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GaN
Gallium Nitride is a stable wide bandgap semiconductor material. AKA: Gallium Nitride
See Also: LED, Transistor
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Ultra Broadband SSPA
Exodus Advanced Communications
Exodus Chip & Wire Hybrid ultra broadband amplifiers feature GaN, GaAsFET discrete die on ceramic substrate covering frequency ranges from 4GHz to 26.5GHz and power levels exceeding 500W.
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MPI Sorter Series
MPI’s Sorter Series are improving production efficiency and yields for market sectors related to LED chip, package production, discrete device handling, and IC substrate manufacturing. Deploying MPI’s Pick & Place technology, the Sorter Line offers dedicated sorting and defect inspection solutions particularly suited for GaN, GaAs, Vertical LED Chip, Flip Chip, and Laser Diode applications. With a proven heritage of and market-advanced technologies, MPI offers competitive and differentiated solutions that are scalable and cost-effective.
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Pulsed SSPA
Exodus Advanced Communications
Exodus Pulse SSPA products feature LDMOS and GaN discrete and Chip & Wire technologies covering frequency ranges from 1MHz to 12GHz at power levels exceeding 1KW for Modules and 10KW for Systems.
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GaN substrates
Sumitomo Electric Industries, Ltd.
Gallium Nitride (GaN) substrates are widely used for optical devices in the blue-violate to green ranges due to their excellent material characteristics. In recent years, GaN substrates have been drawing attention for power devices. Many development projects are underway.
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500 MHz 60 V Common Mode Differential Probe
DL05-HCM
60 V of common mode and 80 V differential input range with 1 GHz of bandwidth, make these probes ideal for lower voltage GaN power conversion measurements. The 60 V of common mode is well suited for handling any float of the battery and bulk/absorption voltage during charging, while the 80 V differential input range provide margin for any overshoot.
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Space Power Solutions
Teledyne e2v HiRel Electronics (HiRel) offers leading edge power solutions dedicated for high-reliability applications. The introduction of Galium Nitride (GaN) technology solutions enable high power density designs with four times less space requirements than traditional MOSFETs. The Teledyne HiRel Point-of-Load (POL) products combine multiple load capabilities, outstanding radiation performance with high levels of integration and easy to use features.
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DL-ISO 200 Vpp MMCX Tip
DL-ISO-200V-TIP
- Ideal for GaN and SiC devices- Highest system accuracy- Fastest rise time- High CMRR - 160 dB
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RF High Power Amplifier Modules
Analog Devices MMIC-based GaN and GaAs power amplifiers cover the low hundred MHz frequency range up through and including components in the Ka-band (29 GHz to 31 GHz). Our portfolio also includes GaN-based power amplifier modules with output power exceeding 8 kW. Designed for excellent linearity at high output power, our power amplifiers maintain good heat dissipation and high reliability at elevated temperatures for the wide variety of test, radar, and aerospace and defense applications that they are used in.
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Dynamic Test Systems
H3TRB | HTGB (HTGS) | RTGB (RTGS)
Durability and reliability of wide-bandgap materials such as SiC and GaN are an important topic. The focus here is on new failure mechanisms whose effects are not visible with traditional H(3)TRB/HTGS – but which nevertheless have an influence on the real application.
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Solid State Power Amplifiers
Skylink SSPAs incorporate state-of-art DPD and well-done Heat Dissipation technologies with available LDMOS, GaN & GaAs Chips. Solutions of SSPA frequency range from 9kHz to 50GHz and output power up to kilowatts and includes basic PA modules to integrated chassis with embedded software for local and remote control and monitoring.
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RF Amplifiers up to 2500 MHz
L and S Band 1,2,4, and 8 Kilowatt rack mount solid state microwave amplifiers ideal for CW and pulse TWT amplifier replacement utilizing GaN technology and rivals the TWT amplifier in size and weight. Also available is our broad line of high power modules including 25, 50, and 100 watt pallets for integrating into your own power amplifier design.
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Narrow band & Linear SSPA
Exodus Advanced Communications
Exodus Narrowband CW and Linearized SSPA products feature LDMOS, GaN,GaAsFET discrete and Chip & Wire Hybrid technologies covering frequency ranges from 1MHz to 26.5GHz at power levels exceeding 1KW for Modules and 10KW for Systems
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High Voltage Optically Isolated Probe, 1 GHz Bandwidth. Includes soft-carrying case.
DL10-ISO
The DL-ISO enables highest confidence in GaN and SiC device characterization with highest accuracy, best signal fidelity, and comprehensive connectivity.
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Osram High Power Blue Violet Laser Diodes (450-488nm)
The Optoelectronics Company Ltd
OSRAM Opto Semiconductors is a key player in the field of visible InGaN (Indium Gallium Nitride) lasers. OSRAM Opto Semiconductors offer leading product performance and innovative packaging. Thanks to their excellent beam quality, OSRAM laser diodes are ideally suited for the optical imaging of light. Not only that, but their small package size is particularly beneficial to highly compact systems, such as pico projectors. OSRAM laser diodes offer high efficiency and long lifetime: due to their excellent efficiency (ratio of light produced compared to electric power consumed), the temperature increase experienced by blue InGaN lasers during operation is kept to an absolute minimum, allowing them to deliver a long life – up to 10,000 hours at 40 °C.
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DL-ISO 40 Vpp MMCX Tip
DL-ISO-40V-TIP
- Ideal for GaN and SiC devices- Highest system accuracy- Fastest rise time- High CMRR - 160 dB
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Amplifiers
We have designed and manufactured amplifiers using all major semiconductor materials, LDMOS, GaN, GaAs, and InP, to produce narrow, wideband, and pulse, receive and transmit amplifiers from 1 MHz to 220 GHz and power levels from mW to over 10 kW.
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Radio Frequency (RF) And Microwave Products
Enable your 5G, aerospace, defense, test and measurement or industrial RF wireless applications with our portfolio of RF and microwave devices. These include high reliability RF diodes, Gallium Nitride (GaN) and Gallium Arsenide (GaAs) Monolithic Microwave Integrated Circuit (MMIC) amplifiers, frequency translation and power transistor devices, switches, attenuators, varactors, filters and more.
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Amplifiers
We have designed and manufactured amplifiers using all major semiconductor materials, LDMOS, GaN, GaAs, and InP, to produce narrow, wideband, and pulse, receive and transmit amplifiers from 1 MHz to 220 GHz and power levels from mW to over 10 kW.
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1 GHz 60 V Common Mode Differential Probe
DL10-HCM
60 V of common mode and 80 V differential input range with 1 GHz of bandwidth, make these probes ideal for lower voltage GaN power conversion measurements. The 60 V of common mode is well suited for handling any float of the battery and bulk/absorption voltage during charging, while the 80 V differential input range provide margin for any overshoot.
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DL-ISO 10 Vpp MMCX Tip
DL-ISO-10V-TIP
- Ideal for GaN and SiC devices- Highest system accuracy- Fastest rise time- High CMRR - 160 dB
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RF Devices that deliver Comprehensive Solutions for Wireless Systems
Sumitomo Electric Industries, Ltd.
GaN HEMTs, GaAs FETs , MMICs, and low-noise HEMT solutions offer high performance and uncompromised reliability for radar, base stations, SATCOM, point to point, and space applications.
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Broadband High Power Amplifiers
Chengdu KeyLink Microwave Technology Co., Ltd.
KeyLink's broadband high power amplifiers are available for operating frequencies from 1 MHz to 18 GHz. Power levels for octave and multi-octave designs range from 2 watts to over 500 watts. Based on state-of-the-art GaN, GaAs, LDMOS power devices and MMICs, KeyLink designs and manufactures SSPA(solid state power amplifiers ) with excellent performance in terms of high efficiency over ultra-wide working band, high reliability and ruggedness.
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Rad Hard GaN FETs
Wide band gap semiconductor technologies such as Gallim Nitride Field Effect Transistors (GaN FETs) have been gaining interest for power management and conversion in space applications. These devices feature higher breakdown voltage, lower RDS(ON) and very low gate charge enabling power management systems to operate at higher switching frequencies while still achieving higher efficiency and a smaller solution footprint. There is an additional benefit from GaN devices that make them attractive to the space market. These devices are inherently immune to total ionizing dose radiation.
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High Voltage Fiber Optic Probe, 150 MHz Bandwidth
HVFO108
- Ideal for GaN and SiC devices- Highest system accuracy- Fastest rise time- High CMRR - 160 dB
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RF Amplifiers up to 6000 MHz
Includes RF and microwave amplifiers covering the band from 500Mhz to 6000Mhz in a single module with either GaN or GaAs devices. Custom and standard power amplifiers available with high linearity, low noise figure, and very low error vector magnitude (EVM). Our rack systems and select modules include Automatic Gain Control (AGC), Automatic Level Control (ALC), and peak/pulse/average detection useful in OTA, MIMO, and CTIA testing.
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DL-ISO 1000 Vpp Square Pin Tip
DL-ISO-1000V-TIP
- Ideal for GaN and SiC devices- Highest system accuracy- Fastest rise time- High CMRR - 160 dB
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Communications/Data Link Amplifiers
Amplifiers specific to the Communications systems include a wide range of Solid State Power Amplifiers (SSPAs) and Low Noise Amplifiers (LNAs) originally from Paradise Datacom and a range of organically developed products within TMS. Satcom SSPAs are considered a core competence of Paradise Datacom's product line who have invested heavily in converting it's complete amplifier offering from GaAs to GaN from C-Band all the way to Ka-Band.
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High Voltage Switching Test System
The advanced development of new technologies, such as SiC and GaN, have opened the opportunity for more efficient and higher voltage/power performance in switching and power management circuits. Their high cutoff frequencies, low on-state resistance, and very high breakdown voltages can increase power supply power handling densities approaching hundreds of watts/inch. Reliability of these new technologies and techniques is critical for realizing practical applications. While Silicon devices have a rich history of proven reliability, these newer compound semiconductor technologies are too new to have a reliability history and have not been well proven. Further, process variations, even in well-controlled lines, yield widely varying results. This has driven the need for additional testing and to burn-in devices prior to delivery.