Thyristors - TRIACs

Image Part Number Description / PDF Quantity Rfq
Q4008L4

Q4008L4

Wickmann / Littelfuse

TRIAC 400V 8A TO220

0

Q2008LH4

Q2008LH4

Wickmann / Littelfuse

TRIAC ALTERNISTOR 200V 8A TO220

0

L4004F62

L4004F62

Wickmann / Littelfuse

TRIAC SENS GATE 400V 4A TO202

0

Q6016LH2

Q6016LH2

Wickmann / Littelfuse

TRIAC ALTERNISTOR 600V 16A TO220

0

Q4015L559

Q4015L559

Wickmann / Littelfuse

TRIAC 400V 15A TO220

0

Q8015L5

Q8015L5

Wickmann / Littelfuse

TRIAC 800V 15A TO220

0

Q2025R6

Q2025R6

Wickmann / Littelfuse

TRIAC ALTERNISTOR 200V 25A TO220

0

L2008L8

L2008L8

Wickmann / Littelfuse

TRIAC SENS GATE 200V 8A TO220

0

Q6008R567

Q6008R567

Wickmann / Littelfuse

TRIAC 600V 8A TO220

0

Q2004V4

Q2004V4

Wickmann / Littelfuse

TRIAC 200V 4A TO251

0

Q6015L6

Q6015L6

Wickmann / Littelfuse

TRIAC 600V 15A TO220

0

L0107MTRP4

L0107MTRP4

Wickmann / Littelfuse

TRIAC SENS GATE 600V 1A SOT223

0

Q6030LH5

Q6030LH5

Wickmann / Littelfuse

TRIAC ALTERNISTOR 600V 30A TO220

0

L4006V6

L4006V6

Wickmann / Littelfuse

TRIAC SENS GATE 400V 6A TO251

0

Q2008VH3TP

Q2008VH3TP

Wickmann / Littelfuse

TRIAC ALTERNISTOR 200V 8A TO251

0

L6004F32

L6004F32

Wickmann / Littelfuse

TRIAC SENS GATE 600V 4A TO202

0

Q2006L4

Q2006L4

Wickmann / Littelfuse

TRIAC 200V 6A TO220

0

Q4012RH2

Q4012RH2

Wickmann / Littelfuse

TRIAC ALTERNISTOR 400V 12A TO220

0

QK004V4

QK004V4

Wickmann / Littelfuse

TRIAC 1KV 4A TO251

0

L0103MTRP4

L0103MTRP4

Wickmann / Littelfuse

TRIAC SENS GATE 600V 1A SOT223

0

Thyristors - TRIACs

1. Overview

TRIAC (Triode for Alternating Current) is a three-terminal semiconductor device belonging to the thyristor family. It enables bidirectional current flow control in AC circuits through a single gate terminal. As a key component in power electronics, TRIACs are widely used for phase control, switching, and regulation of AC loads. Their ability to conduct current in both directions makes them ideal for applications requiring full-wave control, such as dimmers and motor speed regulators.

2. Main Types and Functional Classification

Type Functional Characteristics Application Examples
Standard TRIAC General-purpose with moderate gate sensitivity Light dimmers, heater controls
Sensitive Gate TRIAC Low gate trigger current ( 5mA) Microcontroller-driven circuits
Logic Level TRIAC Compatible with 3.3V/5V logic signals Smart home automation systems
High dv/dt TRIAC Enhanced immunity to voltage spikes Industrial motor drives

3. Structure and Composition

TRIACs feature a four-layer (PNPN) silicon structure with three electrodes: Main Terminal 1 (MT1), Main Terminal 2 (MT2), and Gate (G). The symmetrical design allows bidirectional conduction. Modern TRIACs incorporate:

  • Dielectric passivation layers for voltage stability
  • Aluminum gate metallization
  • Epitaxial silicon wafers with precise doping profiles
  • Plastic encapsulation (TO-220/TO-92 packages)

4. Key Technical Parameters

Parameter Description Typical Range
Breakover Voltage (VBO) Minimum voltage to initiate conduction 200-1200V
Gate Trigger Current (IGT) Required gate current for turn-on 5-50mA
Holding Current (IH) Minimum current to maintain conduction 5-50mA
RMS On-State Current (IT(RMS)) Continuous load current capacity 0.5-50A
dv/dt Rating Voltage change immunity 10-50V/ s

5. Application Fields

  • Consumer Electronics: Smart lighting systems, washing machine water level controls
  • Industrial Automation: AC motor speed controllers, solid-state relays
  • Power Systems: Voltage regulators, reactive power compensators
  • Automotive: Electric vehicle charging circuits, HVAC controls
  • Renewable Energy: Solar inverter AC switching circuits

6. Leading Manufacturers and Products

Manufacturer Representative Product Key Parameters
STMicroelectronics BT136-600E 600V, 4A, 10mA IGT
ON Semiconductor Q6015LH 600V, 15A, 15mA IGT
Infineon Technologies BTA16-600B 600V, 16A, 50mA IGT
Microsemi MAC97A8 600V, 8A, 5mA IGT

7. Selection Guidelines

  1. Verify VBO exceeds maximum circuit voltage by 20%
  2. IT(RMS) should be 1.5 load current
  3. Match IGT with driver circuit capability
  4. Consider heatsinking requirements
  5. Select dv/dt rating based on load inductance
  6. Use zero-crossing detection for EMI-sensitive applications

8. Industry Trends

Key development trends include:

  • Integration with SiC/GaN for higher efficiency
  • Smart packaging with built-in temperature sensors
  • Miniaturization for space-constrained applications
  • Improved immunity to electromagnetic interference
  • AI-driven predictive maintenance in industrial systems

Market growth is driven by smart grid implementations and EV charging infrastructure expansion, with a projected CAGR of 6.8% through 2030.

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