Vendor: Caeleste Category: ADC

Rad Hard 12 bit ADC

Successive Approximation Register (SAR), interleaved 8-fold • Operating temperature 50 to 350 Kelvin • Radiation tolerant (TID > …

Overview

Successive Approximation Register (SAR), interleaved 8-fold
• Operating temperature 50 to 350 Kelvin
• Radiation tolerant (TID > 1Mrad, SEU/SEU > 62.2 LET)

Key features

  • Successive Approximation Register (SAR), interleaved 8-fold
  • 12 bit default nominal resolution
  • 14 bit and 16 bit resolution by in-ADC transparent oversampling, resulting in 12 and 13 ENOB
  • 0.7LSB noise, 0.7LSB DNL, 4LSB INL in nominal mode, @RT, BOL
  • Unsupervised calibration and code gap removal.
  • Accepts pseudo-differential, fully differential and single-ended signals
  • Input sample rate nominal 40 MHz
  • Analog supply 3.3V
  • Digital supply 1.8V
  • Differential (sub-)LVDS / CML output at 480 Mbps nominal rate

Applications

  • ADC for space applications/(image) sensors
  • ADC for cryogenic applications/(image) sensors
  • ADC for nuclear and hazardous environment inspection applications

What’s Included?

  • ceramic package or gds with datasheet
  • The evaluation kit available

Specifications

Identity

Part Number
CAE109 SARADC 8IL
Vendor
Caeleste
Type
Silicon IP

Analog

Resolution bits
12 Bit

Provider

HQ: Belgium

Learn more about ADC IP core

Uncertainty-Guided Live Measurement Sequencing for Fast SAR ADC Linearity Testing

This paper introduces a novel closed-loop testing methodology for efficient linearity testing of high-resolution Successive Approximation Register (SAR) Analog-to-Digital Converters (ADCs). Existing test strategies, including histogram-based approaches, sine wave testing, and model-driven reconstruction, often rely on dense data acquisition followed by offline post-processing, which increases overall test time and complexity.

Three ways of looking at a sigma-delta ADC device

The growing availability of digital ICs like microcontrollers, microprocessors, and field-programmable gate arrays (FPGAs) allows developers to use complex digital processing techniques rather than analog signal conditioning. For this reason, analog-to-digital converters (ADCs) have become a widely-used component in mixed-signal circuits.

Specifying a PLL Part 1: Calculating PLL Clock Spur Requirements from ADC or DAC SFDR

In high end RF systems, such as 5G radios, the requirements are so stringent that the source of this strongest unwanted tone can be the PLL. This article outlines how spurs in the input clock to the ADC or DAC may limit the SFDR. This in turn will set the requirements for the spurs for the input clock (from a PLL), in order to achieve a specific SFDR.

Save power in IoT SoCs by leveraging ADC characteristics

Power-sensitive applications such as Internet-of-Things (IoT) require a comprehensive power savings strategy within the system-on-chip (SoC). Techniques relying solely on the use of traditional power down modes and low supply voltage may not be enough to achieve the required power targets. The analog block is often assumed to be too sensitive and not compatible with aggressive power management techniques.

High Speed ADC Data Transfer

When continuously running a high speed ADC, it can be a challenge to deal with the firehose of raw data available at the output. To use City Semiconductor’s 2.5 GS/s 12-bit ADC, for example, 30 gigabits per second of data have to be accepted.

Frequently asked questions about ADC IP cores

What is Rad Hard 12 bit ADC?

Rad Hard 12 bit ADC is a ADC IP core from Caeleste listed on Semi IP Hub.

How should engineers evaluate this ADC?

Engineers should review the overview, key features, supported foundries and nodes, maturity, deliverables, and provider information before shortlisting this ADC IP.

Can this semiconductor IP be compared with similar products?

Yes. Buyers can compare this product with similar semiconductor IP cores or IP families based on category, provider, process options, and structured technical specifications.

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