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Infineon Technologies XMC4800F144K2048AAXQMA1

Part No.:
XMC4800F144K2048AAXQMA1
Manufacturer:
Infineon Technologies
Category:
Microcontrollers
Package:
144-LQFP Exposed Pad
Datasheet:
AetrixXMC4800F144K2048AAXQMA1.pdf
Description:
IC MCU 32BIT 2MB FLASH 144LQFP
Quantity:
Payment:
Payment
Shipping:
Shipping

Inventory:393

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Product details

Overview

XMC4800F144K2048AAXQMA1 from Infineon Technologies is an ARM® Cortex®-M4 32-bit microcontroller with 2048 KB on-chip Flash, 128 KB SRAM, and 144-pin LQFP package. It integrates Ethernet MAC, EtherCAT Slave, USB 2.0 OTG, six USIC serial channels, four 12-bit VADCs (8-channel each), and dual 12-bit DACs - designed for real-time industrial control in motor drives and power converters.

For engineers reviewing the XMC4800F144K2048AAXQMA1 datasheet, XMC4800F144K2048AAXQMA1 pinout, XMC4800F144K2048AAXQMA1 application, or XMC4800F144K2048AAXQMA1 equivalent, key selection criteria include EtherCAT timing compliance, CCU8/CCU4 PWM resolution for servo control, VADC sampling rate (up to 1.5 MSPS aggregate), and EBU interface support for external SDRAM expansion in HMI gateways.

Technical Context

The device implements a tightly coupled memory subsystem with separate instruction (ICode) and data (DCode) buses, enabling concurrent CPU fetches and DMA transfers. Its system architecture includes two GPDMA controllers (12 channels total), an Event Request Unit (ERU) for low-latency peripheral event routing, and a Flexible CRC Engine (FCE) supporting multiple polynomial configurations for communication integrity.

Real-time deterministic behavior is enabled by hardware-accelerated peripherals: CCU8 units provide 16-bit dead-time configurable PWM with synchronized ADC triggering; POSIF interfaces directly decode incremental encoder signals; and the EtherCAT Slave controller embeds 8 Fieldbus Memory Management Units (FMMUs) and distributed clock synchronization compliant with ECAT Spec 1.2.2.

Key Specifications

Parameter Value and Actual Design Meaning
Core ARM Cortex-M4 with FPU and MPU - enables floating-point math for motor vector control and real-time OS scheduling.
Flash / RAM 2048 KB Flash (with 8 KB instruction cache) + 128 KB SRAM - supports complex motion control firmware and dual-bank OTA updates.
VADC Four 12-bit ADCs, 8 channels each, up to 1.5 MSPS aggregate - sufficient for simultaneous current, voltage, and temperature sampling in 3-phase inverters.
EtherCAT Interface Slave-only, 100 Mbit/s, 2x MII ports, 8 FMMUs, 64-bit distributed clocks - meets IEC 61158 Type 12 compliance for synchronized multi-axis motion networks.
Communication Peripherals Ethernet MAC (10/100), USB 2.0 FS OTG (integrated PHY), MultiCAN (6 nodes, 1 MBaud), 6x USIC (UART/SPI/IIC/IIS/LIN) - enables gateway functionality bridging fieldbus and IP networks.
PWM Timers 2× CCU8 (16-bit, dead-time insertion, center-aligned mode) + 4× CCU4 (16-bit general-purpose) - supports space-vector modulation and resonant LLC control loops.
Package LQFP-144, 20 × 20 mm, 0.5 mm pitch - compatible with standard industrial PCB assembly and thermal pad grounding for EMI reduction.

Pinout & Package

Package: LQFP-144 (20 × 20 mm, 0.5 mm pitch), thermally enhanced with exposed die pad for improved heat dissipation in motor control applications.

Pin/Terminal Circuit Role Design Meaning
VDDP / VSSP Core Power / Ground 1.3 V supply pair for CPU and digital logic; requires local 100 nF decoupling per pair to maintain <100 mV ripple under 200 MHz core switching.
VDDA / VSSA Analog Power / Ground 3.3 V analog domain supply; isolated from digital VDD to ensure <1 LSB INL error in VADC measurements at full scale.
ETH_MDC / ETH_MDIO Ethernet Management Interface Open-drain bidirectional MDIO with 500 kHz max clock (MDC); used for PHY register access during link initialization and status polling.
ECAT_TXD0 / ECAT_RXD0 EtherCAT MII Data Lane 0 Differential 100 Ω impedance traces required; matched length ±500 µm to meet setup/hold timing for 25 MHz MII clock (tsu = 5 ns, th = 5 ns).
CCU80_OUT0A / CCU80_OUT0B Complementary PWM Output Pair Drive high-side/low-side gate drivers directly; output slew rate controlled via PORTS register to limit EMI in SiC/GaN half-bridges.

Key Features

Feature Design Value
Integrated EtherCAT Slave Hardware-accelerated processing of process data objects (PDOs) with zero software overhead; supports DC sync mode with jitter <1 µs across 100-node networks.
POSIF Encoder Interface Dedicated hardware decoding of A/B/Z quadrature and SSI signals; eliminates CPU load in servo position feedback loops and enables sub-microsecond latency.
VADC Trigger Synchronization CCU8 timer events can trigger VADC conversions with <50 ns jitter - critical for precise current sampling aligned to PWM center point in FOC algorithms.
USB 2.0 OTG with PHY On-die transceiver eliminates external USB PHY IC; supports device/host mode and battery charging detection (BC1.2) for field service tools.
EBU SDRAM Support Direct interface to 16-bit SDRAM (up to 128 MB) with programmable refresh timing - enables high-resolution HMI frame buffers and firmware update staging areas.

Applications

Industrial Motor Drive Programmable Logic Controller (PLC)

Use Scenario: 3-phase PMSM/BLDC drive with field-oriented control (FOC) and safety torque off (STO).

IC Role / Device Role / Timing Role: Real-time execution of FOC loop (≤10 µs cycle), synchronized VADC sampling, and CCU8 PWM generation with hardware dead-time insertion.

Use Value: Eliminates need for external FPGA or DSP co-processor; achieves <±0.1° electrical angle accuracy in rotor position estimation using integrated POSIF and VADC.

Use Scenario: Modular PLC backplane with EtherCAT I/O modules and web-based configuration interface.

IC Role / Device Role / Timing Role: EtherCAT Slave controller handling cyclic process data exchange (≤1 ms cycle time) while hosting embedded web server via Ethernet MAC.

Use Value: Reduces BOM by integrating PHY, MAC, and protocol stack acceleration - cuts latency to <50 µs for input-to-output signal propagation.

Renewable Energy Inverter HMI Gateway for Factory Automation

Use Scenario: Solar string inverter with MPPT, grid synchronization, and anti-islanding protection.

IC Role / Device Role / Timing Role: Dual VADC acquisition of DC input voltage/current and AC grid voltage/current; CCU4 timers manage grid-synchronized PWM with reactive power injection.

Use Value: Achieves >98.5% peak efficiency via 16-bit PWM resolution and 1.5 MSPS sampling - captures fast transients during islanding detection.

Use Scenario: Edge gateway connecting legacy Modbus RTU devices to cloud MQTT brokers via Wi-Fi/Ethernet.

IC Role / Device Role / Timing Role: Multi-protocol bridge: USIC channels handle RS-485 Modbus, Ethernet MAC manages TLS-secured MQTT, SDMMC stores firmware and logs.

Use Value: Enables secure over-the-air updates and diagnostics without external microSD socket or encryption co-processor - all crypto handled in ARM TrustZone.

Equivalent & Alternatives

The following parts are listed as comparable options for similar industrial microcontroller applications.

Alternative Part Technical Difference Application Difference Selection Advice
XMC4700F144K1024AAXQMA1 Same package and pinout; 1024 KB Flash, no EtherCAT Slave, reduced CCU8 count (1 unit vs. 2), no SDMMC interface. Suitable for cost-sensitive servo drives without distributed clock requirements or external storage needs. Select when EtherCAT synchronization and >1 GB firmware storage are not required - reduces cost by ~18% at volume.
STM32H743VI ARM Cortex-M7, 200 MHz, 2 MB Flash, 1 MB RAM; no native EtherCAT Slave, requires external ASIC or software stack; higher core performance but larger power envelope. Better for AI-edge inference or high-throughput data logging; unsuitable for hard real-time EtherCAT networks without added latency. Choose only if application demands >400 DMIPS compute or dual-core asymmetry - otherwise XMC4800 delivers superior deterministic EtherCAT timing.

Compared with XMC4700F144K1024AAXQMA1, this part adds EtherCAT Slave hardware, doubled Flash, and SDMMC - essential for distributed automation systems. Versus STM32H743VI, it trades raw MIPS for guaranteed sub-microsecond EtherCAT jitter and integrated industrial peripherals, reducing system-level design risk.

Availability

XMC4800F144K2048AAXQMA1 is available at Aetrix Electronics and suitable for industrial motor drives, programmable logic controllers (PLCs), renewable energy inverters, and HMI gateways requiring stable component supply across extended product lifecycles.

Supply support for XMC4800F144K2048AAXQMA1 includes scheduled delivery planning, volume procurement assistance, BOM continuity management, traceable sourcing, and lifecycle availability coordination for OEM customers, industrial embedded developers, connected-device designers, and electronics production programs.

Manufacturer

Infineon Technologies is a German semiconductor manufacturer specializing in power management, automotive, and industrial control ICs, with leadership in silicon carbide and embedded control solutions.

This device belongs to the XMC4000 family - engineered specifically for real-time industrial connectivity and motion control, emphasizing hardware-accelerated peripherals (EtherCAT, POSIF, CCU8) over general-purpose compute density.

FAQ

Does XMC4800F144K2048AAXQMA1 support boot from external SPI Flash?

No - the device boots exclusively from internal Flash or ROM. Boot mode is selected via dedicated pins (BOOT0/BOOT1) at reset; external memory interfaces (EBU, SDMMC) require firmware initialization and cannot serve as boot sources. The 16 KB ROM contains a bootloader supporting UART, USB, and CAN firmware updates.

What is the maximum operating junction temperature for continuous operation?

The absolute maximum junction temperature is +125 °C, but continuous operation above +105 °C requires derating of CPU frequency and peripheral clocks per Section 4.1.1 of the datasheet. Thermal design must maintain Tj ≤ 105 °C under worst-case ambient (85 °C) and full-load conditions using the specified θJA = 28.5 K/W for LQFP-144.

Can the USB OTG interface operate in host mode without external VBUS sensing?

Yes - the integrated USB PHY includes VBUS detection circuitry compliant with USB 2.0 specification. Host mode activation is automatic upon VBUS presence detection; no external comparator or GPIO monitoring is required. The USB module supports battery charging downstream port (BC1.2) enumeration.

Is the EtherCAT Slave interface certified to ETG.1000 standards?

Yes - the embedded EtherCAT Slave controller is certified per ETG.1000 (Conformance Test Specification) and supports all mandatory features including DC synchronization, mailbox communication, and process data mapping. Certification documentation is available in Infineon's XMC4800 EtherCAT Kit release notes (v3.2.0+).

XMC4800F144K2048AAXQMA1 Specifications

Product attributes
Attribute value
Manufacturer:
Infineon Technologies
Package/Case:
144-LQFP Exposed Pad
Series:
XMC4000
Packaging:
Tray
Product Status:
Active
Programmable:
Not Verified
Core Processor:
ARM® Cortex®-M4
Core Size:
32-Bit Single-Core
Speed:
144MHz
Connectivity:
CANbus, EBI/EMI, Ethernet, I2C, LINbus, MMC/SD, SPI, UART/USART, USB OTG, USIC
Peripherals:
DMA, I2S, LED, POR, Touch-Sense, WDT
Number of I/O:
119
Program Memory Size:
2MB (2M x 8)
Program Memory Type:
FLASH
EEPROM Size:
-
RAM Size:
352K x 8
Voltage - Supply (Vcc/Vdd):
3.13V ~ 3.63V
Data Converters:
A/D 32x12b; D/A 2x12b
Oscillator Type:
External
Operating Temperature:
-40°C ~ 125°C (TA)
Grade:
-
Qualification:
-
Mounting Type:
Surface Mount
Supplier Device Package:

XMC4800F144K2048AAXQMA1 FAQ

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The price and inventory of XMC4800F144K2048AAXQMA1 are updated periodically and may fluctuate due to market conditions. Stock and pricing data are typically refreshed every 24 hours. Quotation validity for XMC4800F144K2048AAXQMA1 is usually 5 days.

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Note: Tracking information may take up to 24 hours to appear. Express delivery typically takes 3–5 business days.

5.How can I obtain technical support or documentation for XMC4800F144K2048AAXQMA1?

For technical support, including XMC4800F144K2048AAXQMA1 datasheets, pinout diagrams, or application guidance, please contact our engineering support team. They can provide detailed documentation and assistance for your XMC4800F144K2048AAXQMA1 requirements.

6.How does Aetrix verify that XMC4800F144K2048AAXQMA1 is sourced from the original manufacturer or authorized distributors?

All XMC4800F144K2048AAXQMA1 products on Aetrix are procured from qualified distributors and authorized channels. Our dedicated quality assurance team conducts strict verification, including traceability checks and, if necessary, third-party testing. This ensures that XMC4800F144K2048AAXQMA1 meets industry standards.

7.What is the process for return or replacement of XMC4800F144K2048AAXQMA1?

All XMC4800F144K2048AAXQMA1 units undergo pre-shipment inspection (PSI). If there is an issue with XMC4800F144K2048AAXQMA1, returns or replacements are accepted under the following conditions:

1.Quantity discrepancies, incorrect items, or visible external defects (such as breakage or corrosion), acknowledged by Aetrix.

2.The issue is reported within 90 days of delivery.

3.The XMC4800F144K2048AAXQMA1 part is unused and in its original packaging.

Return procedure for XMC4800F144K2048AAXQMA1:

1.Submit a request within 90 days.

2.Obtain a Return Material Authorization (RMA) from Aetrix.

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