Allicdata Part #: | MAX3795ETG+-ND |
Manufacturer Part#: |
MAX3795ETG+ |
Price: | $ 9.91 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Maxim Integrated |
Short Description: | IC DRIVER VCSEL W/MON 24-TQFN |
More Detail: | Laser Driver IC 4.25Gbps 1 Channel 2.97 V ~ 3.63 V... |
DataSheet: | MAX3795ETG+ Datasheet/PDF |
Quantity: | 128 |
Lead Free Status / RoHS Status: | Lead free / RoHS Compliant |
Moisture Sensitivity Level (MSL): | 1 (Unlimited) |
1 +: | $ 9.00900 |
10 +: | $ 8.55855 |
25 +: | $ 7.05600 |
50 +: | $ 6.70320 |
250 +: | $ 6.49971 |
500 +: | $ 5.85962 |
Series: | -- |
Packaging: | Tube |
Lead Free Status / RoHS Status: | -- |
Part Status: | Active |
Moisture Sensitivity Level (MSL): | -- |
Type: | Laser Diode Driver |
Data Rate: | 4.25Gbps |
Number of Channels: | 1 |
Voltage - Supply: | 2.97 V ~ 3.63 V |
Current - Supply: | 71mA |
Current - Modulation: | 15mA |
Current - Bias: | 15mA |
Operating Temperature: | -40°C ~ 85°C |
Package / Case: | 24-WFQFN Exposed Pad |
Supplier Device Package: | 24-TQFN (4x4) |
Mounting Type: | Surface Mount |
Base Part Number: | MAX3795 |
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The MAX3795ETG+ is a multi-channel, high-performance trans-impedance amplifier (TIA) and laser driver integrated circuit. It is classified as a PMIC -Laser Driver, and is capable of delivering center wavelengths of 1.55 μm and 0.98 μm with ultra-high bandwidths. The use of this IC makes it possible to provide precise control over the optical output power of an optical system with very low power consumption.
The MAX3795ETG+ is capable of driving both continuous wave (CW) and short pulse (<1ns) operations. It has a maximum average output power for CW operation of up to 17 dBm per channel and up to 35 dBm for short pulse operation. The device has two independent channels and comes with integrated temperature compensation circuitry, enabling it to operate in temperatures ranging from -40°C to 85°C. It has excellent linearity and very low power consumption, making it ideal for applications such as: medical imaging systems, wireless communication networks, long-haul optical transmission systems, and other optical systems.
The main components of the MAX3795ETG+ are the transimpedance amplifier and the laser driver circuitry. The transimpedance amplifier is responsible for converting electrical input signals into optical output signals. It has an excellent gain linearity and very low power consumption, making it ideal for applications such as medical imaging systems, long-haul optical transmission systems, and other optical systems. The laser driver circuitry provides the necessary current to drive the laser diode. It has the ability to control the optical output power accurately and transport up to 0.98 μm or 1.55 μm optical signals with ultra-high bandwidths.
The transimpedance amplifier of the MAX3795ETG+ is designed to be used in combination with an avalanche photodetector, a photodiode, and a phototransistor for controlling the optical output power. The transimpedance amplifier is capable of providing highly linear gains over large input signal ranges and small input signals. The laser driver circuitry has the ability to precisely control the optical output power level through the use of advanced modulation techniques and precise temperature compensation techniques.
The advanced modulation techniques of the MAX3795ETG+ allow it to accurately and reliably control the laser output power even when there is high electrical noise or during very low input signal ranges. The precise temperature compensation eliminates the need for additional power supplies and allows the trans-impedance amplifier to operate at optimal performance over wider temperature ranges. This IC also has high bandwidths and low power consumption, making it ideal for applications such as fiber optic communication networks, medical imaging, and other optical systems.
In conclusion, the MAX3795ETG+ is a high-performance transimpedance amplifier (TIA) and laser driver IC and is classified as a PMIC - Laser Driver. It is capable of driving both continuous wave (CW) and short pulse (<1ns) operations with high linearity and low power consumption. The device has two independent channels, integrated temperature compensation circuitry, and advanced modulation and temperature compensation techniques. It can be used in combination with an avalanche photodetector, a photodiode, and a phototransistor to control the optical output power level of fiber optic communication networks, medical imaging systems, long-haul optical transmission systems, and other optical systems.
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