사양
| 속성 | 가치 |
| Package / Case | Tape & Reel (TR),Cut Tape (CT) |
| Part Status | Active |
| Reference Type | Series |
| Output Type | Fixed |
| Voltage - Output (Min/Fixed) | 2.5V |
| Current - Output | 10 mA |
| Tolerance | ±0.5% |
| Temperature Coefficient | 75ppm/°C |
| Noise - 01 Hzto10 Hz | 21µVp-p |
| Noise - 10 Hzto10k Hz | 20µVrms |
| Voltage - Input | 4.4V ~ 33V |
| Supply Current | 95µA |
| Operating Temperature | -40°C ~ 125°C (TA) |
| Mounting Type | Surface Mount |
개요
Description
The MAX6035BAUR25+T is a high-precision, low-dropout voltage reference designed by Analog Devices under the Maxim Integrated brand. It provides a fixed output voltage of 2.5V with a tight initial accuracy and low temperature coefficient, making it ideal for precision applications. The device features low noise, low drift, and excellent long-term stability, ensuring consistent performance over a wide range of operating conditions.
Housed in a compact SOT-23 package, the MAX6035BAUR25+T is suitable for space-constrained applications. It operates over a wide input voltage range and offers low dropout performance, which is beneficial for battery-powered and portable devices. The device also has low supply current, enhancing energy efficiency.
Key features include an output voltage accuracy of ±0.2%, low quiescent current, and a wide operational temperature range. It is commonly used in applications such as data acquisition systems, instrumentation, and other precision electronics where a stable voltage reference is crucial. The "+T" in the part number indicates that it is provided in tape and reel packaging for automated assembly processes.
Housed in a compact SOT-23 package, the MAX6035BAUR25+T is suitable for space-constrained applications. It operates over a wide input voltage range and offers low dropout performance, which is beneficial for battery-powered and portable devices. The device also has low supply current, enhancing energy efficiency.
Key features include an output voltage accuracy of ±0.2%, low quiescent current, and a wide operational temperature range. It is commonly used in applications such as data acquisition systems, instrumentation, and other precision electronics where a stable voltage reference is crucial. The "+T" in the part number indicates that it is provided in tape and reel packaging for automated assembly processes.
Equivalent
The MAX6035BAUR25+T is a precision voltage reference IC providing a 2.5V output. Equivalent products include:
1. LT6655-2.5 from Analog Devices.
2. LM4040A25 from Texas Instruments.
3. ADR125 from Analog Devices.
4. REF192 from Analog Devices.
5. MCP1525 from Microchip Technology.
These alternatives offer similar functionality and performance, suitable for applications requiring stable voltage references. Always check specific datasheets to ensure compatibility with your design requirements.
1. LT6655-2.5 from Analog Devices.
2. LM4040A25 from Texas Instruments.
3. ADR125 from Analog Devices.
4. REF192 from Analog Devices.
5. MCP1525 from Microchip Technology.
These alternatives offer similar functionality and performance, suitable for applications requiring stable voltage references. Always check specific datasheets to ensure compatibility with your design requirements.
Features
The MAX6035BAUR25+T is a precision voltage reference component known for its high accuracy and low power consumption, typically used in applications requiring stable voltage outputs. Key features include:
1. Output Voltage: It provides a fixed output voltage of 2.5V.
2. Accuracy: Offers an initial accuracy of ±0.2%, ensuring precise voltage regulation.
3. Low Temperature Coefficient: Displays a low temperature coefficient of 30ppm/°C, which ensures stability across a range of operating temperatures.
4. Low Quiescent Current: Consumes minimal power with a quiescent current typically around 60µA, making it suitable for battery-powered devices.
5. Output Current: Capable of sourcing up to 10mA of output current.
6. Package Type: Available in a compact SOT-23 package, aiding in space-constrained designs.
7. Operating Temperature Range: Functions effectively over a temperature range of -40°C to +85°C.
8. Low Dropout Voltage: Features a low dropout voltage, enhancing its efficiency in regulated applications.
These features make the MAX6035BAUR25+T an ideal choice for precision measurement and control systems.
1. Output Voltage: It provides a fixed output voltage of 2.5V.
2. Accuracy: Offers an initial accuracy of ±0.2%, ensuring precise voltage regulation.
3. Low Temperature Coefficient: Displays a low temperature coefficient of 30ppm/°C, which ensures stability across a range of operating temperatures.
4. Low Quiescent Current: Consumes minimal power with a quiescent current typically around 60µA, making it suitable for battery-powered devices.
5. Output Current: Capable of sourcing up to 10mA of output current.
6. Package Type: Available in a compact SOT-23 package, aiding in space-constrained designs.
7. Operating Temperature Range: Functions effectively over a temperature range of -40°C to +85°C.
8. Low Dropout Voltage: Features a low dropout voltage, enhancing its efficiency in regulated applications.
These features make the MAX6035BAUR25+T an ideal choice for precision measurement and control systems.
Pinout
The MAX6035BAUR25+T is a precision voltage reference IC with a fixed output voltage. It is typically used in applications requiring a stable and precise voltage supply. The MAX6035 series comes in a small SOT23-3 package, which means it has 3 pins. The pin configuration is typically as follows:
1. VOUT: This is the output pin where the precision voltage reference (2.5V in the case of the MAX6035BAUR25+T) is available.
2. GND: This is the ground pin and serves as the reference point for the output voltage.
3. VIN: This is the input voltage pin where the supply voltage is applied.
The primary function of the MAX6035BAUR25+T is to provide a stable 2.5V reference voltage, which is often used as a reference in analog-to-digital converters (ADCs), digital-to-analog converters (DACs), and other precision measurement systems. Its small size and high precision make it suitable for portable and space-constrained applications.
1. VOUT: This is the output pin where the precision voltage reference (2.5V in the case of the MAX6035BAUR25+T) is available.
2. GND: This is the ground pin and serves as the reference point for the output voltage.
3. VIN: This is the input voltage pin where the supply voltage is applied.
The primary function of the MAX6035BAUR25+T is to provide a stable 2.5V reference voltage, which is often used as a reference in analog-to-digital converters (ADCs), digital-to-analog converters (DACs), and other precision measurement systems. Its small size and high precision make it suitable for portable and space-constrained applications.
Manufacturer
The MAX6035BAUR25+T is manufactured by Maxim Integrated, which is now part of Analog Devices, Inc. Analog Devices is a semiconductor company that specializes in the design and manufacturing of analog, mixed-signal, and digital signal processing integrated circuits. The company serves a wide range of industries, including automotive, communications, consumer electronics, healthcare, and industrial automation.
Application
The MAX6035BAUR25+T is a precision voltage reference designed for applications requiring stable and accurate voltage regulation. Key application areas include data acquisition systems, where precision voltage references are critical for accurate analog-to-digital conversion. It's also used in instrumentation and measurement equipment, such as digital multimeters and oscilloscopes, to ensure consistent and precise readings. Additionally, the MAX6035BAUR25+T is suitable for use in power supplies and battery-operated devices, where low power consumption and high accuracy are essential. Its small package size makes it ideal for space-constrained applications, such as portable medical devices and telecommunications equipment.
Package
The MAX6035BAUR25+T is packaged in a SOT-23, specifically a 3-pin SOT-23 package. This is a small outline, surface-mount package commonly used for semiconductor devices.