Transistors - FETs, MOSFETs - RF

Image Part Number Description / PDF Quantity Rfq
PXAE1837078NB-V1-R0

PXAE1837078NB-V1-R0

Wolfspeed - a Cree company

SI LDMOS AMP 300W 1805-1880MHZ

0

PXAC241002FC-V1-R2

PXAC241002FC-V1-R2

Wolfspeed - a Cree company

RF FET LDMOS

0

GTVA126001EC-V1

GTVA126001EC-V1

Wolfspeed - a Cree company

600W, GAN HEMT, 50V, 1.2-1.4GHZ

0

PTFC262157SH-V1-R250

PTFC262157SH-V1-R250

Wolfspeed - a Cree company

IC AMP RF LDMOS

0

PTRA093302FC-V1-R2

PTRA093302FC-V1-R2

Wolfspeed - a Cree company

IC RF FET LDMOS 330W H-37248-4

0

PXAE263708NB-V1-R2

PXAE263708NB-V1-R2

Wolfspeed - a Cree company

SI LDMOS AMP 370W 2496-2690MHZ

0

CGH21120F

CGH21120F

Wolfspeed - a Cree company

120W, GAN HEMT, 28V, 1.8-2.1GHZ,

0

GTVA107001EC-V1-R250

GTVA107001EC-V1-R250

Wolfspeed - a Cree company

700W, GAN HEMT, 50V, 0.9-1.2GHZ,

0

CGH40120P

CGH40120P

Wolfspeed - a Cree company

120W, GAN HEMT, 28V, DC-3.0GHZ,

0

PXFC192207NF-V1-R500

PXFC192207NF-V1-R500

Wolfspeed - a Cree company

IC AMP RF LDMOS

0

CGHV35150P

CGHV35150P

Wolfspeed - a Cree company

150W, GAN HEMT, 50V, 2.9-3.5GHZ,

0

CGHV96130F-AMP

CGHV96130F-AMP

Wolfspeed - a Cree company

8.4-9.6GHZ, AMP W/ CGHV96100F2

0

GTVA101K42EV-V1-R0

GTVA101K42EV-V1-R0

Wolfspeed - a Cree company

GAN HEMT 50V 1400W 0.96-1.4GHZ

0

CGHV40180P

CGHV40180P

Wolfspeed - a Cree company

180W, GAN HEMT, 50V, DC-4.0GHZ,

0

PTFB241402F-V1-R250

PTFB241402F-V1-R250

Wolfspeed - a Cree company

IC AMP RF LDMOS

0

PXAC210552FC-V1-R0

PXAC210552FC-V1-R0

Wolfspeed - a Cree company

RF MOSFET TRANSISTORS

0

PTFC260202FC-V1-R250

PTFC260202FC-V1-R250

Wolfspeed - a Cree company

IC AMP RF LDMOS

0

PTVA120121M-V1-R1K

PTVA120121M-V1-R1K

Wolfspeed - a Cree company

RF MOSFET LDMOS 48V PG-SON-10

0

CG2H40010P

CG2H40010P

Wolfspeed - a Cree company

10W, GAN HEMT, 28V, DC-4.0GHZ, P

0

PXFE211507FC-V1-R2

PXFE211507FC-V1-R2

Wolfspeed - a Cree company

150W, SI LDMOS, 28V, 2110-2170MH

0

Transistors - FETs, MOSFETs - RF

1. Overview

RF FETs and MOSFETs are critical semiconductor devices designed for high-frequency signal amplification and switching in radio frequency (RF) applications. These transistors operate efficiently in microwave and RF circuits, enabling wireless communication, radar systems, and broadcasting equipment. Their ability to handle high frequencies (typically above 1 MHz) with minimal noise and distortion makes them indispensable in modern telecommunications infrastructure.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Junction FET (JFET)Voltage-controlled device with low noise and high input impedanceLow-noise amplifiers in RF receivers
MESFETMetal-Semiconductor FET with GaAs substrate for high-speed operationSatellite communication systems
HEMT/PHEMTHigh-electron-mobility transistor with pseudomorphic structures5G base stations, microwave amplifiers
LDMOSLateral Diffused MOSFET with high power density and thermal stabilityCellular base station amplifiers
GaN HEMTGallium Nitride-based HEMT for ultra-high frequency/powerRadar systems, 5G mmWave

3. Structure and Composition

RF FETs typically feature a three-terminal structure (source, gate, drain) with a semiconductor channel (Si, GaAs, or GaN). The gate region uses Schottky contacts (MESFET) or insulated layers (MOSFET). Advanced devices like HEMTs employ heterojunctions between different semiconductor materials (e.g., AlGaN/GaN) to enhance electron mobility. Packaging includes ceramic or plastic enclosures with RF-compatible connectors to minimize parasitic capacitance and inductance.

4. Key Technical Specifications

ParameterDescriptionImportance
Frequency RangeOperational bandwidth (e.g., 0.1-6 GHz)Determines application suitability
Power Output (P1dB)1dB compression point (e.g., 10-500W)Measures linearity and saturation
Gain (S21)Signal amplification ratio (e.g., 10-30 dB)System sensitivity indicator
Efficiency (PAE)Power-added efficiency (e.g., 40-75%)Energy consumption metric
Input/Output VSWRVoltage Standing Wave Ratio (e.g., <2:1)Mismatch loss assessment

5. Application Fields

  • Telecommunications: 5G/4G base stations, small cells, fiber-optic networks
  • Defense: Radar systems, electronic warfare, UAV communication
  • Broadcasting: FM/TV transmitters, satellite uplinks
  • Medical: MRI machines, RF ablation equipment
  • Industrial: Plasma generators, RFID readers

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Specifications
NXP SemiconductorsMRF1K50GN50W GaN HEMT, 1.8-2.7GHz, 70% PAE
Wolfspeed (Cree)CGH4G090400F400W GaN HEMT, 900MHz, 10:1 VSWR ruggedness
InfineonBLS14H10LS-250250W LDMOS, 1.8-2.2GHz, 14dB gain
MACOMNPT1007SiGe HBT, 7GHz, 18dB gain for 5G

7. Selection Recommendations

  1. Match operating frequency to device transition frequency (fT)
  2. Verify power handling with derating curves under working temperatures
  3. Assess package thermal resistance (Rth) for longevity
  4. Compare S-parameters for impedance matching requirements
  5. Consider ESD protection and ruggedness for field conditions

8. Industry Trends

Key trends include: - Wide bandgap materials (GaN/SiC) enabling higher efficiency (>80%) at mmWave frequencies - 3D packaging for reduced parasitics in 5G massive MIMO systems - Integrated RF frontend modules (FEM) with on-chip matching networks - AI-driven design optimization for complex impedance matching - Growing adoption of GaN-on-diamond substrates for thermal management

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