S9S08LG32J0VLK >
S9S08LG32J0VLK
NXP USA Inc.
IC MCU 8BIT 32KB FLASH 80LQFP
24689 Pcs New Original In Stock
S08 S08 Microcontroller IC 8-Bit 40MHz 32KB (32K x 8) FLASH 80-LQFP (14x14)
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S9S08LG32J0VLK NXP USA Inc.
5.0 / 5.0 - (453 Ratings)

S9S08LG32J0VLK

Product Overview

7279641

DiGi Electronics Part Number

S9S08LG32J0VLK-DG

Manufacturer

NXP USA Inc.
S9S08LG32J0VLK

Description

IC MCU 8BIT 32KB FLASH 80LQFP

Inventory

24689 Pcs New Original In Stock
S08 S08 Microcontroller IC 8-Bit 40MHz 32KB (32K x 8) FLASH 80-LQFP (14x14)
Quantity
Minimum 1

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In Stock (All prices are in USD)
  • QTY Target Price Total Price
  • 1 7.7154 7.7154
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S9S08LG32J0VLK Technical Specifications

Category Embedded, Microcontrollers

Manufacturer NXP Semiconductors

Packaging Tray

Series S08

Product Status Active

DiGi-Electronics Programmable Not Verified

Core Processor S08

Core Size 8-Bit

Speed 40MHz

Connectivity I2C, LINbus, SCI, SPI

Peripherals LCD, LVD, POR, PWM, WDT

Number of I/O 69

Program Memory Size 32KB (32K x 8)

Program Memory Type FLASH

EEPROM Size -

RAM Size 1.9K x 8

Voltage - Supply (Vcc/Vdd) 2.7V ~ 5.5V

Data Converters A/D 16x12b

Oscillator Type Internal

Operating Temperature -40°C ~ 105°C (TA)

Mounting Type Surface Mount

Supplier Device Package 80-LQFP (14x14)

Package / Case 80-LQFP

Base Product Number S9S08

Datasheet & Documents

HTML Datasheet

S9S08LG32J0VLK-DG

PCN Design/Specification

Datasheet Update 25/Aug/2015

Environmental & Export Classification

RoHS Status ROHS3 Compliant
Moisture Sensitivity Level (MSL) 3 (168 Hours)
REACH Status REACH Unaffected
ECCN 3A991A2
HTSUS 8542.31.0001

Additional Information

Other Names
935311845557
568-14989
S9S08LG32J0VLK-DG
Standard Package
450

Reviews

5.0/5.0-(Show up to 5 Ratings)
微***世界
de desembre 02, 2025
5.0
服務團隊反應迅速,問題解決效果良好,令人感到安心。
Lumiè***ugace
de desembre 02, 2025
5.0
Après une question technique, ils ont offert une assistance rapide et efficace, bravo à leur équipe.
Stern***chiff
de desembre 02, 2025
5.0
Zuverlässigkeit und Qualität sind bei DiGi Electronics stets garantiert.
静***音
de desembre 02, 2025
5.0
手頃な価格と丁寧なサポート。理想的な企業だと感じます。
Brigh***yline
de desembre 02, 2025
5.0
Their customer support team goes above and beyond to ensure satisfaction after purchase.
Sun***ide
de desembre 02, 2025
5.0
Always satisfied with their prices and helpful staff.
Clea***sion
de desembre 02, 2025
5.0
The efficiency of their order processing system is remarkable, ensuring our supplies arrive on time.
Vivi***eams
de desembre 02, 2025
5.0
I am always satisfied with the overall value I receive from DiGi Electronics.
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Frequently Asked Questions (FAQ)

What are the key design risks when replacing an older 8-bit microcontroller with the NXP S9S08LG32J0VLK in a 12V automotive environment?

The S9S08LG32J0VLK operates within a 2.7V to 5.5V supply range, so direct integration into a 12V automotive system without proper voltage regulation introduces significant risk of overvoltage damage. Designers must implement a robust 5V LDO or buck regulator with transient protection (e.g., TVS diodes) to handle load dump and ISO 7637-2 pulses. Additionally, while the MCU supports -40°C to 105°C operation, thermal management under the hood requires careful PCB layout and grounding to avoid localized heating near power-hungry peripherals like the LCD driver. Failure to address these constraints can lead to premature field failures despite the part’s AEC-Q100-like robustness in industrial applications.

Can the S9S08LG32J0VLK safely drive an LCD display in a battery-powered handheld device, and what power-saving techniques should be used?

Yes, the S9S08LG32J0VLK includes a built-in LCD controller capable of driving up to 4x32 segments, making it suitable for low-power handheld displays. However, to maximize battery life, designers must configure the internal charge pump efficiently and use low-duty-cycle multiplexing. Leverage the MCU’s stop modes (especially Stop3) and wake only via RTC or external interrupts. Avoid polling loops and ensure unused I/Os are set to output-low or input-with-pull to minimize leakage. Without these practices, quiescent current can exceed 100 µA even in sleep, drastically reducing runtime in coin-cell applications.

How does the S9S08LG32J0VLK compare to the Microchip PIC18F47K40 for LIN bus communication in body control modules?

While both the S9S08LG32J0VLK and PIC18F47K40 support LIN 2.x via UART/SPI-based software stacks, the NXP part offers better integration with fewer external components—its internal oscillator is factory-trimmed to ±1% accuracy, reducing BOM cost and board space versus the PIC’s typical need for an external crystal for reliable LIN timing. However, the PIC18F47K40 provides hardware LIN state machine support and higher flash endurance (10k vs ~10k cycles, though both are similar). For cost-sensitive, space-constrained body electronics where software LIN is acceptable, the S9S00LG32J0VLK is often preferred; for mission-critical LIN masters requiring deterministic response, consider the PIC’s hardware advantage.

What are the reliability concerns when using the internal oscillator of the S9S08LG32J0VLK in precision timing applications like motor control PWM?

The S9S08LG32J0VLK’s internal oscillator, while convenient, has a ±1% tolerance over temperature and voltage—insufficient for high-accuracy PWM timing in brushless DC motor control without calibration. Drift over the -40°C to 105°C range can cause audible noise or torque ripple. To mitigate this, use the MCU’s built-in trimming registers during production programming based on measured frequency at room temperature, or synchronize PWM to an external 32.768 kHz crystal via timer input capture. For safety-critical drives, an external ceramic resonator or crystal is strongly recommended despite added cost and footprint.

Is it safe to replace a legacy Motorola MC9S08LG32 with the S9S08LG32J0VLK in an existing 80LQFP design without firmware changes?

Pin-for-pin and electrically compatible, the S9S08LG32J0VLK is a direct drop-in replacement for the legacy MC9S08LG32 in most cases, but firmware validation is essential. While the core instruction set and peripherals (ADC, timers, I/O) are nearly identical, subtle differences in reset behavior, power-on timing, and ADC calibration routines may cause startup glitches or measurement drift. Always revalidate ADC accuracy across the full voltage range and test brown-out recovery under marginal supply conditions. Additionally, confirm that your toolchain supports the latest S08 core revisions—older CodeWarrior versions may require patches to fully recognize the S9S08LG32J0VLK.

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