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HomeProductsIntegrated Circuits (ICs)Specialized ICsAD8610AR
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AD8610AR - Analog Devices

Manufacturer Part Number
AD8610AR
Manufacturer
Analog Devices, Inc.
Allelco Part Number
41D-AD8610AR
Warranty
1 Year Allelco Warranty - Find out more
Stock Status:
16,170 pcs available, New & Original
Parts Description
8-SOIC0.154"3.90mm
Data sheet
-
Category
Integrated Circuits (ICs) > Specialized ICs
RoHs Status
Our certification
In stock: 16170

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Specifications

AD8610AR Tech Specifications
Analog Devices - AD8610AR technical specifications, attributes, parameters and parts with similar specifications to Analog Devices - AD8610AR

Product Attribute Attribute Value
Part Number AD8610AR
Package 8-SOIC0.154"3.90mm
Description 8-SOIC0.154"3.90mm
Stock Condition Get 16170 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)

How does the AD8610AR compare to other J-FET input op-amps in terms of input bias current and voltage offset for precision analog signal conditioning applications?
The AD8610AR exhibits an exceptionally low input bias current of 3 pA, which is among the lowest available in its class, making it suitable for high-impedance sensor interfaces where leakage currents could otherwise corrupt small-signal measurements. Its input voltage offset is specified at 85 µV, which is competitive with leading devices like the OPA627AU but notably lower than some alternatives such as the TLE2081 series, which typically exhibit higher offset voltages under similar operating conditions. This combination enables the AD8610AR to maintain accuracy in DC-coupled, high-gain amplifier stages without requiring frequent nulling or calibration cycles, especially when processing millivolt-level signals from thermocouples or strain gauges.
What are the key thermal and power considerations when integrating the AD8610AR into a compact industrial control system with limited heat dissipation?
With a quiescent supply current of 3 mA per channel and a typical output drive capability of 45 mA, the AD8610AR consumes approximately 78 mW at ±12 V rails (total of 156 mW for dual-supply operation). In a single-channel configuration, this translates to manageable thermal loads, but care must be taken during PCB layout to ensure adequate copper pour and thermal relief for sustained high-output-current scenarios. Given its operating temperature range of -40°C to 125°C, it is well-suited for harsh environments, but designers should still account for junction temperature rise under continuous full-load conditions, particularly in sealed enclosures where convective cooling is minimal.
When selecting between the AD8610AR and alternative J-FET op-amps like the TLE2081CDR for a high-speed data acquisition front-end, how do bandwidth and slew rate trade off against noise performance?
The AD8610AR offers a gain-bandwidth product of 25 MHz and a slew rate of 60 V/µs, enabling it to handle fast transients and moderate bandwidth requirements effectively. However, compared to the TLE2081CDR—which may offer superior noise density in certain frequency bands due to optimized internal compensation—the AD8610AR trades slightly higher noise for better DC precision and lower input offset drift over temperature. For applications prioritizing speed over ultra-low noise (e.g., driving 12-bit ADCs sampling at 100 kSPS), the AD8610AR performs adequately; however, if sub-microvolt resolution is required across wide temperature swings, alternative architectures using chopper-stabilized or auto-zero techniques might be more appropriate despite their inherent limitations.
Can the AD8610AR reliably drive capacitive loads exceeding 1 nF without oscillation, and what compensation strategies should be applied?
Yes, the AD8610AR demonstrates stable operation up to approximately 2–3 nF of capacitive load, provided adequate series resistance (typically 5–10 Ω) is inserted between the output and the load to dampen peaking. Without such isolation, the op-amp’s internal compensation may become overstressed, leading to ringing or instability in feedback configurations involving long cables or unshielded traces. This behavior aligns with standard J-FET op-amp characteristics and mirrors that observed in comparable devices like the OPA637AU. Designers working with sensor outputs or switched-capacitor circuits should always simulate phase margin under worst-case load conditions to avoid unexpected failures.
How does the supply voltage flexibility of the AD8610AR influence its use in battery-powered instrumentation versus industrial mains-powered systems?
Operating across a supply span from ±5 V to ±13 V (10 V to 26 V total), the AD8610AR supports both single-supply designs down to 10 V and traditional dual-supply topologies common in test equipment. This range allows integration into portable devices using Li-ion batteries while still accommodating legacy systems running off ±15 V rails. However, unlike rail-to-rail input/output variants, the AD8610AR maintains consistent performance only within its specified common-mode range relative to the supply rails—typically within 1–2 V of each rail. Therefore, in single-supply battery applications where input signals approach ground, additional biasing networks may be necessary to keep inputs within valid limits.
In what way does the moisture sensitivity level (MSL) classification of the AD8610AR impact assembly process planning and shelf-life management?
Classified as MSL 1 (unlimited floor life), the AD8610AR can be stored indefinitely at ambient conditions without special packaging, simplifying inventory handling and reducing costs associated with dry storage cabinets or humidity-controlled environments. This makes it ideal for high-volume production lines where rapid turnarounds are essential. Nevertheless, manufacturers must still adhere to recommended soldering profiles and avoid exposure beyond 30°C/60% RH for extended periods, even though no bake-out cycle is mandated before reflow per JEDEC standards.
Compared to bipolar-input op-amps like the TLE2081ACDR, what advantages does the J-FET architecture of the AD8610AR provide in terms of input impedance and long-term stability?
The J-FET input stage of the AD8610AR provides extremely high input impedance (>10^12 Ω), minimizing loading effects on high-output-impedance sources such as piezoelectric sensors or photodiodes. Unlike bipolar transistors, J-FETs exhibit negligible flicker noise and superior long-term drift characteristics, resulting in more stable gain over years of operation. While the TLE2081ACDR uses a bipolar input structure offering lower offset voltage in some cases, it generally suffers from higher input bias currents (on the order of nanoamperes) and greater susceptibility to electromagnetic interference due to base current injection. Thus, the AD8610AR excels in applications demanding minimal source interaction and predictable aging behavior.
What precautions should engineers take when substituting the AD8610AR with part numbers like the OPA627AU in existing circuit layouts?
Although functionally similar, the OPA627AU operates at lower supply voltages (±15 V max) and has a slightly reduced slew rate (~50 V/µs), which may limit dynamic response in fast-settling loops. Additionally, pin compatibility between the two is not guaranteed—both use 8-pin packages but differ in pinout arrangements (SOIC vs. DIP). Careful review of mechanical footprint and electrical interface mapping is essential. Furthermore, the OPA627AU’s higher input capacitance (~5 pF vs. ~3.5 pF for AD8610AR) can affect stability in unity-gain buffer configurations, necessitating potential adjustments to compensation networks. Substitution should always include functional testing under actual operating conditions.

Customer Reviews

Evaluation: 10 Articles

  • 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.

  • Bran***Lewis
    May 11, 2026

    Compact FPGA with good performance. Suitable for basic signal processing tasks.

  • Oliv***arris
    May 7, 2026

    Reliable I/O expander. Works well in embedded control applications.

  • Jess***Jones
    Apr 17, 2026

    It offers good value for the price, and the specifications match the description. I’ve been using it for two days with no issues, and I’ll definitely buy it again if I need it in the future.

  • Mich***Smith
    Apr 17, 2026

    Shipping was on time, the component pins are neatly aligned, and I tested 10 of them with a multimeter—all readings were within the specified range. Highly recommended.

  • Aman***arris
    Apr 3, 2026

    It was great—the entire process, from placing the order to receiving the package, went very smoothly. The components were consistent, the price was fair, and I had a very pleasant shopping experience.

  • Mike***nch
    Apr 3, 2026

    Better than expected! The resistance and capacitance readings were spot-on, and it passed the test on the first try. The service was reliable, and the packaging was thoughtful—I highly recommend it.

  • Daic***K.
    Mar 23, 2026

    Very good. No issue after long time testing.

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Region Country Logistic Time(Day)
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Brazil 7
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United Kingdom 4
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New Zealand 5
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Middle East Israel 6
DHL & FedEx Shipment Charges Reference
Shipment charges(KG) Reference DHL(USD$)
0.00kg-1.00kg USD$30.00 - USD$60.00
1.00kg-2.00kg USD$40.00 - USD$80.00
2.00kg-3.00kg USD$50.00 - USD$100.00
Note:
The above table is for reference only. There may have some data bias for the uncontrollable factors.
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Analog Devices

AD8610AR

Analog Devices
41D-AD8610AR

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