The AD9273BBCZ-25 is a state-of-the-art integrated circuit brought to you by Analog Devices Inc., a leader in high-performance analog, mixed-signal, and digital signal processing (DSP) integrated circuits. This particular model is designed to cater to a wide array of applications, including medical imaging, industrial, and instrumentation markets.
Key Features:
- High Performance: The AD9273 incorporates eight channels of a low noise preamplifier (LNA), a voltage-controlled attenuator, an anti-aliasing filter (AAF), and a 12-bit, 10 MSPS to 80 MSPS analog-to-digital converter (ADC) to provide a complete front-end solution for ultrasound receiver applications.
- Integrated Design: The integration of these components into a single chip not only saves space but also reduces power consumption and enhances overall system performance by minimizing inter-stage matching requirements and calibration needs.
- Customizable: With a programmable gain from 21.3 dB to 51.3 dB, the AD9273BBCZ-25 allows users to customize the dynamic range and sensitivity of their system to match specific application needs.
- Power Efficiency: The device operates on a 1.8 V supply voltage, with a typical power consumption of just 95 mW per channel, making it an energy-efficient option for portable and battery-powered applications.
- Flexibility: It offers a flexible SPI port for configuration, which simplifies integration into complex systems and allows for fine-tuning of various parameters such as gain, sampling phase, and offset correction.
Applications:
- Medical Ultrasound Imaging
- Industrial Nondestructive Testing (NDT)
- Instrumentation and Control Systems
Technical Specifications:
| Parameter |
Value |
| Resolution |
12-bit |
| Max Sample Rate |
80 MSPS |
| Number of Channels |
8 |
| Supply Voltage |
1.8 V |
| Package |
100-LFBGA |
The AD9273BBCZ-25 by Analog Devices Inc. is a testament to the company's commitment to providing innovative solutions that push the boundaries of performance, efficiency, and integration for the most demanding applications.