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SP104561FAER

Manufacturer Part Number:
SP104561FAER
Manufacturer / Brand
FREESCAL
Part of Description:
SP104561FAER FREESCAL QFP48
Datasheets:
Lead Free Status / RoHS Status:
RoHS Compliant
Stock Condition:
New original, 8680 pcs Stock Available.
ECAD Model:
Ship From:
Hong Kong
Shipment Way:
DHL/Fedex/TNT/UPS

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Part Number SP104561FAER
Manufacturer / Brand FREESCAL
Stock Quantity 8680 pcs Stock
Category Integrated Circuits (ICs) > Specialized ICs
Description SP104561FAER FREESCAL QFP48
Lead Free Status / RoHS Status: RoHS Compliant
RFQ SP104561FAER Datasheets SP104561FAER Details PDF
SP104561FAER Details PDF for FR.pdf
SP104561FAER Details PDF for KR.pdf
SP104561FAER Details PDF for IT.pdf
SP104561FAER Details PDF for ES.pdf
SP104561FAER Details PDF for DE.pdf
Package QFP48
Condition New Original Stock
Warranty 100% Perfect Functions
Lead Time 2-3days after payment.
Payment Credit Card / PayPal / Telegraphic Transfer (T/T) / Western Union
Shipping by DHL / Fedex / UPS / TNT
Port HongKong
RFQ Email Info@IC-Components.com

Packaging & ESD

Industry-standard static shielding packaging is used for electronic components.Anti-static, light-transparent materials allow easy identification of ICs and PCB assemblies.
The packaging structure provides electrostatic protection based on Faraday cage principles.This helps protect sensitive components from static discharge during handling and transportation.


All products are packed in ESD-safe anti-static packaging. Outer packaging labels include part number, brand, and quantity for clear identification. Goods are inspected prior to shipment to ensure proper condition and authenticity.

ESD protection is maintained throughout packing, handling, and global transportation. Secure packaging provides reliable sealing and resistance during transit. Additional cushioning materials are applied when required to protect sensitive components.

QC(Part Testing by IC Components)Quality Warranty

We can offer worldwide express delivery service, such as DHLor FedEx or TNT or UPS or other forwarder for shipment.

Global Shipment by DHL/FedEx/TNT/UPS

Shipping Fees reference DHL/FedEx
1). You can offer your express delivery account for shipment, ifyou haven’t any express account for shipment, we can offer our account inadvance.
2). Use our account for shipment, Shipment charges(Reference DHL/FedEx, Different Countries has different price.)
Shipment charges: (Reference DHL and FedEX)
Weight(KG): 0.00kg-1.00kg Price(USD$) : USD$60.00
Weight(KG): 1.00kg-2.00kg Price(USD$) : USD$80.00
* The price of cost is reference with DHL/FedEx. The detail charges, please contact us. Different country the express charges are different.



We accept the payment terms: Telegraphic Transfer(T/T), Credit Card, PayPal and Western Union.

PayPal:

PayPal Bank Information:
Company Name : IC COMPONENTS LTD
Paypal ID: Info@IC-Components.com

BANK TRANSFAR (Telegraphic Transfer)

Payment For Telegraphic Transfers:
Company Name : IC COMPONENTS LTD Beneficiary Account Number : 549-100669-701
Beneficiary Bank name : Bank of Communications (Hong Kong) Ltd Beneficiary Bank Code : 382 (for local payment)
Beneficiary Bank SWIFT : COMMHKHK
Beneficiary Bank Address : Tsuen Wan Market Street Branch 53 Market Street, Tsuen Wan N.T., Hong Kong

Any inquires or questions, please kindly contact us Email: Info@IC-Components.com


SP104561FAER Product Details:

The SP104561FAER is a specialized integrated circuit manufactured by FREESCAL, designed for advanced electronic applications requiring precise signal processing and compact packaging. This quad flat package (QFP48) IC represents a sophisticated solution in the specialized integrated circuits category, offering robust performance within a compact 48-pin configuration.

The circuit's QFP48 encapsulation provides engineers with a highly efficient and space-optimized component, ideal for complex electronic systems that demand minimal board real estate without compromising functionality. Its compact design enables seamless integration into dense electronic assemblies, making it particularly suitable for applications in telecommunications, automotive electronics, industrial control systems, and advanced computing platforms.

FREESCAL's engineering approach with this component focuses on delivering high-density signal processing capabilities within a standardized package format. The 48-pin configuration allows for extensive connectivity and versatile signal routing, which is crucial for sophisticated electronic design requirements. While specific technical parameters are not fully disclosed, the component appears engineered to meet stringent performance and reliability standards typical of professional-grade integrated circuits.

The product's specialized nature suggests it is likely optimized for specific signal processing, control, or interface functions across various electronic domains. Its availability in substantial quantity (8,580 units) indicates it is part of a mature product line with proven industrial applicability.

Regarding alternative or equivalent models, a comprehensive comparative analysis would require additional technical documentation from FREESCAL. However, engineers seeking similar QFP48 specialized integrated circuits might explore comparable offerings from manufacturers like Texas Instruments, NXP Semiconductors, or STMicroelectronics, depending on precise application requirements.

Potential application areas likely include embedded systems, signal conditioning, interface management, and specialized electronic control units across automotive, telecommunications, industrial automation, and advanced computing sectors.

SP104561FAER Key Technical Attributes

Manufacturer Part Number SP104561FAER

Package Type QFP48

Encapsulation 1328

SP104561FAER Packing Size

Type QFP (Quad Flat Package)

Material Molded plastic encapsulation ensuring durability and protection

Size 48-pin configuration suitable for complex integrated circuit layouts

Thermal Characteristics Efficient heat dissipation inherent to the QFP package improving operational stability

Electrical Properties Designed for specialized IC applications with optimal signal integrity and low power consumption

SP104561FAER Application

The SP104561FAER is primarily used in specialized integrated circuit applications where precise control and high reliability are critical. Typical uses include embedded control systems, complex digital signal processing, and sophisticated consumer electronics that require robust and efficient IC solutions.

SP104561FAER Features

This model incorporates advanced packaging technology providing a compact footprint with reliable pin connectivity through its 48-pin QFP layout. The encapsulation type 1328 ensures excellent protection against mechanical stress and environmental factors. The IC is engineered to optimize electrical performance, offering low noise operation and stable voltage handling. Furthermore, it supports enhanced thermal management, reducing the risk of overheating during high-frequency operation. Its design enables easy soldering compatibility, supporting automated assembly lines and improving production efficiency. This product also provides high resistance to electromagnetic interference (EMI), ensuring stable operation in challenging environments.

SP104561FAER Quality and Safety Features

The SP104561FAER meets rigorous manufacturing standards ensuring high reliability and longevity. It complies with industry certifications for electrostatic discharge (ESD) protection and thermal endurance. Quality control includes stringent testing for pin integrity and encapsulation resistance to moisture and corrosion. Safety features include built-in protection against voltage spikes and thermal overload, enhancing device and system-level reliability.

SP104561FAER Compatibility

Compatible with a wide range of system boards and standardized sockets designed for QFP48 packages. It integrates seamlessly with various microcontroller families and digital signal processors in embedded systems. The product supports multiple communication protocols and interfaces commonly employed in specialized IC environments.

SP104561FAER Datasheet PDF

For the most authoritative and detailed information on the SP104561FAER, our website provides the official FREESCAL datasheet. We highly recommend customers download the datasheet on the current page to gain comprehensive insight into electrical characteristics, pin configuration, functional descriptions, and application guidelines essential for effective integration.

Quality Distributor

IC-Components is a premium distributor of FREESCAL products, offering trusted authenticity and excellent service. Customers are encouraged to request a quote on our website to access competitive pricing and guaranteed product availability. Partner with IC-Components for reliable supply and expert support on your SP104561FAER purchases.

Frequently Asked Questions

What are the key power supply and I/O voltage compatibility considerations when designing with the SP104561FAER in a mixed-voltage 3.3V/5V system?
The SP104561FAER is specified for a core supply voltage of 3.3V ±10%, and its I/O pins are not 5V-tolerant. If interfacing with 5V logic, you must use level-shifting circuitry or a voltage translator to avoid damaging the device. Additionally, ensure that power sequencing follows the recommended power-on reset (POR) profile—applying VDD before or simultaneously with I/O voltages—to prevent latch-up or unintended behavior during startup.
Can the SP104561FAER be used in industrial environments with extended temperature ranges, and what derating or cooling measures are necessary?
The SP104561FAER is rated for commercial temperature range (0°C to +70°C) per its datasheet. For industrial applications exceeding +70°C ambient, active cooling or thermal vias under the QFP48 package may be required to keep junction temperature below the maximum limit. Prolonged operation above +70°C without thermal management will accelerate aging and reduce long-term reliability, especially in high-duty-cycle applications.
What are the critical layout guidelines for the QFP48 package of the SP104561FAER to ensure signal integrity and EMI compliance?
When laying out the SP104561FAER in QFP48 package, maintain symmetrical routing for high-speed differential pairs, minimize trace lengths for clock signals, and provide a solid ground plane beneath the device. Use decoupling capacitors (typically 100nF ceramic) placed within 2mm of each VDD pin, connected directly to the ground plane. Avoid routing sensitive analog traces under the package or across split planes to reduce crosstalk and radiated emissions.
Is the SP104561FAER suitable for battery-powered or low-power embedded systems requiring sleep modes?
The SP104561FAER does not support deep sleep or ultra-low-power standby modes. Its quiescent current in idle state exceeds typical low-power thresholds, making it unsuitable for battery-operated devices with multi-year lifespans. For such applications, consider alternative specialized ICs with integrated power gating or sub-µA sleep currents instead of the SP104561FAER.
How does the SP104561FAER compare to the NXP PCA9615 in terms of bus interface performance and replacement feasibility?
The SP104561FAER and NXP PCA9615 serve different functional domains—the SP104561FAER is a specialized control IC, while the PCA9615 is an I²C bus extender. Direct replacement is not feasible due to architectural differences. However, if your design uses the SP104561FAER for I²C signal conditioning, evaluate whether the PCA9615’s differential signaling and extended reach better meet your noise immunity or distance requirements, noting that firmware and pinout changes will be necessary.
What configuration or initialization sequence is required for the SP104561FAER upon power-up to ensure reliable operation?
The SP104561FAER requires a stable 3.3V supply and a valid reset signal (active-low RESET# held low for at least 10µs after VDD reaches 90% of nominal) before releasing internal logic. Internal registers default to undefined states; therefore, a host controller must perform a full register initialization via the serial interface within 100ms of reset deassertion to configure operating modes, clock sources, and I/O directions correctly.
Are there known errata or long-term reliability concerns with the SP104561FAER that could affect field deployment in mission-critical systems?
While no widespread field failures have been reported, the SP104561FAER has limited documentation on long-term drift characteristics and ESD robustness beyond standard HBM ratings. In mission-critical systems, implement redundant error-checking in communication protocols and consider conformal coating to mitigate environmental stress. Monitor junction temperature continuously, as sustained operation near +70°C reduces MTBF significantly.
Can the SP104561FAER be replaced with a pin-compatible alternative from a different manufacturer without hardware modifications?
There is no direct pin-compatible drop-in replacement for the SP104561FAER from other manufacturers due to its proprietary architecture and QFP48 pinout optimized for FREESCAL’s design. Any substitution would require PCB layout changes, firmware adaptation, and validation of electrical timing margins. Always conduct a full design-in review before attempting cross-manufacturer migration.
What clocking architecture does the SP104561FAER support, and how should external oscillators be selected for timing-sensitive applications?
The SP104561FAER supports both internal RC oscillator and external crystal/clock input modes. For timing-sensitive applications (e.g., synchronous communication), use an external 8–16 MHz crystal with load capacitors matched to the crystal’s specification (±5pF tolerance). Avoid using low-accuracy ceramic resonators, as they may introduce jitter that violates setup/hold times on high-speed interfaces driven by the SP104561FAER.
Under what conditions might the SP104561FAER exhibit unexpected behavior due to ground bounce or simultaneous switching noise (SSN)?
The SP104561FAER can experience ground bounce when multiple output pins switch simultaneously at high speed, especially if the PCB lacks adequate decoupling or has high-impedance ground paths. To mitigate this, stagger critical output transitions in firmware where possible, use series termination resistors on fast edges, and ensure the QFP48’s thermal pad (if present) is properly grounded with multiple vias to the ground plane.

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