產品型號
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JFTSM-SFP+8.5-15-80(ZR)-LCD
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工廠品牌
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JFOPT
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封裝形式
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SFP+
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光口類型
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LC Duplex
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最高總速率
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8.5Gbps
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每通道速率
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8.5Gbps
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最大傳輸距離
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80km
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工作波長
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1550nm
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工作電壓
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3.3V
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光纖型號
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SMF
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纖芯尺寸
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9/125
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發射器類型
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EML
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接收器類型
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IDP
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發射功率
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0~5dBm
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接收靈敏度
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-23dBm
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數字診斷
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YES
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接收過載
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-8dBm
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功耗
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<1.5W
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支持協議
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SFF-8431 , SFF-8432 , SFF-8472
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工作溫度(商業級)
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0℃~+70℃
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儲存溫度(商業級)
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-40℃~+85℃
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工作溫度(工業級)
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-40℃~+85℃
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儲存溫度(工業級)
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-40℃~+85℃
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JFOPT嘉富(fu)(fu)(fu)持續投入(ru)光(guang)模(mo)(mo)塊生產(chan)領(ling)域,產(chan)品(pin)覆蓋1*9、SFP、10G、25G、100G、200G、400G、800G GPON/EPON/XG/XGSPON OLT等(deng)全系列光(guang)模(mo)(mo)塊。同時為下(xia)游同行(xing)提供TOSA、ROSA、BOSA等(deng)光(guang)器(qi)件半成品(pin)解決方案。JFOPT嘉富(fu)(fu)(fu)生產(chan)線具備日產(chan)量(liang)一萬(wan)只光(guang)模(mo)(mo)塊、兩萬(wan)只光(guang)器(qi)件的能(neng)力(li)。此外,JFOPT嘉富(fu)(fu)(fu)光(guang)模(mo)(mo)塊擁有業界領(ling)先的耐高溫、抗干擾特(te)性,廣泛應用于計算中心、運營商、交通安防、電力(li)設施等(deng)行(xing)業領(ling)域。
JFOPT嘉富 SFP+ 8.5G 1550nm 80km ZR LC DX單模光模塊是(shi)一(yi)款緊(jin)湊型可插拔(ba)模塊,專為(wei)10G雙(shuang)工(gong)光纖數據通信(xin)設計。該模塊配備SFP+ 20針(zhen)(zhen)接(jie)口,支持(chi)熱插拔(ba)功(gong)能(neng),針(zhen)(zhen)對(dui)單模光纖優化設計,標(biao)稱工(gong)作波長為(wei)1550nm。其(qi)發射端采(cai)用(yong)符(fu)合IEC-60825 Class 1激光安(an)全標(biao)準的(de)1550nm電(dian)吸收調(diao)制激光器(qi)(EML),接(jie)收端在光頭部集成銦鎵砷(shen)探測器(qi)前置放大(da)器(qi)(IDP),并搭配限幅后置放大(da)器(qi)IC以實現可靠信(xin)號處理。
1550nm cooled EML transmitter | High sensitivity APD receiver | ||||||||
Distance up to 80km over SMF | Single 3.3V power supply and TTL logic interface | ||||||||
Duplex LC connector interface | Hot pluggable | ||||||||
Power dissipation < 1.5 W | Dispersion tolerance 1600ps/nm | ||||||||
Operating case temperature standard: 0℃~+70℃ industrial: -40℃~+85℃ |
Compliant with SFF MSA |
8G FC | OBSAI rates 6.144 Gb/s, 3.072 Gb/s, 1.536 Gb/s, 0.768Gb/s | ||||||||
CPRI rates 7.373Gb/s, 6.144 Gb/s,4.915 Gb/s, 2.458 Gb/s, 1.229 Gb/s, 0.614Gb/s | Other optical links |

Part No. | Data Rate | Laser | Temp. | Distance | CDR | DDMI | ||
JFTSM-SFP+8.5-15-80(ZR)-LCD | 8.5Gbps | 1550nm EML | Standard | 80km | NO | YES | ||
8.5Gbps | 1550nm EML | Industrial | 80km | NO | YES |
Parameter | Symbol | Min. | Max. | Unit | ||||
Storage temperature | TS | -40 | +85 | °C | ||||
Supply voltage | VCC | -0.5 | 3.6 | V |
Parameter | Symbol | Min. | Typical | Max. | Unit | |||
Operating case temperature | TC | Standard | 0 | - | +70 | °C | ||
Industrial | -40 | - | +85 | |||||
Power supply voltage | VCC | 3.15 | 3.3 | 3.45 | V | |||
Power supply current | ICC | - | - | 455 | mA | |||
Surge current | ISurge | - | - | +30 | mA | |||
Baud rate | JFTSM-SFP+8.5-15-80(ZR)-LCD | - | 8.5 | - | Gbit/s |
Parameter | Symbol | Min. | Typ. | Max | Unit | Notes | ||
Transmitter |
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CML Inputs(Differential) |
Vin | 150 | - | 1200 | mVpp | AC coupled inputs | ||
Input AC common mode voltage | - | 0 | - | 25 | mV | RMS | ||
Input impedance(Differential) | Zin | 85 | 100 | 115 | ohm | Rin > 100 kohms @ DC | ||
Differential Input S-parameter | SDD 11 | - | - | -10 | dB | - | ||
Differential to common mode conversion | SCD 11 | - | - |
![]() -10
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![]() dB
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- | ||
Tx_DISABLE input voltage–high | - | 2.0 | - | Vcc+0.3 | V | - | ||
Tx_DISABLE input voltage–low | - | 0 | - | 0.8 | V | - | ||
Tx_FAULT output voltage–high | - | 2.0 | - | Vcc+0.3 | V | Io = 400µA; Host Vcc | ||
Tx_FAULT output voltage–low | - | - | - | 0.5 | V | Io = -4.0mA | ||
Receiver |
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CML outputs (Differential) | Vout | 350 | - | 700 | mVpp | AC coupled outputs | ||
Output impedance (Differential) | Zout | 85 | 100 | 115 | ohm | - | ||
Differential output S-parameter | SD22 | - | - | - 10 | dB | - | ||
Rx_LOS output voltage–high |
- | 2.0 | - | Vcc+0.3 | V | lo = 400µA; Host Vcc | ||
Rx_LOS output voltage–low |
- | 0 | - | 0.8 | V | lo = -4.0mA | ||
MOD_DEF ( 2:0 ) | VoH | 2.5 | - | - | V | With serial ID | ||
VoL | 0 | - | 0.5 | V |
Parameter | Symbol | Min. | Typical | Max. | Unit | |||
9µm core diameter SMF | - | - | - | 80 | - | km | ||
Transmitter |
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Centre wavelength | λC | 1528 | 1550 | 1565 | nm | |||
Spectral width (-20dB) | Δλ | - | - | 1 | nm | |||
Side mode suppression ratio | SMSR | 30 | - | - | dB | |||
Average output power | Pout, AVG | 0 | - | 5 | dBm | |||
Extinction ratio | ER | 3.5 | - | - | dB | |||
Transmitter and dispersion penalty | TDP | - | - | 3 | dB | |||
Average power of OFF transmitter | - | - | - | -30 | dBm | |||
Relative intensity noise | RIN | - | - | -128 | dB/Hz | |||
TX disable assert time | t_off | - | - | 10 | us | |||
Receiver |
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Centre wavelength | λC | 1260 | - | 1600 | nm | |||
Sensitivity | PIN | - | - | -23 | dBm | |||
Receiver overload | PMAX | -8 | - | - | dBm | |||
LOS De-assert | LOSD | - | - | -24 | dBm | |||
LOS assert | LOSA | -36 | - | - | dBm |
Pin Num. | Name | FUNCTION | Plug Seq. | Notes | ||||
1 | VeeT | Transmitter ground | 1 | Note 5 | ||||
2 | TX fault | Transmitter fault indication | 3 | Note 1 | ||||
3 | TX disable | Transmitter disable | 3 | Note 2, Module disables on high or open | ||||
4 | SDA | Module definition 2 | 3 | 2-wire Serial Interface Data Line. | ||||
5 | SCL | Module definition 1 | 3 | 2-wire Serial Interface Clock. | ||||
6 | MOD_ABS | Module definition 0 | 3 | Note 3 | ||||
7 | RS0 | RX rate select(LVTTL). | 3 | No Function Implement.. | ||||
8 | LOS | Loss of signal | 3 | Note 4 | ||||
9 | RS1 | TX rate select(LVTTL). | 1 | No Function Implement.. | ||||
10 | VeeR | Receiver ground | 1 | Note 5 | ||||
11 | VeeR | Receiver ground | 1 | Note 5 | ||||
12 | RD- | Inv. Received data out | 3 | Note 6 | ||||
13 | RD+ | Received data out | 3 | Note 6 | ||||
14 | VeeR | Receiver ground | 1 | Note 5 | ||||
15 | VccR | Receiver power | 2 | 3.3 ± 5%, Note 7 | ||||
16 | VccT | Transmitter power | 2 | 3.3 ± 5%, Note 7 | ||||
17 | VeeT | Transmitter ground | 1 | Note 5 | ||||
18 | TD+ | Transmit data in | 3 | Note 8 | ||||
19 | TD- | Inv. Transmit data in | 3 | Note 8 | ||||
20 | VeeT | Transmitter ground | 1 | Note 5 |
Notes:
1) TX Fault is an open collector/drain output, which should be pulled up with a 4.7K – 10KΩ resistor on the host board. Pull up voltage between 2.0V and VccT/R+0.3V. When high, output indicates a laser fault of some kind. Low indicates normal operation. In the low state, the output will be pulled to < 0.8V.
2) TX disable is an input that is used to shut down the transmitter optical output. It is pulled up within the module with a 4.7K – 10 KΩ resistor. Its states are:
Low (0 – 0.8V): Transmitter on
(>0.8, < 2.0V): Undefined High
(2.0 – 3.465V): Transmitter Disabled
Open: Transmitter Disabled
3) Module Absent, connected to VeeT or VeeR in the module.
4) LOS (Loss of Signal) is an open collector/drain output, which should be pulled up with a 4.7K –10KΩ resistor.Pull up voltage between 2.0V and VccT/ R+0.3V. When high, this output indicates the received optical power is below the worst-case receiver sensitivity (as defined by the standard in use). Low indicates normal operation. In the low state, the output will be pulled to < 0.8V.
5) The module signal ground contacts, VeeR and VeeT, should be isolated from the module case.
6) RD-/+: These are the differential receiver outputs. They are AC coupled 100Ω differential lines which should be terminated with 100Ω (differential) at the user SERDES. The AC coupling is done inside the module and is thus not required on the host board. The voltage swing on these lines will be between 350 and 700 mV differential (175 –350 mV single ended) when properly terminated.
7) VccR and VccT are the receiver and transmitter power supplies. They are defined as 3.3V ±5% at the SFP+ connector pin. Maximum supply current is 725mA. Recommended host board power supply filtering is shown below. Inductors with DC resistance of less than 1 ohm should be used in order to maintain the required voltage at the SFP+ input pin with 3.3V supply voltage. When the recommended supply-filtering network is used, hot plugging of the SFP+ transceiver module will result in an inrush current of no more than 30mA greater than the steady state value. VccR and VccT may be internally connected within the SFP+ transceiver module.
8) TD-/+: These are the differential transmitter inputs. They are AC-coupled, differential lines with 100Ω differential termination inside the module. The AC coupling is done inside the module and is thus not required on the host board. The inputs will accept differential swings of 150 – 1200 mV (75 – 600mV single-ended).