Optical Sensors - Photodiodes

Image Part Number Description / PDF Quantity Rfq
PD100MF0MP1

PD100MF0MP1

Sharp Microelectronics

SENSOR PHOTODIODE 850NM 2SMD

0

PD101SC0SS0F

PD101SC0SS0F

Sharp Microelectronics

SENSOR PHOTODIODE 820NM RADIAL

0

PD100MF0MP

PD100MF0MP

Sharp Microelectronics

SENSOR PHOTODIODE 850NM SIDE

0

BS520E0F

BS520E0F

Sharp Microelectronics

SENSOR PHOTODIODE 560NM SIDE

0

PD481PI

PD481PI

Sharp Microelectronics

SENSOR PHOTODIODE 960NM SIDE

0

BS500A

BS500A

Sharp Microelectronics

SENSOR PHOTODIODE 850NM SIDE

0

BS500B

BS500B

Sharp Microelectronics

SENSOR PHOTODIODE 560NM SIDE

0

BS520

BS520

Sharp Microelectronics

SENSOR PHOTODIODE 560NM SIDE

0

PD481PIE000F

PD481PIE000F

Sharp Microelectronics

SENSOR PHOTODIODE 960NM RADIAL

0

BS500A0F

BS500A0F

Sharp Microelectronics

SENSOR PHOTODIODE 850NM SIDE

0

PD100MC0MP

PD100MC0MP

Sharp Microelectronics

SENSOR PHOTODIODE 820NM SIDE

0

BS120

BS120

Sharp Microelectronics

SENSOR PHOTODIODE 560NM SIDE

0

PD101SC0SS

PD101SC0SS

Sharp Microelectronics

SENSOR PHOTODIODE 820NM SIDE

0

BS120E0F

BS120E0F

Sharp Microelectronics

SENSOR PHOTODIODE 560NM SIDE

0

PD60T

PD60T

Sharp Microelectronics

SENSOR PHOTODIODE 940NM 1206

0

BS500B0F

BS500B0F

Sharp Microelectronics

SENSOR PHOTODIODE 560NM SIDE

0

PD413PI

PD413PI

Sharp Microelectronics

SENSOR PHOTODIODE 960NM SIDE

0

BS100C

BS100C

Sharp Microelectronics

SENSOR PHOTODIODE 560NM SIDE

0

BS100C0F

BS100C0F

Sharp Microelectronics

SENSOR PHOTODIODE 560NM SIDE

0

PD480PI

PD480PI

Sharp Microelectronics

SENSOR PHOTODIODE 950NM SIDE

0

Optical Sensors - Photodiodes

1. Overview

Photodiodes are semiconductor devices that convert optical signals into electrical currents. Operating under reverse bias voltage, they generate electron-hole pairs when exposed to light, enabling precise light intensity measurement. As critical components in optoelectronics, photodiodes enable applications ranging from industrial automation to medical diagnostics, offering advantages like fast response times, high reliability, and compatibility with digital systems.

2. Major Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
PIN PhotodiodeWide depletion region for high quantum efficiencyHigh-speed optical communication (e.g., 10Gbps fiber links)
Avalanche Photodiode (APD)Internal gain through impact ionizationLIDAR systems, single-photon detection
Schottky PhotodiodeLow capacitance for fast switchingUV radiation monitoring in semiconductor manufacturing
Metal-Semiconductor-Metal (MSM)Planar structure for high-frequency operationOptical interconnects in data centers
UV PhotodiodeSpectral sensitivity below 400nmFlame detection systems, water purification monitoring

3. Structure and Components

Photodiodes typically consist of a p-n junction or p-i-n structure fabricated from silicon, germanium, or indium gallium arsenide (InGaAs). The core components include: (1) Light-receiving window with anti-reflective coating, (2) Active semiconductor layer for photon absorption, (3) Electrodes (anode/cathode) for current collection, (4) Ceramic or plastic package with optical filter integration. Advanced designs incorporate micro-lenses and back-illuminated structures to enhance quantum efficiency.

4. Key Technical Specifications

ParameterDescriptionImportance
Responsivity (A/W)Current output per unit optical powerDetermines signal strength at given irradiance
Dark Current (nA)Leakage current without illuminationImpacts signal-to-noise ratio in low-light conditions
Rise Time (ns)Response speed to intensity changesCritical for high-frequency modulation applications
Junction Capacitance (pF)Parasitic capacitance at depletion regionLimits bandwidth in transimpedance amplifier circuits
Spectral Response Range (nm)Effective wavelength detection windowDictates compatibility with light sources (e.g., 850nm VCSELs)

5. Application Fields

  • Industrial Automation: Object detection in conveyor systems
  • Medical Imaging: X-ray detectors in CT scanners
  • Consumer Electronics: Proximity sensors in smartphones
  • Telecommunications: 100Gbps coherent optical receivers
  • Environmental Monitoring: Solar radiation sensors for weather stations

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
Hamamatsu PhotonicsS1223-6BQHigh-speed Si photodiode with 1.3GHz bandwidth
OSRAM OptoBFW21RBlue-enhanced PIN diode for LiDAR applications
First SensorFDS030Low-noise APD for single-photon counting
Excelitas TechnologiesC30655GHInGaAs photodiode for 1.55 m telecom wavelengths
Vishay SemiconductorsBPW34SHigh-radiation hardness for industrial sensors

7. Selection Recommendations

Key considerations include: (1) Spectral matching with light source (e.g., InGaAs for 1550nm fiber systems), (2) Response time requirements (PIN vs APD tradeoffs), (3) Operating temperature range (-40 C to +85 C industrial grade), (4) Packaging constraints (SMD vs through-hole), and (5) Cost vs performance optimization (e.g., APDs require bias voltage regulators).

Industry Trends

Current development focuses on: (1) Graphene-based photodiodes for THz imaging, (2) CMOS-integrated single-photon avalanche diodes (SPADs) for LiDAR, (3) Flexible organic photodiodes for wearable devices, (4) Quantum dot photodiodes for extended IR sensitivity, and (5) AI-driven smart sensors with on-chip signal processing. Market growth is projected at 7.2% CAGR through 2028, driven by 5G optical networks and autonomous vehicle sensing systems.

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