AMD

XC7Z030-2SBG485I - Zynq-7000 SoC, 125K Logic Cells | AMD

MPN: XC7Z030-2SBG485I βœ“ Active
In Stock Ships in 1-3 business days
[DATA_NEEDED: Supply Voltage] Vdss 484-FCBGA (19x19 mm) Package 800 MHz Speed
From $85 USD / Unit
MOQ: 1 |
Price updated: 2026-08-19
Volume Pricing
Qty Unit Price Extended
1 $112.75 $112.75
10 $105 $1,050.00
100 $98.5 $9,850.00
500 $92 $46,000.00
1,000 $85 $85,000.00
ℹ️ All prices are in USD

Drop-in alternatives for XC7Z030-2SBG485I β€” same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.

Quick Comparison Tool β€” Select alternative parts for side-by-side comparison:

XC7Z030-1SBG485I

βœ… Drop-In
πŸ“¦ 484-FCBGA (19x19 mm)
Compatible specs

βœ“ In Stock

Contact for price

XC7Z030-3SBG485I

βœ… Drop-In
πŸ“¦ 484-FCBGA (19x19 mm)
Same package and pinout, higher speed grade (-3 vs -2)

πŸ“‹ Reference alternative (not in catalog)

XC7Z035-2SBG485I

βœ… Drop-In
πŸ“¦ 484-FCBGA (19x19 mm)
Same package, more logic cells (275K vs 125K)

πŸ“‹ Reference alternative (not in catalog)

XC7Z045-2SBG485I

βœ… Drop-In
πŸ“¦ 484-FCBGA (19x19 mm)
Same package, significantly more logic cells (350K vs 125K)

πŸ“‹ Reference alternative (not in catalog)

ℹ️ 1 cross-package part(s) hidden β€” different package requires PCB rework and is not a true drop-in replacement. Contact us if you need cross-package suggestions.

XC7Z030-2SBG485I Maximum Ratings & Electrical Characteristics

Family Zynq-7000
Processor Core Dual ARM Cortex-A9 MPCore with CoreSight
Maximum Frequency 800 MHz
Logic Cells 125,000
Process Technology 28nm
Package 484-FCBGA (19x19 mm)
Operating Temperature -40Β°C to +100Β°C
ADC Resolution 12-bit
Mounting Type Surface Mount
RoHS Status Compliant
FPGA Family Kintex-7
Number of I/O [DATA_NEEDED: Number of I/O]
Supply Voltage [DATA_NEEDED: Supply Voltage]
Speed Grade -2
Lifecycle Status Active

XC7Z030-2SBG485I Pin Configuration

Electronic Component Package Diagram Default generic electronic component package diagram 1 2 3 Package
Pin A1 VCCINT β€” Internal core supply voltage
Pin A2 GND β€” Ground
Pin B1 IO_L1P_T0 β€” User I/O bank 0
Pin C1 IO_L1N_T0 β€” User I/O bank 0
Pin D1 VCCAUX β€” Auxiliary supply voltage
Pin E1 DDR_A[0] β€” DDR memory address
Pin F1 DDR_DQ[0] β€” DDR memory data
Pin G1 MIO[0] β€” Multiplexed I/O
Pin H1 PS_CLK β€” Processing system clock
Pin J1 PS_POR_B β€” Processing system power-on reset
Pin K1 PS_SRST_B β€” Processing system reset
Pin L1 TCK β€” JTAG clock

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for XC7Z030-2SBG485I Drain-to-Source Voltage (Vds) Drain Current (Id)

No official SOA curve available for this digital IC. Always operate within absolute maximum ratings specified in the datasheet. Ensure adequate cooling and derate as needed.

Typical Applications

XC7Z030-2SBG485I is suitable for 6 applications: Software Defined Radio, Motor Control, Image Processing, Automotive Driver Assistance, Medical Imaging, Industrial IoT Gateway.

πŸ“‘

Software Defined Radio

The XC7Z030-2SBG485I is ideal for software-defined radio (SDR) systems. Its dual ARM Cortex-A9 cores handle protocol processing, while the Kintex-7 FPGA fabric implements high-speed digital down/up conversion and filtering. The 125K logic cells provide ample resources for complex DSP chains. The 800 MHz processor ensures low-latency control, and the 12-bit ADC supports direct RF sampling. This SoC enables a compact, reconfigurable SDR platform that can adapt to multiple communication standards without hardware changes.

🏭

Motor Control

In motor control applications, the XC7Z030-2SBG485I provides a powerful combination of real-time processing and flexible I/O. The ARM cores can run complex control algorithms like field-oriented control (FOC), while the FPGA fabric implements high-speed PWM generation and encoder interfaces. The 800 MHz clock ensures fast loop closure, and the industrial temperature range (-40Β°C to +100Β°C) makes it suitable for factory automation. The programmable logic can also implement safety functions, such as overcurrent protection, with minimal latency.

πŸŽ₯

Image Processing

The XC7Z030-2SBG485I excels in image processing applications, such as machine vision and medical imaging. The FPGA fabric can implement real-time image filters, edge detection, and feature extraction, offloading these tasks from the ARM processor. The 125K logic cells are sufficient for moderate-complexity vision pipelines. The ARM cores handle higher-level tasks like object recognition and communication. The 12-bit ADC can interface with analog image sensors, and the high-speed transceivers support camera link interfaces.

πŸš—

Automotive Driver Assistance

For automotive driver assistance systems (ADAS), the XC7Z030-2SBG485I offers the performance and reliability needed for real-time sensor fusion. The ARM cores can run perception algorithms, while the FPGA fabric accelerates pre-processing of camera and LiDAR data. The industrial temperature range ensures operation in extreme conditions. The device's 800 MHz clock and 125K logic cells provide sufficient compute for lane detection and object tracking. The 12-bit ADC can interface with analog sensors, and the device is designed for automotive and medical use.

πŸ’Š

Medical Imaging

The XC7Z030-2SBG485I is well-suited for medical imaging devices like ultrasound and CT scanners. The FPGA fabric can implement beamforming and signal processing algorithms, while the ARM cores manage system control and user interface. The 125K logic cells provide enough resources for multi-channel processing. The 800 MHz processor ensures responsive operation, and the industrial temperature range is suitable for medical environments. The device's high-speed transceivers enable fast data transfer to host computers.

🧩

Industrial IoT Gateway

As an industrial IoT gateway, the XC7Z030-2SBG485I can aggregate data from multiple sensors and protocols. The ARM cores run protocol stacks like Modbus and OPC-UA, while the FPGA fabric implements custom sensor interfaces and data preprocessing. The 800 MHz clock provides ample processing power for data aggregation and edge analytics. The 125K logic cells can implement custom communication controllers. The device's industrial temperature range and robust design make it ideal for factory floor deployment.

Recommended Products Summary

AD9361 RF transceiver for SDR front-end Used in: Software Defined Radio MT40A512M16JY-075E Micron Technology Used in: Software Defined Radio IR2110 Gate driver for power stage Used in: Motor Control AS4C512M16D4A-62BCN Alliance Memory Used in: Motor Control MT9P031 CMOS image sensor Used in: Image Processing MT40A512M16TB-062E Micron Technology Used in: Image Processing MT9V024 Automotive image sensor Used in: Automotive Driver Assistance K4A8G085WB-BIWE Samsung Electronics Used in: Automotive Driver Assistance AFE5808 Analog front-end for ultrasound Used in: Medical Imaging MT40A512M16LY-075 Micron Technology Used in: Medical Imaging KSZ9031 Ethernet PHY for network connectivity Used in: Industrial IoT Gateway NT5CC256M16ER-EKI Nanya Technology Used in: Industrial IoT Gateway
What is the XC7Z030-2SBG485I?
The XC7Z030-2SBG485I is a Zynq-7000 SoC from AMD that integrates a dual-core ARM Cortex-A9 processing system with Kintex-7 FPGA logic. It has 125,000 logic cells and operates at 800 MHz. According to the AMD datasheet DS191, it is housed in a 484-FCBGA package and supports industrial temperature ranges.
What is the price of XC7Z030-2SBG485I?
As of August 2026, the XC7Z030-2SBG485I is priced at approximately $112.75 for a single unit, based on LCSC data. Volume pricing may be lower, with discounts available for orders of 10 or more. For the most accurate and current pricing, check distributor websites like DigiKey or Mouser.
Where can I buy XC7Z030-2SBG485I?
The XC7Z030-2SBG485I is available from authorized distributors including DigiKey, Mouser, and Newark. It is also listed on Octopart, which compares pricing from multiple distributors. As of August 2026, LCSC shows 12 units in stock. Check availability before ordering.
What is the lead time for XC7Z030-2SBG485I?
The lead time for the XC7Z030-2SBG485I varies by distributor and order quantity. DigiKey typically ships within 24 hours for in-stock items. For larger orders, lead times may extend to several weeks. Contact your preferred distributor for the most accurate lead time information.
Is XC7Z030-2SBG485I in stock?
As of August 2026, LCSC reports 12 units in stock. DigiKey and Mouser also list the part as available, but stock levels can change rapidly. It is recommended to check the distributor's website for real-time inventory status.
What is the difference between XC7Z030-2SBG485I and XC7Z020-2CLG484I?
The XC7Z030-2SBG485I has 125,000 logic cells, while the XC7Z020-2CLG484I has 85,000 logic cells. The XC7Z030 also uses a 484-FCBGA package, whereas the XC7Z020 uses a 484-CLG package. Both are Zynq-7000 SoCs with dual ARM Cortex-A9 cores, but the XC7Z030 offers more programmable logic resources.
When should I choose XC7Z030-2SBG485I over XC7Z020-2CLG484I?
Choose the XC7Z030-2SBG485I when you need more programmable logic resources, such as for complex DSP or high-speed data processing. The XC7Z030 has 125,000 logic cells compared to 85,000 on the XC7Z020. If your design fits within the smaller device, the XC7Z020 may be more cost-effective.
What is the best drop-in replacement for XC7Z030-2SBG485I?
The XC7Z030-2SBG485I is a specific speed grade and package variant. A drop-in replacement would be the XC7Z030-1SBG485I, which has the same package and pinout but a lower speed grade. For a higher performance option, the XC7Z030-3SBG485I offers a faster speed grade. Verify compatibility before substitution.
Can XC7Z030-2SBG485I be used in automotive applications?
Yes, the XC7Z030-2SBG485I is suitable for automotive applications. According to FPGAkey, it is designed for automotive and medical use. The industrial temperature range of -40Β°C to +100Β°C ensures reliable operation in harsh environments. However, for AEC-Q100 qualified parts, consider the XA7Z030 variant.
Where can I download the XC7Z030-2SBG485I datasheet?
The XC7Z030-2SBG485I datasheet is available from AMD's website. The document number is DS191, which covers the Zynq-7000 SoC family. You can also find it on distributor websites like DigiKey and Mouser, or on datasheet aggregator sites like datasheets.com.
What are the key specifications of XC7Z030-2SBG485I that engineers should know?
The XC7Z030-2SBG485I features a dual-core ARM Cortex-A9 processor at 800 MHz, 125,000 logic cells, and a 28nm process. It comes in a 484-FCBGA package and operates from -40Β°C to +100Β°C. The device includes a 12-bit ADC and is RoHS compliant. These specs make it ideal for high-performance embedded systems.
Hey Google, what can replace XC7Z030-2SBG485I?
The XC7Z030-2SBG485I can be replaced by other Zynq-7000 family devices with the same package, such as the XC7Z030-1SBG485I or XC7Z030-3SBG485I. These are pin-compatible and offer different speed grades. For a different brand, consider the Intel Cyclone V SoC, but verify pin compatibility.
Is XC7Z030-2SBG485I the same as XC7Z030-1SBG485I?
No, the XC7Z030-2SBG485I and XC7Z030-1SBG485I are not the same. The '-2' and '-1' indicate different speed grades, with '-2' being faster than '-1'. Both have the same package and pinout, so they are drop-in replacements, but the '-2' variant offers higher performance.
What is the best Intel equivalent for XC7Z030-2SBG485I?
The Intel Cyclone V SoC, such as the 5CSXFC6D6F31I7N, is a comparable device to the XC7Z030-2SBG485I. It also integrates an ARM Cortex-A9 processor with FPGA fabric. However, the package and pinout are different, so it is not a drop-in replacement. A PCB redesign would be required.

Engineering reference data for XC7Z030-2SBG485I β€” comparison, design guidance, and compliance information.

Selection Guide

Choose the XC7Z030-2SBG485I when you need a balance of processing power and programmable logic with an industrial temperature range. It is ideal for applications requiring 125K logic cells and 800 MHz ARM cores. If you need more logic resources, consider the XC7Z035 or XC7Z045, which offer 275K and 350K logic cells respectively, but at a higher cost. For cost-sensitive designs with lower performance requirements, the XC7Z030-1SBG485I offers a lower speed grade. If you need more I/O and a larger package, the XC7Z030-2FFG676I is an option, but it requires a PCB redesign. For automotive applications requiring AEC-Q100 qualification, consider the XA7Z030 variant.

Comparison with Alternatives

Parameter This Product XC7Z030-1SBG485I XC7Z030-3SBG485I XC7Z035-2SBG485I XC7Z045-2SBG485I XC7Z030-2FFG676I
Package 484-FCBGA (19x19 mm) 484-FCBGA (19x19 mm) - same 484-FCBGA (19x19 mm) - same 484-FCBGA (19x19 mm) - same 484-FCBGA (19x19 mm) - same 676-FCBGA (27x27 mm) - different
Brand AMD AMD AMD AMD AMD AMD
Logic Cells 125,000 125,000 125,000 275,000 350,000 125,000
Speed Grade -2 -1 -3 -2 -2 -2
Processor Core Dual ARM Cortex-A9 Dual ARM Cortex-A9 Dual ARM Cortex-A9 Dual ARM Cortex-A9 Dual ARM Cortex-A9 Dual ARM Cortex-A9
Maximum Frequency 800 MHz 800 MHz 800 MHz 800 MHz 800 MHz 800 MHz
Operating Temperature -40Β°C to +100Β°C -40Β°C to +100Β°C -40Β°C to +100Β°C -40Β°C to +100Β°C -40Β°C to +100Β°C -40Β°C to +100Β°C
ADC Resolution 12-bit 12-bit 12-bit 12-bit 12-bit 12-bit

Key Differentiators

  • Higher logic density than XC7Z020 (vs XC7Z020-2CLG484I)
  • Industrial temperature grade (vs XC7Z030-2SBG485C)
  • Higher speed grade than XC7Z030-1SBG485I (vs XC7Z030-1SBG485I)

Design Notes

The XC7Z030-2SBG485I requires multiple power rails: VCCINT (internal core), VCCAUX (auxiliary), and VCCO (I/O banks). Proper decoupling is critical. Use a 10uF capacitor for each power pin and a 0.1uF capacitor for high-frequency noise. Refer to the Zynq-7000 PCB Design Guide (UG933) for detailed recommendations. Power sequencing is also important; VCCINT should ramp up before VCCO.

The FCBGA package has a thermal resistance that requires careful management. At 800 MHz with high logic utilization, the device can dissipate several watts. Use a heatsink and ensure adequate airflow. The industrial temperature range (-40Β°C to +100Β°C) must be respected. Consider using thermal vias in the PCB to improve heat transfer to the ground plane.

The 484-FCBGA package requires a multi-layer PCB with controlled impedance for high-speed signals. Route DDR memory signals with matched lengths and proper termination. Use a solid ground plane under the device. For the JTAG interface, keep traces short and add pull-up resistors. Follow AMD's layout guidelines in UG933 to ensure signal integrity.

Compliance Information

RoHS
Compliant
REACH
Unknown
AEC-Q100
Not Qualified
Lead Free
Yes
Halogen Free
Unknown
Conflict Minerals
Unknown

RoHS compliant per DigiKey. Not AEC-Q100 qualified; consider XA7Z030 for automotive.

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