing a design.  
The product status of the device(s) described in this data sheet may have changed since this data sheet was published. The latest information is available on the Internet at  
URL http://www.semiconductors.philips.com.  
[3]  
For data sheets describing multiple type numbers, the highest-level product status determines the data sheet status.  
18. Definitions  
19. Disclaimers  
Short-form specification The data in a short-form specification is  
extracted from a full data sheet with the same type number and title. For  
detailed information see the relevant data sheet or data handbook.  
Life support — These products are not designed for use in life support  
appliances, devices, or systems where malfunction of these products can  
reasonably be expected to result in personal injury. Philips Semiconductors  
customers using or selling these products for use in such applications do so  
at their own risk and agree to fully indemnify Philips Semiconductors for any  
damages resulting from such application.  
Limiting values definition Limiting values given are in accordance with  
the Absolute Maximum Rating System (IEC 60134). Stress above one or  
more of the limiting values may cause permanent damage to the device.  
These are stress ratings only and operation of the device at these or at any  
other conditions above those given in the Characteristics sections of the  
specification is not implied. Exposure to limiting values for extended periods  
may affect device reliability.  
Right to make changes — Philips Semiconductors reserves the right to  
make changes in the products - including circuits, standard cells, and/or  
software - described or contained herein in order to improve design and/or  
performance. When the product is in full production (status ‘Production’),  
relevant changes will be communicated via a Customer Product/Process  
Change Notification (CPCN). Philips Semiconductors assumes no  
responsibility or liability for the use of any of these products, conveys no  
license or title under any patent, copyright, or mask work right to these  
products, and makes no representations or warranties that these products are  
free from patent, copyright, or mask work right infringement, unless otherwise  
specified.  
Application information Applications that are described herein for any  
of these products are for illustrative purposes only. Philips Semiconductors  
make no representation or warranty that such applications will be suitable for  
the specified use without further testing or modification.  
20. Contact information  
For additional information, please visit: http://www.semiconductors.philips.com  
For sales office addresses, send an email to: sales.addresses@www.semiconductors.philips.com  
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21 of 22  
74LVC2G66  
Philips Semiconductors  
Bilateral switch  
21. Contents  
1
2
3
4
5
6
General description . . . . . . . . . . . . . . . . . . . . . . 1  
Features . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 1  
Quick reference data . . . . . . . . . . . . . . . . . . . . . 1  
Ordering information. . . . . . . . . . . . . . . . . . . . . 2  
Marking . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 2  
Functional diagram . . . . . . . . . . . . . . . . . . . . . . 3  
7
7.1  
7.2  
Pinning information. . . . . . . . . . . . . . . . . . . . . . 3  
Pinning . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 3  
Pin description . . . . . . . . . . . . . . . . . . . . . . . . . 3  
8
8.1  
9
Functional description . . . . . . . . . . . . . . . . . . . 4  
Function table . . . . . . . . . . . . . . . . . . . . . . . . . . 4  
Limiting values. . . . . . . . . . . . . . . . . . . . . . . . . . 4  
Recommended operating conditions. . . . . . . . 4  
Static characteristics. . . . . . . . . . . . . . . . . . . . . 5  
Dynamic characteristics . . . . . . . . . . . . . . . . . 10  
Waveforms . . . . . . . . . . . . . . . . . . . . . . . . . . . . 11  
Additional dynamic characteristics . . . . . . . . 13  
Package outline . . . . . . . . . . . . . . . . . . . . . . . . 18  
Revision history. . . . . . . . . . . . . . . . . . . . . . . . 20  
Data sheet status . . . . . . . . . . . . . . . . . . . . . . . 21  
Definitions . . . . . . . . . . . . . . . . . . . . . . . . . . . . 21  
Disclaimers. . . . . . . . . . . . . . . . . . . . . . . . . . . . 21  
Contact information . . . . . . . . . . . . . . . . . . . . 21  
10  
11  
12  
13  
14  
15  
16  
17  
18  
19  
20  
© Koninklijke Philips Electronics N.V. 2004  
All rights are reserved. 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. No liability will be accepted by the publisher for any  
consequence of its use. Publication thereof does not convey nor imply any license under  
patent- or other industrial or intellectual property rights.  
Date of release: 29 June 2004  
Document order number: 9397 750 13259  
Published in The Netherlands  

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