100G QSFP28-4WDM-10 QSFP28 optical module

100G QSFP28-4WDM-10 QSFP28 optical module

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100G QSFP28-4WDM-10 QSFP28 optical module

100G QSFP28-4WDM-10 QSFP28 optical module

¥0.00

Product Overview:
This product is a 100Gb/s transceiver module designed for optical communication applications, conforming to the 100GBASE-4WDM-10 standard in the IEEE P802.3ba standard. The module converts 25Gb/s electrical data from four input channels into four CWDM optical signal channels, then multiplexes them into a single channel to achieve 100Gb/s optical transmission. Conversely, the receiving end demultiplexes the 100Gb/s optical input into four CWDM optical signal channels, then converts them into electrical data for four output channels.
The center wavelengths of the four CWDM channels are 1271, 1291, 1311, and 1331 nanometers, all members of the CWDM wavelength grid defined by IEEE 802.3ba. A high-performance cooled CWDM DFB transmitter and a high-sensitivity PIN receiver provide superior performance for 100Gb Ethernet applications (up to 10km links).
The product design incorporates a QSFP+ Multi-Source Protocol (MSA) compliant form factor, optoelectronic connections, and digital diagnostic interfaces. It is designed to withstand the most demanding external operating conditions, including temperature, humidity and electromagnetic interference.

Product Specifications:
4-Channel Full-Duplex Transceiver Module
Maximum 26Gbps Data Transmission Rate per Channel
4 channels at 26Gb/s; DFB-based CWDM Cooled Transmitter
4-Channel PINROSA+ Receiver and Transmit Channels with Internal CDR Circuitry
Low Power Consumption <4W
Hot-swappable QSFP
G.652 SMF; Up to 10km
Duplex LC
3.3V Power Supply
RoHS Compliant (Lead-Free)
Chassis Operating Temperature
Commercial Temperature: 0 ~ +70°C
Industrial Temperature: -40 ~ +85°C

Our strengths
lie in our advanced technology, extensive experience
independent R&D and meticulous manufacturing, customizable
solutions with imported chips, stable performance
comprehensive compatibility, and expert personnel to solve technical problems
Our DDM digital diagnostic real-time monitoring module has undergone
specialized testing and verification, achieving satisfactory performance across all specifications

Absolute Maximum Ratings

Parameter Symbol Min Max Unit
Supply Voltage Vcc -0.3 3.6 In
Input Voltage  Come -0.3 Vcc+0.3 In
Storage Temperature Tst -60 95 ºC
Case Operating Temperature Top 0 85 ºC
Humidity(non-condensing) Rh 5 85 %
Damage Threshold, each Lane TH 5.5 dBm

Recommended Operating Conditions

Parameter Symbol Min Typical Max Unit
Supply Voltage Vcc 3.13 3.3 3.47 In
Operating Case temperature Tca 0 85 ºC
Data Rate Per Lane fd 25.78125 Gbps
Humidity Rh 5 85 %
Power Dissipation P 4 IN
Link Distance with G.652 D 0.002 20 km

Electrical Specifications

Parameter Symbol Min Typical Max Unit
Power Consumption P 4 IN
Supply Current Icc 1.06 A
Transceiver Power-on          Initialization Time 2000 ms
Transmitter(each Lane)
Single-ended Input Voltage Tolerance -0.3 4.0 In
AC Common Mode Input Voltage Tolerance 15 mV
Differential Input Voltage 50 mVpp
Differential Input Voltage Swing Come 900 mVpp
Differential Input Impedance Sentence 90 100 110 Ohm
Receiver(each Lane)
Single-ended Output Voltage -0.3 4.0 In
AC Common Mode Output Voltage 7.5 mV
Differential Output Voltage Swing Vout 300 850 mVpp
Differential Output Impedance Salty 90 100 110 Ohm

Note:Power-on Initialization Time is the time from when the power supply voltages reach and remain above the minimum recommended operating supply voltages to the time when the module is fully functional.

Optical Characteristics 
Table 3 – Optical Characteristics

QSFP28 100GBASE-4WDM-10
Parameter Symbol Min Typical Max Unit Notes
Lane Wavelength L0 1264.5 1271 1277.5 nm  
L1 1284.5 1291 1297.5 nm  
L2 1304.5 1311 1317.5 nm  
L3 1324.5 1331 1337.5 nm  
Transmitter
SMSR SMSR 30 dB
Total Average Launch Power PT 8.5 dBm
Average Launch Power,each Lane AVG -6.5 2.5 dBm
OWN, each Lane POMA -4 2.5 dBm 1
Difference in Launch Power between any Two Lanes (OMA) Ptx,diff 6 dB
Launch Power in OMA Kminus Transmitter and Dispersion Penalty (TDP), each Lane -5 dBm
TDP, each Lane TDP 3 dB
Extinction Ratio IS 3.5 dB
RIN 20 OMA ALSO -130 dB/Hz
Optical Return Loss Tolerance TOLL 20 dB
Transmitter Reflectance RT -20 dB
Eye Mask coordinates:X1, X2, X3, Y1, Y2, Y3 {0.31, 0.4, 0.45, 0.34, 0.38, 0.4} 2
Average Launch Power OFF Transmitter, each Lane Poof -30 dBm
Receiver
Damage Threshold,    each Lane THd 3.5 dBm 3
Total Average Receive Power 10.5 dBm
Average Receive Power, each Lane -13 2.5 dBm
Receive Power (OMA),   each Lane 2.5 dBm
Receiver Sensitivity (OMA), each Lane ITS -11.5(1E-12) -11.5(5E-5) dBm
Stressed Receiver Sensitivity (OMA),     each Lane -8.6(5E-5) dBm 4
Difference in Receive Power between any Two Lanes (OMA) Prx,diff 5.5 dB
LOS Assert RELEASE -18 dBm
LOS Deassert LOSD -15 dBm
Hysteresis LOSH 0.5 3.0 dB
Receiver Electrical 3 dB upper Cutoff Frequency, each Lane Fc 31 GHz
Conditions of Stress Receiver Sensitivity Test(Note 5) 
Vertical Eye Closure Penalty, each Lane 1.8 dB 5
Stressed Eye J2 Jitter,  each Lane 0.3 UI
Stressed Eye J9 Jitter,  each Lane 0.47 UI

 Note:

  • Even if the TDP < 1 dB, the OMA min must exceed theminimum valuespecified here.
  • See Figure 4 below.
  • The receiver shall be able to tolerate, without damage, continuous exposure to a modulated optical input signal having this power level on one lane. The receiver does not have to operate correctly at this input power.
  • Measured with conformance test signal at receiver inputfor BER = 5E-5
  • Vertical eye closure penalty and stressed eye jitter are test conditions for measuring stressed receiver sensitivity. They are not characteristics of the receiver.

Power and wavelength testing

Test the signal transmission strength and wavelength, ensure the signal decoding capability of the receiver, and maintain consistency in wavelength from the transmitter to the receiver.

Traffic Testing

Traffic Testing

Test the bit error rate and packet loss rate, to make them meet the corresponding standards and ensure the performance of transceivers.

Optical Performance Testing

Test the transceivers' eye diagram situation, receiving sensitivity, extinction ratio, wavelength, light-emitting, light-receiving, current and voltage, to ensure the signal quality, stability and reliability of the transmission.

End Face Testing

Check the end face of the transceivers and keep them clean for more stable data transmission, better performance, and durability.

Various Switch Tests

Every module is quality tested for compatibility in the multi-brand switches environment, guaranteeing flawless operations.

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