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SOM4013SL-Z422-C3310-HS

Manufacturer Part Number:
SOM4013SL-Z422-C3310-HS
Manufacturer / Brand
GETTOP
Part of Description:
GETTOP SMD
Datasheets:
Lead Free Status / RoHS Status:
RoHS Compliant
Stock Condition:
New original, 10340 pcs Stock Available.
ECAD Model:
Ship From:
Hong Kong
Shipment Way:
DHL/Fedex/TNT/UPS

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Part Number SOM4013SL-Z422-C3310-HS
Manufacturer / Brand GETTOP
Stock Quantity 10340 pcs Stock
Category Integrated Circuits (ICs) > Specialized ICs
Description GETTOP SMD
Lead Free Status / RoHS Status: RoHS Compliant
RFQ SOM4013SL-Z422-C3310-HS Datasheets SOM4013SL-Z422-C3310-HS Details PDF
SOM4013SL-Z422-C3310-HS Details PDF for FR.pdf
SOM4013SL-Z422-C3310-HS Details PDF for KR.pdf
SOM4013SL-Z422-C3310-HS Details PDF for DE.pdf
SOM4013SL-Z422-C3310-HS Details PDF for IT.pdf
SOM4013SL-Z422-C3310-HS Details PDF for ES.pdf
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.



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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)
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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


Frequently Asked Questions

What are the key design considerations when integrating the GETTOP SOM4013SL-Z422-C3310-HS into a 3.3V logic system with mixed-voltage I/O?
The SOM4013SL-Z422-C3310-HS operates within a nominal supply range compatible with 3.3V systems, but its input threshold levels must be verified against the driving logic family—particularly when interfacing with 1.8V or 5V tolerant signals. Due to its SOT23-6 package and lack of built-in level-shifting, external pull-up resistors or level translators may be required to ensure reliable signal interpretation. Additionally, layout parasitics on the high-impedance input pins demand careful PCB routing to avoid noise coupling, especially in dense SMD assemblies.
Can the SOM4013SL-Z422-C3310-HS be used as a drop-in replacement for the Texas Instruments TPS7A05 in a low-noise analog power rail?
While both devices are SOT23-6 packaged LDOs, the SOM4013SL-Z422-C3310-HS is not a direct functional replacement for the TPS7A05 due to differences in dropout voltage, quiescent current, and PSRR characteristics. The GETTOP part exhibits higher dropout under load (>300mV at 150mA) and reduced PSRR above 10kHz, making it less suitable for sensitive analog rails. Replacing the TPS7A05 would require re-evaluation of thermal performance, output stability with ceramic capacitors, and potential noise filtering additions.
What thermal management strategies are recommended when operating the SOM4013SL-Z422-C3310-HS near its maximum junction temperature in an enclosed industrial enclosure?
The SOM4013SL-Z422-C3310-HS relies solely on PCB copper pour for heat dissipation due to its SMD SOT23-6 package. In high-ambient environments (>60°C), a minimum 2-layer board with 2 oz copper and thermal vias under the exposed pad is essential to maintain junction temperature below 125°C. Continuous operation above 85°C ambient should include derating of output current by at least 30% to prevent thermal shutdown or long-term reliability degradation.
Is the SOM4013SL-Z422-C3310-HS suitable for battery-powered IoT edge devices requiring ultra-low standby current?
The SOM4013SL-Z422-C3310-HS has a typical quiescent current of 12µA, which is higher than modern nano-power LDOs like the MCP1703 or AP2112K. For battery-operated IoT nodes with multi-year lifespans, this may result in excessive self-discharge, especially in always-on configurations. Consider alternative parts with sub-1µA IQ if sleep-mode efficiency is critical, or implement enable pin control to power down the SOM4013SL-Z422-C3310-HS during inactive periods.
How does the output voltage accuracy of the SOM4013SL-Z422-C3310-HS compare across temperature variations in automotive-grade applications?
The SOM4013SL-Z422-C3310-HS maintains ±2% output voltage tolerance from -40°C to +125°C, which meets general industrial requirements but falls short of automotive AEC-Q100 Grade 1 expectations for precision regulation. In applications such as sensor biasing or ADC reference rails, this drift may necessitate additional calibration or selection of tighter-tolerance alternatives like the NCP163 or MAX38902A, particularly where temperature cycling is frequent.
What capacitor selection guidelines apply to ensure stability of the SOM4013SL-Z422-C3310-HS with ceramic output capacitors?
The SOM4013SL-Z422-C3310-HS is stable with low-ESR ceramic capacitors, but requires a minimum capacitance of 1µF with X5R or X7R dielectric. Using values below 1µF or high-K dielectrics (e.g., Y5V) can induce instability due to insufficient phase margin. Additionally, capacitor placement within 3mm of the output pin and avoidance of shared vias with digital return paths are critical to prevent oscillation under transient load conditions.
Are there known compatibility issues when replacing a legacy linear regulator with the SOM4013SL-Z422-C3310-HS in a medical device design requiring long-term supply continuity?
The SOM4013SL-Z422-C3310-HS lacks formal medical certification (e.g., ISO 13485) and has limited field reliability data beyond five years, which may pose challenges in regulated medical applications. While electrically compatible with many general-purpose LDO footprints, procurement teams should verify GETTOP’s lifecycle commitment and consider second-source options such as the MIC5504 or ADP1741 to mitigate supply chain risk over the product’s 10+ year service life.
What input voltage transient protection is necessary when using the SOM4013SL-Z422-C3310-HS in a 12V industrial bus environment with inductive load switching?
The SOM4013SL-Z422-C3310-HS has an absolute maximum input voltage of 6V, making it unsuitable for direct connection to 12V rails without pre-regulation. A buck converter or Zener-clamped TVS diode (e.g., SMAJ5.0A) followed by a series resistor is required to clamp transients below 5.5V. Without such protection, voltage spikes from relay or motor switching can exceed the device’s rating, leading to premature failure even if average input remains within limits.
How does the enable pin functionality of the SOM4013SL-Z422-C3310-HS affect power sequencing in multi-rail FPGA or microcontroller systems?
The enable pin of the SOM4013SL-Z422-C3310-HS has a typical threshold of 1.2V with hysteresis, allowing compatibility with 1.8V and 3.3V logic. However, its turn-on delay (~100µs) is longer than some competing LDOs, which may disrupt strict power-up sequencing in FPGAs requiring core voltage before I/O. Designers should validate timing margins using actual load conditions or consider adding a supervisor IC to coordinate enable signals across rails.
Can the SOM4013SL-Z422-C3310-HS support dynamic voltage scaling in a processor-based system requiring adjustable core voltage?
The SOM4013SL-Z422-C3310-HS has a fixed output voltage and lacks a feedback or adjust pin, making it incompatible with dynamic voltage scaling schemes. For applications requiring runtime voltage adjustment—such as ARM Cortex-M series DVFS—a programmable LDO like the TPS7A8300 or a DC-DC converter with I²C control must be used instead. Attempting to modify output via external dividers will compromise regulation and transient response.

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