Allicdata Part #: | 296-40599-2-ND |
Manufacturer Part#: |
TLV1701AIDBVR |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Texas Instruments |
Short Description: | IC COMPARATOR SNGL 5SOT23 |
More Detail: | Comparator General Purpose Open Collector SOT-23-5 |
DataSheet: | TLV1701AIDBVR Datasheet/PDF |
Quantity: | 36000 |
Lead Free Status / RoHS Status: | Lead free / RoHS Compliant |
Moisture Sensitivity Level (MSL): | 2 (1 Year) |
Series: | -- |
Packaging: | Tape & Reel (TR) |
Lead Free Status / RoHS Status: | -- |
Part Status: | Active |
Moisture Sensitivity Level (MSL): | -- |
Type: | General Purpose |
Number of Elements: | 1 |
Output Type: | Open Collector |
Voltage - Supply, Single/Dual (±): | 2.2 V ~ 36 V, ±1.1 V ~ 18 V |
Voltage - Input Offset (Max): | 3.5mV |
Current - Input Bias (Max): | 15nA |
Current - Output (Typ): | 20mA |
Current - Quiescent (Max): | 75µA |
CMRR, PSRR (Typ): | -- |
Propagation Delay (Max): | 560ns |
Hysteresis: | -- |
Operating Temperature: | -40°C ~ 125°C |
Package / Case: | SC-74A, SOT-753 |
Mounting Type: | Surface Mount |
Supplier Device Package: | SOT-23-5 |
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Linear Comparators are circuits whose primary function is to evaluate the comparison between two voltage signals. The TLV1701AIDBVR is an example of this type of component. Its applications in various areas are numerous, and understanding its working principles and uses can help provide an understanding of why this component is so popular.
The TLV1701AIDBVRcomparator is an integrated circuit that compares two input voltages. This component has two voltage inputs (IN1 and IN2) and two complementary outputs (OUT1 and OUT2). It is a linear comparator, which means that when the voltage at IN1 is less than the voltage at IN2, OUT1 will be HIGH and OUT2 will be LOW, and vice versa. Alternatively, the component can be configured for bistable operation using the onboard latch pin (LD).
The TLV1701AIDBVR is primarily used in applications where a linear comparison between two voltage signals is necessary. Examples of these applications may include waveform-shaping, signal discrimination, and signal generation circuits. In waveform-shaping applications, the comparator can be used to compare the input waveform to a reference voltage and output a series of pulses. Similarly, in signal discrimination circuits, the comparator can be used to distinguish between two waveforms of differing values. Aside from waveform-shaping and signal discrimination, the TLV1701AIDBVR can be used as a simple signal generator, as it outputs two complementary waveforms at precisely the same voltage level as the two input signals.
In addition to its flexibility in waveform-shaping, signal discrimination, and signal generation, the TLV1701AIDBVR also benefits from having low power consumption. The comparator can operate at very low supply voltages, typically from 2.5V to 5.5V, meaning it’s suitable for use in battery-operated applications. Furthermore, the component requires a very low input current, typically in the range of 700 nA, meaning it can be used in battery-powered applications with limited current consumption.
In terms of performance, the TLV1701AIDBVR can provide responses with a typical propagation delay of 14 ns and output rise/fall times of 10 ns. This makes it suitable for fast edge-detection and pulse-width modulation (PWM) applications. Furthermore, this component is also capable of rejecting common-mode noise up to 200mV (peak-to-peak), meaning it can be used in applications where a high level of noise reduction is required.
Finally, the TLV1701AIDBVR can also be configured in a more advanced configuration, the ‘added latch’ mode. Enabling this mode allows for an increased level of processing speed to be achieved, as this mode overcomes the phenomenon known as ‘race condition’. Activating added latch mode also allows for a simpler user interface, as the only control is required is the latched pin (LD).
Overall, the TLV1701AIDBVR is a linear comparator with a wide range of applications. Its features allow it to be used in numerous waveform-shaping, signal discrimination, and signal generation tasks, as well as providing increased system performance in advanced configurations, such as the ‘added latch’ mode. Low power consumption and good noise-rejection capabilities ensure it will remain a popular choice amongst designers in a myriad of applications.
The specific data is subject to PDF, and the above content is for reference
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