TLC393D
AI

## Overview of the TLC393D
The **TLC393D** is a dual micropower LinCMOS™ voltage comparator. It is designed to operate from a single supply and is widely used in battery-powered applications due to its extremely high input impedance and low power consumption.
---
### 1. Key Technical Specifications
| Feature | Specification |
| :--- | :--- |
| **Comparator Type** | Dual (Two independent channels) |
| **Technology** | LinCMOS™ (Low power, high input impedance) |
| **Supply Voltage ($V_{DD}$)** | 3V to 16V |
| **Supply Current** | Typical 40 $\mu$A (Total for both comparators) |
| **Input Impedance** | $10^{12}$ $\Omega$ |
| **Output Type** | Push-Pull (No pull-up resistor required) |
| **Package Type** | SOIC-8 (Surface Mount) |
---
### 2. Functional Description
#### High Input Impedance
Because it uses CMOS transistors at the input stage, the TLC393D draws almost zero current from the source ($5 \text{ pA}$ typical). This makes it ideal for sensing high-impedance signals without loading the circuit.
#### Push-Pull Output
Unlike common comparators like the LM393 (which has an open-collector output), the TLC393D features a **Push-Pull output**.
* **Advantage:** It can drive loads high or low directly without needing an external pull-up resistor.
* **Efficiency:** It reduces component count and saves board space.
#### Low Power Consumption
The "Micropower" designation means it is optimized for minimal current draw, extending battery life in portable electronics.
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### 3. Pin Configuration (SOIC-8)
| Pin Number | Symbol | Function |
| :--- | :--- | :--- |
| 1 | 1OUT | Output of Comparator 1 |
| 2 | 1IN- | Inverting Input of Comparator 1 |
| 3 | 1IN+ | Non-inverting Input of Comparator 1 |
| 4 | GND | Ground / Negative Supply |
| 5 | 2IN+ | Non-inverting Input of Comparator 2 |
| 6 | 2IN- | Inverting Input of Comparator 2 |
| 7 | 2OUT | Output of Comparator 2 |
| 8 | $V_{DD}$ | Positive Supply Voltage |
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### 4. Typical Applications
* **Battery Monitors:** Checking if a battery voltage has dropped below a specific threshold.
* **Zero-Crossing Detectors:** Identifying when an AC signal crosses 0V.
* **Level Shifters:** Converting logic signals between different voltage levels.
* **Oscillators:** Creating square wave generators with minimal power draw.
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### 5. Implementation Example (Basic Comparator)
```python
# Logic Table for TLC393D
# If IN+ > IN-, Output = High (VDD)
# If IN+ < IN-, Output = Low (GND)
```
To prevent "chatter" or noise oscillation when the inputs are nearly equal, it is recommended to add a small amount of **Hysteresis** using a feedback resistor.
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- ⤷
What is the main difference between TLC393 and the standard LM393?
- ⤷ How do I calculate the hysteresis resistors for the TLC393D?
- ⤷ Can the TLC393D be used with a dual (+/-) power supply?