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Fiber Optics
V23809-C8
–
C10, MM 1300 nm LED Fast Ethernet/FDDI/ATM Transceiver
2
DESCRIPTION
This data sheet describes the Infineon Fast Ethernet/FDDI/ATM
transceiver
—
part of Infineon Multistandard Transceiver Family.
It is fully compliant with the Asynchronous Transfer Mode
(ATM) OC-3 standard, the Fiber Distributed Data Interface
(FDDI) Low Cost Fiber Physical Layer Medium Dependent (LCF-
PMD) draft standard
(1)
, and the FDDI PMD standard
(2)
.
ATM was developed because of the need for multimedia appli-
cations, including real time transmission. The data rate is scal-
able and the ATM protocol is the basis of the broadband public
networks being standardized in the International Telegraph and
Telephone Consultative Committee (CCITT). ATM can also be
used in local private applications.
FDDI is a Dual Token Ring standard developed in the U.S. by the
Accredited National Standards Committee (ANSC) X3T9, within
the Technical Committee X3T9.5. It is applied to the local area
networks of stations, transferring data at 100 Mbits/s with a
125 MBaud transmission rate. LCF FDDI is specially developed
for short distance applications of up to 500 m (fiber-to-the-desk)
as compared to 2 km for backbone applications.
Fast Ethernet was developed because of the higher bandwidth
requirement in local area networking. It is based on the proven
effectiveness of millions of installed Ethernet systems.
The Infineon multimode transceiver is a single unit comprised
of a transmitter, a receiver, and an SC receptacle. This design
frees the customer from many alignment and PC board layout
concerns. The modules are designed for low cost applications.
The inputs/outputs are PECL compatible and the unit operates
from a 3.0 V to 5.5 V power supply. As an option, the data out-
put stages can be switched to static levels during absence of
light, as indicated by the Signal Detect function. It can be
directly interfaced with available chipsets.
Notes
1. FDDI Token Ring, Low Cost Fiber Physical Layer Medium Depen-
dent (LCF-PMD) ANSI X3T9.5 / 92 LCF-PMD / Proposed Rev. 1.3,
September 1, 1992. American National Standard.
2. FDDI Token Ring, Physical Layer Medium Dependent (PMD) ANSI
X3.166-1990 American National Standard. ISO/IEC 9314-3: 1990.
Regulatory Compliance
TECHNICAL DATA
The electro-optical characteristics described in the following
tables are valid only for use under the recommended operating
conditions.
Recommended Operating Conditions
Notes
1. For V
CC
–
V
EE
(min., max.). 50% duty cycle. The supply current
(I
CC2
+I
CC3
) does not include the load drive current (Icc1). Add max.
45 mA for the three outputs. Load is 50
into V
CC
–
2V.
2. To maintain good LED reliability, the device should not be held in the
ON state for more than the specified time. Normal operation should
be done with 50% duty cycle.
3. To achieve proper PECL output levels the 50
termination should be
done to V
CC
–
2 V. For correct termination see the application notes.
Feature
Electromagnetic
Interference (EMI)
Standard
FCC Class B
EN 55022 Class B
CISPR 22
EN 61000-4-2
IEC 61000-4-2
Comments
Noise frequency
range:30 MHz to
40 GHz
Discharges of
±
15kV with an air
discharge probe on
the receptacle cause
no damage.
Immunity:
Electrostatic
Discharge
Immunity:
Radio Frequency
Electromagnetic
Field
EN 61000-4-3
IEC 61000-4-3
With a field strength
of 10 V/m rms, noise
frequency ranges
from 10 MHz to
1 GHz
Eye Safety
IEC 825-1
Class 1
Parameter
Ambient Temperature
Symbol
T
AMB
V
CC
–
V
EE
I
CC
Min.
0
Typ.
Max.
70
Units
°
C
V
Power Supply Voltage
3
5.5
Supply Current 3.3 V
Supply Current 5 V
(1)
230
260
mA
Transmitter
Data Input
High Voltage
V
IH
–
V
CC
–
1165
–
880
mV
Data Input
Low Voltage
V
IL
–
V
CC
–
1810
–
1475
Threshold Voltage
Input Data Rise/Fall,
20%
–
80%
Data High Time
(2)
V
BB
–
V
CC
t
R
, t
F
–
1380
0.4
–
1260
1.3
ns
t
on
1000
Receiver
Output Current
l
O
t
DCD
25
mA
Input Duty Cycle
Distortion
1.0
ns
Input Data
Dependent J itter
t
DDj
Input Random J itter
Input Center
Wavelength
Electrical Output
Load
(3)
t
RJ
l
C
0.76
1380
1260
nm
R
L
50