GS8551-TR
200μV offset, 1.8MHz GBW, low-power precision op-amp with rail-to-rail I/O in SOT23-5
Product Overview
Description
The GS8551 combines precision DC performance with enhanced bandwidth for versatile signal conditioning applications.
With 1.8MHz gain bandwidth product and 200μV maximum offset voltage, it balances accuracy and speed requirements.
The 1.8V to 5.5V supply range and 45μA quiescent current make it ideal for portable and battery-powered systems.
Product Series
GS
Primary Application
Portable medical devices
Key Features
- Low 200μV maximum input offset voltage
- Rail-to-rail input and output operation
- Enhanced 1.8MHz gain bandwidth product
- Wide 1.8V to 5.5V supply voltage range
- Low 45μA quiescent current
- Available in multiple package options
Specifications
| Supply Voltage | 1.8V - 5.5V |
|---|---|
| GBW | 1.8MHz |
| Slew Rate | 1.2V/μs |
| Offset Voltage | 200μV (max) |
| Offset Drift | 2μV/°C |
| Quiescent Current | 45μA |
| Input Bias Current | 1pA |
| Noise Density | 25nV/√Hz |
| Package | SOT23-5, MSOP-8, SOP-8 |
Applications
Portable medical devices
Medical electronics
Battery-powered instrumentation
Battery and charging management
Active filter circuits
Electronic system design
Audio preamplification
Electronic system design
Sensor signal conditioning
Sensor signal conditioning
FAE Expert Insights
"The GS8551 hits a sweet spot for portable applications where you need reasonable bandwidth without sacrificing precision. I've recommended this part for numerous wearable medical device designs where the 1.8MHz GBW handles ECG and pulse oximetry signals while the 45μA current consumption preserves battery life. The 200μV offset is adequate for most biomedical applications, and the rail-to-rail output maximizes ADC dynamic range in single-supply systems. One tip: the 1.8V minimum supply is genuine - I've successfully used this part in single-cell lithium coin cell applications. The multiple package options (SOT23-5 for space-constrained designs, MSOP-8 for better thermal performance) provide flexibility across different product lines."
Excellent balance of bandwidth and power for portable applications
— Sarah Johnson, BeiLuo
Frequently Asked Questions
What makes GS8551 suitable for battery-powered applications?
The GS8551 excels in battery-powered designs due to several key characteristics. The ultra-low 45μA quiescent current per amplifier minimizes battery drain - a critical factor in portable devices. Wide 1.8V to 5.5V supply range accommodates various battery configurations from single-cell lithium (3.0-4.2V) to dual alkaline (1.8-3.0V). The rail-to-rail input/output maximizes signal dynamic range even as battery voltage declines, maintaining system performance throughout discharge cycle. Low 1pA input bias current enables high-impedance sensor interfaces without loading signal sources. The 1.8MHz bandwidth handles most sensor and audio signals while maintaining reasonable power consumption. For multi-channel designs, consider the dual GS8552 and quad GS8554 variants for even better channel density.
For battery-powered designs, calculate total system current including GS8551 quiescent current. Consider duty-cycling power for intermittent operation to extend battery life further.
How do I design active filters using GS8551?
The GS8551 is well-suited for active filter applications requiring moderate bandwidth and good DC precision. For low-pass filters, standard Sallen-Key or Multiple Feedback (MFB) topologies work well. The 1.8MHz GBW allows filter cutoff frequencies up to approximately 100kHz (following the gain-bandwidth rule of thumb: GBW should be 10-20x the cutoff frequency). For high-Q filters, the MFB topology provides better sensitivity to component variations. Use precision capacitors (NP0/C0G ceramic or film) for stable filter characteristics over temperature. The 200μV offset introduces minimal DC error in most filter configurations. For anti-aliasing filters before ADCs, target cutoff at Nyquist frequency with adequate stopband attenuation. The GS8551's low noise (25nV/√Hz) preserves signal integrity in sensitive applications.
Use our Active Filter Design Tool to calculate component values for your specific requirements. Contact FAE for assistance with high-order or high-Q filter designs.
What is the output drive capability of GS8551?
The GS8551 can source and sink approximately 20-30mA while maintaining output voltage within 200mV of the supply rails under light loads. Output drive capability decreases as the output approaches the supply rails - at mid-supply, drive current is maximum. For resistive loads, calculate output swing using the output impedance specification (typically 50-100Ω). For capacitive loads, follow the capacitive load driving guidelines with series isolation resistors. The short-circuit current is internally limited to protect the device, but sustained short-circuits should be avoided. For driving heavy loads or long cables, consider adding a buffer stage after the GS8551. Thermal considerations are minimal due to low power dissipation, but verify junction temperature remains within specification under worst-case conditions.
For loads exceeding GS8551 drive capability, add a dedicated buffer amplifier or transistor driver stage. Calculate power dissipation for continuous high-current operation.
Can I use GS8551 for audio applications?
The GS8551 can be used for low-power audio preamplification applications where high fidelity is not the primary requirement. The 1.8MHz GBW supports audio bandwidth (20Hz-20kHz) with adequate margin. However, the 25nV/√Hz voltage noise is higher than dedicated audio op-amps, potentially limiting dynamic range in sensitive microphone preamp applications. For line-level signals and moderate gain applications, the noise performance is acceptable. The rail-to-rail output maximizes headroom in low-voltage systems. Total Harmonic Distortion (THD) specifications should be reviewed for your specific application requirements. For professional audio or high-fidelity consumer applications, consider dedicated audio op-amps with lower noise specifications. The GS8551 is best suited for voiceband applications, intercom systems, and low-cost audio processing.
For voice and general audio preamplification, GS8551 provides adequate performance. For high-fidelity applications, evaluate noise and THD specifications against your requirements.
What is the phase margin and stability of GS8551?
The GS8551 is internally compensated for unity-gain stable operation with typical phase margin of 60-70 degrees. This ensures stable operation in voltage follower configurations and low-gain applications without external compensation. At higher closed-loop gains, phase margin improves, providing additional stability margin. The gain margin is typically 10-15dB, indicating good stability characteristics. For normal resistive feedback networks, no additional compensation is required. When driving capacitive loads, follow the capacitive load driving guidelines to maintain stability. The stability specifications are valid across the full temperature range and supply voltage range. For applications requiring fastest settling time, operate at gains of 10 or higher where bandwidth is reduced but stability margin is increased.
GS8551 is unity-gain stable for most applications. For capacitive loads or unusual feedback networks, verify stability with transient response testing.
How do I calculate the total error budget for GS8551 in my application?
To calculate total error budget, sum all error sources in root-sum-square (RSS) fashion. Primary error sources include: input offset voltage (200μV max), offset drift (2μV/°C × temperature range), CMRR error (input CM voltage / CMRR), PSRR error (supply variation / PSRR), gain error (resistor tolerance + open-loop gain effects), and noise (noise density × √(bandwidth × π/2)). For a typical sensor application with gain of 100, temperature range 25°C, and 1kHz bandwidth: offset contributes 20mV, drift contributes 5mV, CMRR contributes 1mV, PSRR contributes 0.5mV, gain error contributes 10mV (0.1% resistors), and noise contributes 2mV. RSS total is approximately 23mV at output. Systematic errors (offset, gain) can be calibrated; random errors (noise) cannot.
Use our Error Budget Calculator to analyze your specific application. Consider calibration for applications requiring highest accuracy.