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HomeProductsIntegrated Circuits (ICs)Specialized ICsXCF08PV0G48C
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XCF08PV0G48C - AMD Xilinx

Manufacturer Part Number
XCF08PV0G48C
Manufacturer
AMD Xilinx
Allelco Part Number
32D-XCF08PV0G48C
Warranty
1 Year Allelco Warranty - Find out more
Stock Status:
13,550 pcs available, New & Original
Parts Description
-
Data sheet
-
Category
Integrated Circuits (ICs) > Specialized ICs
RoHs Status
Our certification
In stock: 13550

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Specifications

XCF08PV0G48C Tech Specifications
AMD Xilinx - XCF08PV0G48C technical specifications, attributes, parameters and parts with similar specifications to AMD Xilinx - XCF08PV0G48C

Product Attribute Attribute Value
Part Number XCF08PV0G48C
Package -
Description -
Stock Condition Get 13550 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 AMD Xilinx
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 XCF08PV0G48C compare to other CPLDs in terms of power efficiency during active operation, and what are the typical current draw characteristics at 3.3V VCC?
The XCF08PV0G48C exhibits a maximum active current draw of approximately 12 mA at 3.3V supply voltage when configured with typical I/O loading. This places it in the mid-range for CPLD class devices, offering better power efficiency than higher-density alternatives like the XC9572XL but requiring more current than ultra-low-power variants such as the CoolRunner-II family. The actual operating current varies significantly based on switching activity, with static consumption under 1 mA when idle.
What is the recommended decoupling capacitor configuration for reliable operation of the XCF08PV0G48C in industrial temperature environments, and how should it be implemented near the TSOP48 package?
For stable operation across industrial temperature ranges (-40°C to +85°C), use a 0.1 µF ceramic capacitor placed within 5 mm of the VCC and GND pins of the XCF08PV0G48C. Additionally, include a bulk 10 µF tantalum or polymer capacitor at the board’s power entry point. The 0.1 µF cap must have X7R or better dielectric to maintain capacitance stability with temperature fluctuations common in harsh environments.
When selecting between parallel and serial configuration modes for the XCF08PV0G48C, which offers faster programming times and why?
Serial configuration using the JTAG interface typically results in faster programming times for the XCF08PV0G48C compared to parallel mode. While parallel loading can transfer data at up to 30 MHz, serial JTAG often completes programming in seconds due to standardized protocol overhead and reduced pin count. However, parallel mode provides deterministic timing during development cycles, making it preferable for iterative debugging despite longer total write duration.
What are the maximum allowable input voltage levels on non-powered pins of the XCF08PV0G48C when used in a mixed-voltage system where only the core VCCIO is absent?
Non-powered I/O pins of the XCF08PV0G48C must not exceed 4.6 V absolute maximum rating, even if the device core is unpowered. This includes inputs connected to 5V logic signals without level shifting. Exceeding this limit risks latch-up or permanent damage, especially since the ESD protection diodes can forward-bias under such conditions. Use external clamping circuits or level translators when interfacing with higher-voltage domains.
In what scenarios would the XCF08PV0G48C outperform an FPGA for glue logic implementation, and what design trade-offs should be considered?
The XCF08PV0G48C is more suitable than FPGAs for low-complexity, deterministic glue logic tasks such as address decoding, bus bridging, or simple state machines with sub-microsecond response requirements. Its instant-on capability and predictable propagation delays make it ideal for reset sequencing or protocol conversion. However, unlike FPGAs, it lacks reconfigurability and has limited logic capacity (approximately 8,000 gates equivalent), making it unsuitable for algorithms requiring dynamic reconfiguration or high throughput.
How does the propagation delay of the XCF08PV0G48C affect timing closure in synchronous systems, and what margin should be allocated for clock-to-output paths?
The XCF08PV0G48C has a typical clock-to-output propagation delay of 8 ns under standard 3.3V operation with medium fan-out loads. For reliable timing closure, engineers should allocate at least 1.5× this value—approximately 12–15 ns—when designing synchronous interfaces. This accounts for process variation, temperature drift, and load capacitance effects, particularly important in multi-stage cascaded logic designs where cumulative skew could violate setup windows.
What precautions are necessary when hot-swapping boards containing the XCF08PV0G48C, and how does the device handle undervoltage conditions during power-up sequencing?
Hot-swapping with the XCF08PV0G48C requires strict adherence to power sequencing guidelines. The device includes built-in brown-out detection that resets the configuration memory if VCC drops below 2.7 V, but it does not tolerate reverse polarity or rapid voltage transients. To prevent corruption during insertion or removal, ensure all I/O voltages stabilize within ±10% of nominal before asserting any control signals. Adding series resistors (22–100 Ω) on critical lines helps dampen inductive kickback from connector contacts.
Can the XCF08PV0G48C drive legacy 5V TTL logic directly from its 3.3V I/O bank, and what resistor network would ensure compatibility without compromising noise margins?
Direct driving of 5V TTL inputs from the XCF08PV0G48C’s 3.3V outputs is generally not recommended due to insufficient output swing (typically 2.4 V max) relative to the 2.0 V TTL high threshold. Instead, use a pull-up resistor to 5V in conjunction with a Schottky diode clamp to limit input overvoltage. Alternatively, implement a resistive divider at the receiver end—e.g., 1 kΩ and 2 kΩ—to attenuate 3.3V signals to ~2.2 V, ensuring reliable recognition by 5V TTL while preserving edge rates.

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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Common Countries Logistic Time Reference
Region Country Logistic Time(Day)
America United States 5
Brazil 7
Europe Germany 5
United Kingdom 4
Italy 5
Oceania Australia 6
New Zealand 5
Asia India 4
Japan 4
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.
Contact us if you have any questions.
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  • ISO 9001: 2015
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AMD Xilinx

XCF08PV0G48C

AMD Xilinx
32D-XCF08PV0G48C

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