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HomeProductsIntegrated Circuits (ICs)Specialized ICsOP467ARC/883
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OP467ARC/883 - ADI (Analog Devices, Inc.)

Manufacturer Part Number
OP467ARC/883
Manufacturer
Analog Devices, Inc.
Allelco Part Number
32D-OP467ARC/883
Warranty
1 Year Allelco Warranty - Find out more
Stock Status:
16,060 pcs available, New & Original
Parts Description
DAC91001
Data sheet
-
Category
Integrated Circuits (ICs) > Specialized ICs
RoHs Status
Our certification
In stock: 16060

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Specifications

OP467ARC/883 Tech Specifications
ADI (Analog Devices, Inc.) - OP467ARC/883 technical specifications, attributes, parameters and parts with similar specifications to ADI (Analog Devices, Inc.) - OP467ARC/883

Product Attribute Attribute Value
Part Number OP467ARC/883
Package DAC91001
Description DAC91001
Stock Condition Get 16060 pcs available quantity at Allelco
Payment PayPal / TT / Credit Card / Western Union
Allelco Certifications ESD / ISO 9001 / ISO 13485 / ISO 28000
Product Attribute Attribute Value
Manufacturer Analog Devices, Inc.
RoHs Status -
Warranty 100% Perfect Functions
Transport port Hong Kong
Shipping by DHL / FedEx / UPS / TNT / SF Express
RFQ Email info@allelco.com

Frequently Asked Questions(FAQ)

What is the operating temperature range for the OP467ARC/883 and how does it impact reliability in aerospace-grade systems?
The OP467ARC/883 is specified to operate over a junction temperature range from -55°C to +125°C, making it suitable for high-reliability military and space applications. This wide thermal envelope ensures stable performance under extreme environmental conditions commonly encountered in avionics and satellite systems. The extended temperature rating reflects rigorous screening during manufacture, aligning with MIL-PRF-38535 Class S qualification standards. Engineers must ensure proper thermal management at the system level to prevent exceeding maximum power dissipation limits, especially when mounted on ceramic substrates in CLCC packages.
How does the OP467ARC/883 compare to the OP467UA/883 in terms of input offset voltage drift and long-term stability?
While both variants are 883B qualified for military applications, the OP467ARC/883 typically exhibits lower initial input offset voltage (max 500 µV) compared to the OP467UA/883 (max 1 mV), due to tighter process control during production. More significantly, the ARC version demonstrates superior drift characteristics—typically below 2 µV/°C—versus approximately 4 µV/°C for the UA variant. This difference becomes critical in precision instrumentation where thermal gradients induce measurement errors over time. The choice between them depends on whether the design prioritizes initial accuracy or drift over temperature cycles.
Can the OP467ARC/883 be used in single-supply 5V systems without modification?
Yes, the OP467ARC/883 supports single-supply operation down to 3.5V, but careful attention must be paid to common-mode input range and output swing limitations. In 5V systems, the device can accept inputs as low as -0.2V and outputs swing within 50 mV of either supply rail when driving resistive loads above 10 kΩ. However, capacitive loading greater than 20 pF may degrade phase margin, potentially causing instability in feedback configurations. For best results, maintain load impedance above 5 kΩ and avoid capacitive loads unless compensated with series resistance.
What is the recommended compensation network for the OP467ARC/883 when used as a unity-gain buffer with capacitive sensor loads?
When buffering capacitive loads above 100 pF, a series resistor of 10 Ω to 100 Ω should be inserted between the op-amp output and the capacitor to prevent oscillation. The OP467ARC/883 has an internal compensation sufficient for most applications, but external isolation resistors improve stability by reducing effective output capacitance seen by the amplifier. For loads up to 1 nF, start with a 50 Ω series resistor; verify phase margin using a network analyzer if closed-loop gain exceeds unity. Avoid placing PCB traces longer than 10 mm directly connected to the output pin to minimize parasitic inductance.
How does package choice affect the OP467ARC/883’s performance in high-vibration environments?
Although the OP467ARC/883 is available in SOT23-6 packaging, its actual hermetic sealing occurs in a CLCC (Ceramic Leadless Chip Carrier) configuration per military specifications. The CLCC package provides superior mechanical robustness against vibration and shock compared to plastic alternatives, with leadframe-free construction that eliminates solder joint fatigue risks. Thermal cycling tests show less than 5% degradation in parametric performance after 1000 cycles between -55°C and +125°C when properly soldered to a matching ceramic substrate. Ensure conformal coating is applied if exposed to moisture in harsh environments.
What is the typical settling time for the OP467ARC/883 in a 12-bit DAC driver application with ±1 V output swing?
With a gain of 1 and 2-V peak-to-peak output swing into a 1 kΩ load, the OP467ARC/883 settles to within ½ LSB (12-bit = 1.22 mV) in approximately 1.8 µs. This assumes no capacitive loading and unity gain configuration. If driving a 100-pF load, add 20–30 ns per additional picofarad based on empirical measurements, though internal slew rate limiting caps maximum response speed at ~15 V/µs. Always validate settling behavior with actual load capacitance and feedback resistor values before committing to timing budgets in data acquisition systems.
Is it acceptable to use the OP467ARC/883 in switched-capacitor filter circuits requiring precise gain accuracy?
The OP467ARC/883 is not ideal for high-frequency switched-capacitor filters due to limited gain-bandwidth product (12 MHz typical) and moderate open-loop gain (120 dB). At frequencies above 100 kHz, gain error exceeds 0.1%, which may compromise filter linearity in Σ-Δ modulator stages. However, for decimation filter pre-amplification or DC-coupled signal paths, its low offset and low drift make it suitable. Use only if operating bandwidth is below 10 kHz and clock feedthrough from switching nodes is adequately suppressed through layout and shielding techniques.
What precautions are necessary when storing or handling the OP467ARC/883 to preserve parametric performance?
As a radiation-hardened device, the OP467ARC/883 must be stored in conductive foam or grounded containers to prevent electrostatic discharge (ESD) damage. Avoid exposure to temperatures above 85°C during storage to prevent moisture absorption that could lead to popcorning during thermal stress testing. Follow JEDEC J-STD-033 guidelines for handling Class 1 devices. Upon receipt, inspect for signs of contamination or physical damage before integration. Bake-out at 125°C for 24 hours may be required if humidity indicator shows >10% RH exposure prior to reflow soldering.
How does input bias current variation over temperature affect closed-loop gain accuracy in the OP467ARC/883?
The OP467ARC/883 exhibits input bias current of 10 nA maximum, increasing slightly with temperature but remaining well below 50 nA across the full military range. In non-inverting configurations with source resistances above 10 kΩ, this induces gain errors up to 0.05%. For higher precision, balance source impedances at both inputs using precision resistors matched to better than 0.01%. Inverting topologies naturally reject bias current effects if feedback resistor equals parallel combination of source resistors, minimizing gain drift over thermal transients.
Can the OP467ARC/883 drive TTL logic levels directly without additional buffering?
The OP467ARC/883 cannot directly interface with standard TTL inputs due to insufficient output current drive (limited to ±20 mA) and undefined output states near ground. Instead, configure it as a comparator with hysteresis or use a dedicated logic-level translator. If used as a comparator, ensure input overdrive exceeds 1 V to guarantee fast switching; otherwise, propagation delay may exceed 500 ns due to internal slew limitations. For digital output interfacing, pair with a Schmitt-trigger buffer such as SN74LVC1G14 for clean edge transitions in noisy environments.

Customer Reviews

Evaluation: 10 Articles

  • Nord***mbedded
    Jul 20, 2026

    Reliable FPGA with predictable behavior. Configuration and testing went smoothly, making development faster than expected.

  • Arch***ct
    Jul 15, 2026

    Used this device in a communication signal processing board. Stable timing and no unexpected issues during implementation.

  • FPGA***lorer88
    Jul 7, 2026

    The FPGA works properly and all functions operate as expected. Documentation required some additional research, but overall it is a usable device for smaller signal processing projects.

  • Nath***oleman
    Jun 29, 2026

    Used this sensor component in an industrial automation setup. Detection accuracy was consistent and installation was straightforward.

  • Emil***rperTech
    Jun 23, 2026

    Works exactly as described. I used it as a USB-to-SPI bridge in a small MCU development project and communication was stable from the first setup.

  • Liam***terTech
    Jun 15, 2026

    Used this CPLD in a logic control project. Programming was straightforward and signal timing matched the design requirements.

  • Nath***rooks
    Jun 11, 2026

    Installed this power component in a converter board. Output remained stable under different load conditions and thermal performance was better than expected.

  • Dani***alkerTech
    Jun 1, 2026

    Product works, but setup took more effort than expected. Once configured the MCU ran reliably, although documentation support felt older compared with newer platforms. Fine for maintenance projects.

  • Yuki***aka88
    May 26, 2026

    信号通信プロジェクトでこのRS-485トランシーバーを使用しました。設置は簡単で、長距離ケーブルでも通信は安定していました。消費電力も、以前使用していたものより低くなっています。

  • Stev***aker
    May 20, 2026

    Solid diode for power rectification. Works well in switching circuits.

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ADI (Analog Devices, Inc.)

OP467ARC/883

ADI (Analog Devices, Inc.)
32D-OP467ARC/883

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