SK4435T [SEMTECH]

Line Transceiver, 4 Func, 4 Driver, 4 Rcvr, ECL, PQFP32, TQFP-32;
SK4435T
型号: SK4435T
厂家: SEMTECH CORPORATION    SEMTECH CORPORATION
描述:

Line Transceiver, 4 Func, 4 Driver, 4 Rcvr, ECL, PQFP32, TQFP-32

驱动 接口集成电路 驱动器
文件: 总4页 (文件大小:77K)
中文:  中文翻译
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AN1004  
Interfacing Between LVDS and ECL /  
LVECL / PECL / LVPECL  
HIGH-PERFORMANCE PRODUCTS  
Interfacing LVDS with PECL and LVPECL  
About LVDS  
Signal level translation between PECL / LVPECL to  
LVDS can be achieved using resistor divider network;  
however, when using discrete logic the signal volt-  
age level would shift with respect to supply voltage  
and ambient temperature fluctuation. In turn, this  
will diminish the signal integrity and cause duty cycle  
distortion. To avoid such problems, Semtech has  
designed a fully integrated IC devices that translate  
PECL / LVPECL signal into LVDS and LVDS to PECL /  
LVPECL type signals. Refer to table 1 for a list of  
these devices. Semtech also offers a fully integrated  
receiver / driver device with true LVDS inputs and  
outputs (SK1303) in an 8-lead SOIC and MSOP pack-  
ages.  
As the bandwidth increases in Telecom / Datacom  
and even in consumer / commercial applications ,  
the high speed, low power, noise, and cost of LVDS  
signal broaden the scope of its application beyond  
the traditional technologies such as ECL / PECL.  
LVDS (Low Voltage Differential Signaling) are differ-  
ential signals with typical 350 mV swing and a DC  
offset of 1.2V. When moving signals from box-to-  
box or board-to-board (i.e. flat panel display). LVDS  
is the right solution because it generates less noise,  
consumes less power and it is very cost effective.  
Figure 1 shows different voltage levels for different  
types of signals.  
LVDS signals can easily be terminated with a 100 W  
resistor across the differential LVDS outputs. Most  
devices with LVDS I / O provide the 100W resistor  
internally at its inputs to minimize component count  
(i.e. SK1301). Figure 2 is an example of LVDS out-  
put termination. For PECL / LVPECL output termina-  
tion refer to application note AN1003.  
PECL  
LVPECL  
+
LVDS  
HSTL  
0V  
V
CC  
NC  
D
8
1
ECL /LVECL  
-
Figure 1: Relative differences among various I/O standards  
Q
2
7
100  
LVDS  
D*  
R
3
6
Q*  
T
Note:  
HSTL (High-Speed Transceiver Logic) signals are used in computing de-  
sign applications such as memory drivers and high-speed CPU-to-Memory  
interfacing.  
R
T
VEE  
NC  
5
SK1301  
4
V
TT  
Figure 2: LVDS Termination  
Revision 1/December 20, 2001  
www.semtech.com  
1
AN1004  
HIGH-PERFORMANCE PRODUCTS  
Interfacing LVDS with PECL and LVPECL (cond)  
Package Operating  
Type Voltage  
Device  
Function  
8 PIN SOIC 3.0V to  
SK1300  
PECL / LVPECL to LVDS Translator  
/ MSOP  
5.5V  
8 PIN SOIC  
/ MSOP  
3.0V to  
5.5V  
SK1301  
LVDS to PECL / LVPECL Translator  
Table 1  
LVDS with PECL / LVPECL Signal Distribution  
Figure 3 is a good example showing how we can  
fan-out LVDS signal using PECL / LVPECL devices.  
SK10/100EL11W, a 1:2 fan-out buffer, is used as  
an example to fan-out the LVDS signal into either  
PECL or LVPECL signals. It is important to mention  
that SK100EL11W has PECL / LVPECL type inputs,  
but with its extended input common mode range it  
can accept LVDS type signal without having to go  
through any kind of signal translation. This kind of  
feature makes clock distribution or generation de-  
vices ideal to directly interface with LVDS signals  
and provide PECL / LVPECL type outputs. Table 2  
depicts some of the devices that can directly ac-  
cept LVDS signals.  
V
CC  
To PECL / LVPECL Devices  
LVDS  
100  
To PECL / LVPECL Devices  
SK10/100EL11W  
Figure 3: LVDS to PECL / LVPECL  
Revision 1/December 20, 2001  
2
www.semtech.com  
AN1004  
HIGH-PERFORMANCE PRODUCTS  
LVDS with PECL / LVPECL Signal Distribution (cond)  
Package  
Type  
Operating  
Voltage  
Device  
Function  
8 PIN  
SOIC/MSOP  
SK10/100EL11W  
1:2 Differential Fanout Buffer  
3.0V to 5.5V  
SK10/100EL14W  
SK10/100EL15W  
SK10/100EL38W  
SK10/100EL39W  
SK10/100EL57W  
1:5 Clock Distribution Chip  
1:4 Clock Distribution  
20 PIN SOIC  
16 PIN SOIC  
20 PIN SOIC  
20 PIN SOIC  
16 PIN SOIC  
3.0V to 5.5V  
3.0V to 5.5V  
3.0V to 5.5V  
3.0V to 5.5V  
3.0V to 5.5V  
¸
¸
2
, ¸4/6 Clock Generation Chip  
2/4, ¸4/6 Clock Generation Chip  
4:1 Differential Multiplexer  
Triple PECL to ECL / LVECL and LVPECL to ECL  
/ LVECL Translator  
-5.0V to -3.0V/  
3.0V to 5.5V  
SK10/100EL91W  
20 PIN SOIC  
SK10/100LVEL111/E 1:9 Differential LVECL / LVPECL Clock Driver  
20 PIN PLCC  
32 PIN TQFP  
32 PIN TQFP  
32 PIN TQFP  
3.0V to 3.8V  
3.0V to 5.5V  
3.3V to 5.2V  
3.3V to 5.2V  
SK15XX  
SK19XX  
SK44XX  
1:5 Signal Distribution  
1:9 Signal Distribution  
Quad Buffer/Receiver  
Table 2  
Interfacing LVDS with ECL and LVECL  
Since LVDS signals are in the positive region, they can The alternative method would be the capacitive coupling  
interface with ECL / LVECL signal in two different ways. of the LVDS to ECL / LVECL signals. Figure 5 shows  
The first method is to simply use SK10 / 100EL91W, such interface with ECL devices that provide a VBB out-  
triple PECL to ECL / LVECL and LVPECL to ECL / LVECL  
translator, to convert the LVDS signal into ECL or LVECL  
type signal. The extended input common mode range of  
SK10 / 100EL91W will allow the LVDS signal to directly  
interface with the inputs of SK10 / 100EL91W. Figure 4  
shows LVDS interface to ECL / LVECL using SK10 /  
100EL91W, please note that for ECL / LVECL output ter-  
mination refer to the application note AN1003.  
put. The 100 KW resistor is to prevent the outputs from  
oscillating during null state signal conditions. If the  
VBB output is not provided by the ECL device, Thevenin  
equivalent parallel termination scheme can be used to  
reset the threshold to the inputs of the ECL / LVECL  
device, as shown in Figure 6. In the board layout, both  
the capacitors and the resistors must be as close to  
the ECL / LVECL device as possible.  
V
= 0V  
CC  
3.3V  
3.3V  
V
CC  
Z
= 50  
= 50Ω  
o
100K  
10pF  
Z
= 50Ω  
= 50Ω  
o
ECL /  
LVECL  
LVDS  
EL91W  
100  
Z
o
100Ω  
ECL  
LVDS  
Z
50  
o
V
BB  
10pF  
-3.3V/-5.0V  
-3.3V/-5.0V  
1kΩ  
1kΩ  
10nF  
V
= V  
- 2.0V  
CC  
TT  
Figure 5: Cacapitive Coupling of LVDS to ECL  
Figure 4: LVDS tp ECL/LVECL  
3
Revision 1/December 20, 2001  
www.semtech.com  
AN1004  
HIGH-PERFORMANCE PRODUCTS  
Interfacing LVDS with ECL and LVECL (cond)  
V
CC  
R
R
R
1
1
10pF  
10pF  
Z
= 50  
= 50Ω  
o
LVDS  
100Ω  
ECL  
Z
o
R
2
2
V
EE  
Figure 6: Capacitive Coupling of LDVS to ECL with Different Termination  
Examples: VCC = GND, VEE = -5.0V: R1 = 1.2 KW and R2 = 3.4KW  
VCC = GND, VEE = -3.3V: R1 = 680W and R2 = 1 KW  
Interfacing ECL / LVECL with LVDS  
The ECL / LVECL outputs are emitter follower out-  
puts; therefore, they need a DC path to VEE. When  
capacitive coupled, the ECL outputs need pull-down  
resistors to VEE as shown in Figure 7. The Thevenin  
equivalent parallel termination resistors represent  
the termination of the transmission line Zo = R1 ||  
R2 and generates a DC level of 1.2V (typical) which  
is the threshold of the LVDS signal.  
V
= 3.3V  
CC  
R
R
R
1
1
140  
Z = 50  
o
10pF  
100Ω  
10pF  
LVDS  
ECL  
Z = 50Ω  
o
R
R
T
R
T
2
2
80Ω  
V
EE  
Figure 7: ECL / LVECL to LVDS  
Note: RT = 150W for a 3.3V system and  
RT = 270W for a 5.0V system.  
Contact Information  
Semtech Corporation  
High-Performance Products Division  
Division Headquarters  
10021 Willow Creek Road  
San Diego, CA 92131  
Phone: (858) 695-1808  
Marketing Group  
1111 Comstock Street  
Santa Clara, CA 95054  
Phone: (408) 566-8776  
FAX:  
(858) 695-2633  
FAX: (408) 727-8994  
Revision 1/December 20, 2001  
4
www.semtech.com  

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