Fiber Optics - Transmitters - Discrete

Image Part Number Description / PDF Quantity Rfq
TOTX1350(V,F)

TOTX1350(V,F)

Toshiba Electronic Devices and Storage Corporation

FIBER OPTIC XMITTER 650NM

59

AFBR-1539Z

AFBR-1539Z

Broadcom

IC TXRX FIBER OPTIC

1730

AFBR-1529Z

AFBR-1529Z

Broadcom

TX FIBER OPTIC DC-50MBD

348

OPF352A

OPF352A

TT Electronics / Optek Technology

FIBER OPTIC TRANSMITTER ST RECEP

0

OPF694-2

OPF694-2

TT Electronics / Optek Technology

LED PLASTIC TO-18

0

SP000063802

SP000063802

Broadcom

TRANSMITTER DIODE FIBER OPTIC

0

HFBR-1415TZ

HFBR-1415TZ

Broadcom

XMITTER MINI HP FIB OPT ST PORT

0

AFBR-1541CZ

AFBR-1541CZ

Broadcom

TIL. 5MBAUD TX ROHS +95C

634

OPF320A

OPF320A

TT Electronics / Optek Technology

LED FIBER OPTIC GAAIAS HS TO-46

0

HFBR-1541ETZ

HFBR-1541ETZ

Broadcom

TX OPT HIGH PERFORMANCE 5MBD

777

IF-E93

IF-E93

Industrial Fiber Optics, Inc.

LED FIBER OPTIC 530NM GREEN

4991

OPF350A

OPF350A

TT Electronics / Optek Technology

TO-18 FIBER OPTIC TRANSMITTER

0

HFBR-1531ETZ

HFBR-1531ETZ

Broadcom

TX OPT HIGH PERFORMANCE 5MBD

1012

HFBR-1533Z

HFBR-1533Z

Broadcom

XMITTER FIBER OPTIC VERT 40KBD

0

IF-E91D

IF-E91D

Industrial Fiber Optics, Inc.

LED IR FIBER OPT 100MBPS 870NM

0

IF-E92B

IF-E92B

Industrial Fiber Optics, Inc.

LED FIBER OPTIC 470NM BLUE

52

HFBR-1402Z

HFBR-1402Z

Broadcom

XMITTER FIBER OPTIC STD PWR SMA

252

HFBR-1414PTZ

HFBR-1414PTZ

Broadcom

XMITTER FIBER OPTIC

411

HFBR-1412TMZ

HFBR-1412TMZ

Broadcom

XMITTER FIBER OPTIC STD PWR ST

2779

HFBR-1424Z

HFBR-1424Z

Broadcom

XMITTER MINI HP FIB OPT FC PORT

323

Fiber Optics - Transmitters - Discrete

1. Overview

Discrete fiber optic transmitters are optoelectronic devices that convert electrical signals into optical signals through individual component packages. They serve as fundamental building blocks in fiber communication systems, enabling data transmission via modulated light waves. These transmitters play critical roles in telecommunications, data centers, and sensing applications due to their high bandwidth efficiency and electromagnetic interference immunity.

2. Major Types & Functional Classification

TypeFunctional CharacteristicsApplication Examples
LED TransmittersLow-cost, low-power, broad spectral widthShort-distance links ( 2km), premises networks
Laser Diodes (LD)High power, narrow linewidth, high speedLong-haul telecom, CATV systems
VCSELsLow divergence beam, low power consumptionData center interconnects (100G-400G)
Electro-absorption Modulated Lasers (EML)Integrated modulation, low chirpHigh-speed DWDM systems ( 100Gbps)

3. Structure & Components

Typical discrete transmitters consist of: (1) Light source (LED/LD/VCSEL chip), (2) Optical sub-assembly (OSA) with lens/filter, (3) Electrical interface (bonding wires/PCB), (4) Hermetic package (TO-can or surface-mount). Advanced designs integrate drivers/modulators in photonic integrated circuits (PICs).

4. Key Technical Specifications

ParameterSignificance
Wavelength (1270-1610nm)Determines fiber transmission window and dispersion characteristics
Output Power (-20 to +20dBm)Affects transmission distance and signal-to-noise ratio
Modulation Bandwidth (DC-67GHz)Limits maximum data rate capability
Chirp CharacteristicsImpacts dispersion penalty in high-speed systems
Operating Temperature (-40 to +85 C)Determines environmental deployment flexibility

5. Application Domains

Primary industries include: Telecommunications (DWDM networks), Data Centers (QSFP modules), Cable TV (HFC networks), Industrial Sensing (strain/temperature monitoring). Typical equipment: Optical line terminals (OLTs), active optical cables (AOCs), OTDR test instruments.

6. Leading Manufacturers & Products

VendorRepresentative Product
II-VI Incorporated100G CFP EML transmitter
LumentumMulti-junction VCSEL arrays
Finisar (II-VI)TO-Can DFB lasers
BroadcomIntegrated TOSA assemblies
NeoPhotonicsHigh-power narrow-linewidth lasers

7. Selection Guidelines

Key considerations: (1) Match wavelength to system requirements (O-band/C-band), (2) Verify output power vs. link budget needs, (3) Ensure modulation bandwidth exceeds data rate requirements, (4) Evaluate thermal stability for operating environments, (5) Consider packaging form factor (TO/ROSA vs. SMT), (6) Balance cost/performance for volume deployments.

8. Industry Trends

Current development directions include: (1) 400G+ transmission through advanced modulation formats, (2) Silicon photonics integration for cost reduction, (3) Shortwave infrared (SWIR) sources for emerging applications, (4) AI-driven digital signal processing co-design, (5) Environmental compliance with RoHS/Green Photonics initiatives. Market growth in 5G fronthaul and automotive LiDAR applications is driving innovation in compact, low-power transmitters.

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