Fiber Optics - Receivers

Image Part Number Description / PDF Quantity Rfq
HFBR-2532

HFBR-2532

Broadcom

RCVR OPT HI PERFORM 1MBD VERT

0

XPRV2022A-VF-FA

XPRV2022A-VF-FA

Finisar Corporation

43 GBIT/S SINGLE PHOTORECEIVER,

0

LBR-50K3G-10-15-10-MCN

LBR-50K3G-10-15-10-MCN

MITEQ, Inc.(L3 Narda-MITEQ)

FIBER OPTIC RECEIVER

0

SCMR-100M15G-10-25-10

SCMR-100M15G-10-25-10

MITEQ, Inc.(L3 Narda-MITEQ)

FIBER OPTIC RECEIVER

0

LBR-10M3G-10-15-10-FP

LBR-10M3G-10-15-10-FP

MITEQ, Inc.(L3 Narda-MITEQ)

FIBER OPTIC RECEIVER

0

LBR-50K3G-10-15-10

LBR-50K3G-10-15-10

MITEQ, Inc.(L3 Narda-MITEQ)

FIBER OPTIC RECEIVER

0

GN3150-3EA3DD4E3

GN3150-3EA3DD4E3

Semtech

IC ROSA 10G SW LC LIMIT CUSTOM

0

HFBR-2526

HFBR-2526

Broadcom

RCVR OPT HI SPEED VERS LINK HORZ

0

HFBR-2510Z

HFBR-2510Z

Broadcom

RCVR OPTICAL 125MBD SMA

0

LBR-10M3G-10-15-10-SP

LBR-10M3G-10-15-10-SP

MITEQ, Inc.(L3 Narda-MITEQ)

FIBER OPTIC RECEIVER

0

GN3250-3EB7AM6E3

GN3250-3EB7AM6E3

Semtech

IC ROSA GEN II 40KM LC NO FLEX

0

LBR-50K4P5G-10-15-10

LBR-50K4P5G-10-15-10

MITEQ, Inc.(L3 Narda-MITEQ)

FIBER OPTIC RECEIVER

0

GN3352-3EB8AR3E3

GN3352-3EB8AR3E3

Semtech

IC ROSA 10G APD F10029 FLEX

0

SCMR-50K6G-10-20-10-GC-FA

SCMR-50K6G-10-20-10-GC-FA

MITEQ, Inc.(L3 Narda-MITEQ)

FIBER OPTIC RECEIVER

0

LBR-50K4P5G-10-15-10-GC

LBR-50K4P5G-10-15-10-GC

MITEQ, Inc.(L3 Narda-MITEQ)

FIBER OPTIC RECEIVER

0

HFD3081-500/BBA

HFD3081-500/BBA

Honeywell Sensing and Productivity Solutions

OPTICAL PHOTODIODE

0

SYS9510NO1T

SYS9510NO1T

MITEQ, Inc.(L3 Narda-MITEQ)

SUB ASSEMBLY

0

HFD3023-500-BBA-RS

HFD3023-500-BBA-RS

Honeywell Sensing and Productivity Solutions

OPTICAL PHOTODIODE

0

SCMR-50K6G-10-ME

SCMR-50K6G-10-ME

MITEQ, Inc.(L3 Narda-MITEQ)

6 GHZ FIBER OPTIC RECEIVER IN -M

0

EAPLRAA5

EAPLRAA5

Everlight Electronics

RECEIVER MODULE

0

Fiber Optics - Receivers

1. Overview

Fiber optic receivers are optoelectronic devices that convert optical signals transmitted through optical fibers into electrical signals. As critical components in fiber optic communication systems, they perform photon-to-electron conversion through semiconductor materials like silicon (Si), indium gallium arsenide (InGaAs), or germanium (Ge). Modern high-speed communication networks, sensing systems, and data centers rely on these devices for reliable signal detection with bandwidth capabilities extending from hundreds of MHz to 100+ Gbps.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
PIN PhotodiodeHigh linearity, low capacitance, fast response (ns range)Telecom networks, optical power meters
APD (Avalanche Photodiode)Internal gain mechanism, improved SNRLong-haul DWDM systems, LIDAR
PhototransistorHigh sensitivity, low costShort-range links, industrial sensors
Integrated ReceiverCombined detector and transimpedance amplifier400G/800G optical modules

3. Structure and Components

Typical fiber optic receiver architecture includes:

  • Optical Interface: FC/SC/LSH connectors with anti-reflective coated windows
  • Photodetector: Semiconductor chip with active area (50 m-2mm diameter)
  • Thermal Management: Heat sink or TEC (thermoelectric cooler) for stability
  • Pre-amplifier: Transimpedance amplifier (TIA) for current-to-voltage conversion
  • Electrical Interface: SMA/BNC connectors or PCB-mounted pads

4. Key Technical Specifications

ParameterDescriptionImportance
Responsivity0.5-1.5 A/WDetermines conversion efficiency
Bandwidth100MHz-100GHzLimits data transmission rate
Dark Current<10nAImpacts signal-to-noise ratio
Operating Wavelength850nm/1310nm/1550nmMatches fiber transmission windows
Dynamic Range-20 to -60dBmDefines signal power tolerance

5. Application Fields

Primary application domains include:

  • Telecommunications: 5G fronthaul/backhaul, DWDM networks
  • Data Centers: 400G QSFP-DD optical modules
  • Medical: Endoscopic imaging systems
  • Industrial: Optical proximity sensors
  • Aerospace: Fiber optic gyroscopes (FOG)

Case Study: 100G LR4 receiver modules in backbone networks enable 10km transmission with four 25G channels via wavelength division multiplexing.

6. Leading Manufacturers and Products

ManufacturerProduct SeriesKey Features
FinisarFTRx-100GC-band 100G coherent receiver
HamamatsuG12132-01Planar InGaAs APD array
LumentumOC5xx SeriesHigh-power photodiode modules
ThorlabsDET01CFCCompact fiber-coupled receiver

7. Selection Guidelines

Key considerations for component selection:

  • Match wavelength sensitivity to transmitter (850nm/1310nm/1550nm)
  • Ensure bandwidth exceeds system data rate by 20%
  • Select appropriate dynamic range for link budget
  • Evaluate temperature stability (-40 to +85 C operational range)
  • Consider form factor (TO-can, butterfly package, surface-mount)

Industry Trends Analysis

Future development shows:

  • Integration of photodetectors with CMOS circuits (SiPh)
  • Adoption of Bessel filters for 0.5THz+ bandwidth receivers
  • Cost reduction through silicon photonics mass production
  • Advancements in single-photon avalanche diodes (SPADs) for quantum communication
  • Miniaturization for pluggable modules (OSFP, QSFP-DD)

Market growth projections indicate 9.8% CAGR until 2027, driven by 5G and hyperscale data center expansions.

RFQ BOM Call Skype Email
Top