The LT1018 is a general-purpose micropower dual comparator designed for low-power and high-performance applications. It is part of the LT1017/LT1018 series, with the LT1018 optimized for higher speed and slightly higher power consumption compared to the LT1017. The device operates over a wide voltage range, from a single 1.1V cell up to 40V, making it suitable for battery-powered and high-voltage applications. The output stage incorporates a class "B" pull-up current source, eliminating the need for an external resistive pull-up, which reduces power dissipation and simplifies circuit design.
The LT1018 exhibits the following key electrical specifications under typical operating conditions (unless otherwise noted):
The LT1018 is available in multiple package options to suit different application requirements:
The LT1018 is a versatile dual comparator designed for applications requiring low power consumption and high performance. Its wide supply voltage range allows it to be used in systems powered by single-cell batteries or higher-voltage industrial supplies. The integrated class "B" output stage simplifies design by eliminating the need for external pull-up resistors, while also improving power efficiency.
The device features low input bias current and offset voltage, ensuring accurate comparisons in precision circuits. The dual-comparator configuration provides flexibility for designs requiring multiple comparison functions, such as window detectors or level shifters. The robust construction ensures reliable operation across a wide temperature range, making it suitable for industrial and automotive applications.
A common application for the LT1018 is a voltage monitor circuit. Below is a simplified example:
The LT1018 micropower dual comparator is a highly flexible and efficient component suitable for a wide range of applications, from portable electronics to industrial systems. Its combination of low power consumption, wide voltage range, and integrated features makes it an excellent choice for designers seeking reliable performance in space- and power-constrained environments.