
Allicdata Part #: | 1127-2668-ND |
Manufacturer Part#: |
HMC773-SX |
Price: | $ 0.00 |
Product Category: | RF/IF and RFID |
Manufacturer: | Analog Devices Inc. |
Short Description: | IC MMIC MIXER DBL-BAL DIE DIE |
More Detail: | RF Mixer IC General Purpose Up/Down Converter 6GHz... |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | 0.00000 |
Series: | -- |
Packaging: | Bulk |
Part Status: | Obsolete |
RF Type: | General Purpose |
Frequency: | 6GHz ~ 26GHz |
Number of Mixers: | 1 |
Gain: | -- |
Noise Figure: | -- |
Secondary Attributes: | Up/Down Converter |
Current - Supply: | -- |
Voltage - Supply: | -- |
Package / Case: | Die |
Supplier Device Package: | Die |
Base Part Number: | HMC773 |
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RF mixers are a type of active electrical component which converts electrical signals in the form of input power to different output frequencies. Many essential applications for RF mixers involve the use of radio frequency (RF) signals for various types of communication. The HMC773-SX is a low-noise, high-output, ultra-wideband RF mixer which is designed to cover a broad frequency range between 4.4 to 8.5 GHz. This type of RF mixer has been developed for applications in communication systems such as cellular and wireless data transmission, satellite communication, spectrum sensing, and avionics.
The HMC773-SX delivers superior performance due to its low noise figure and high output, making it suitable for a wide variety of applications. The mixer is composed of a double-balanced mixer and an integrated gain block. It has a dynamic range of more than 10 dB and operates from both +15V and +3V power supplies. In addition, the RF output of the mixer has an impedance of 50 Ohms and a return loss of 15 dB.
The HMC773-SX offers a variety of advantages in various communication systems. Firstly, the RF output of this RF mixer has a broad frequency range, allowing for high-quality transmission over a large area. Secondly, the dynamic range and noise figure of the RF output are superior, making it suitable for high-speed and long-distance data transmission. Additionally, the integrated gain block and balanced mixer provide superior signal-to-noise ratio performance.
The working principle behind an RF mixer is relatively simple. RF mixers take two input signals, an RF signal and a local oscillator (LO) signal, and output two different signals. Generally, one of the output signals is the sum of the two input signals (sum frequency) and the other output signal is the difference of the two input signals (difference frequency). The RF output of the HMC773-SX operates on this principle.
The application field of the HMC773-SX is wide and varied. This RF mixer is ideal for applications such as cellular base station receivers, wireless data transmission, spectrum sensing, and avionics. Cellular base station receivers use RF mixers for cellular signal amplification, as well as interference detection and elimination. Wireless data transmission also utilizes the HMC773-SX due to its ultra-wideband RF output, low-noise figure, and superior dynamic range. In addition, it is used for spectrum sensing as it can detect and eliminate frequency interference. Lastly, avionics systems are also regularly utilizing the HMC773-SX due to its high-performance, low-noise, and wide dynamic range features.
In conclusion, the HMC773-SX is a low-noise, high-output, ultra-wideband RF mixer with superior performance characteristics. It is suitable for applications ranging from cellular base station receivers, wireless data transmission, spectrum sensing, and avionics. Its low-noise figure and wide dynamic range make it suitable for high-speed, long-distance RF signal transmission. The working principle behind the HMC773-SX is simple, involving the conversion of two input signals to different output frequencies.
Overall, the HMC773-SX offers superior performance compared to other RF mixers and is suitable for a wide variety of applications. It is a versatile mixer which can be used for long-distance data transmission, spectrum sensing, cellular signal amplification, and avionics.
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