NXP Semiconductors MKV10Z64VLF7R
- Part No.:
- MKV10Z64VLF7R
- Manufacturer:
- NXP Semiconductors
- Category:
- Microcontrollers
- Package:
- 48-LQFP
- Datasheet:
-
MKV10Z64VLF7R.pdf
- Description:
- IC MCU 32BIT 64KB FLASH 48LQFP
- Quantity:
- Payment:

- Shipping:

Inventory:2,028
Please send an inquiry. Send us your inquiry, and we will respond immediately.
Product details
Overview
MKV10Z64VLF7R from NXP Semiconductors is a 75 MHz Arm Cortex-M0+ microcontroller with 64 KB flash, 16 KB RAM, dual 16-bit ADCs (1.2 MS/s), two FlexTimers for motor control, and no FlexCAN interface-designed for industrial motor control, inverters, and low-end power conversion systems operating from –40°C to 105°C.
For engineers reviewing the MKV10Z64VLF7R datasheet, MKV10Z64VLF7R pinout, MKV10Z64VLF7R application, or MKV10Z64VLF7R equivalent, this page delivers verified technical context, package mapping to 48-pin LQFP (7×7 mm, 0.5 mm pitch), confirmed peripheral set (SPI/I²C/UART/FTM/ADC/DAC), and validated alternative options for motor-control-focused embedded designs.
Technical Context
The MKV10Z64VLF7R implements an Arm Cortex-M0+ core with up to 75 MHz operation, supported by a Multipurpose Clock Generator (MCG) with frequency-locked loop and internal/external reference options. Its memory subsystem includes 64 KB of TFS flash and 16 KB SRAM, with Memory Mapped Divide and Square Root (MMDVSQ) acceleration.
Peripheral architecture centers on motor control: two 6-channel FlexTimers (FTM) with complementary PWM and dead-time insertion, four 2-channel FTM modules with quadrature decoder support, dual 16-bit SAR ADCs (12-bit mode, 1.2 MS/s), and a 12-bit DAC-enabling precise current/voltage sensing and actuator drive in closed-loop systems.
Key Specifications
| Parameter | Value and Actual Design Meaning |
|---|---|
| CPU Core | Arm Cortex-M0+, up to 75 MHz - enables real-time motor control loops with sub-microsecond interrupt latency |
| Flash / RAM | 64 KB flash / 16 KB RAM - sufficient for field-oriented control (FOC) algorithms and sensor fusion firmware |
| ADC Performance | Dual 16-bit SAR ADCs, 1.2 MS/s in 12-bit mode - supports simultaneous current sampling across three phases |
| Timer System | Two 6-channel + four 2-channel FlexTimers - provides six independent PWM outputs with programmable dead time for 3-phase inverter gate drive |
| Operating Range | 1.71–3.6 V supply, –40°C to 105°C ambient - qualified for industrial motor drives and outdoor power converters |
| Communication | SPI, I²C, two UARTs - enables communication with position encoders, external sensors, and host controllers |
| Analog Peripherals | 12-bit DAC, two analog comparators with 6-bit DAC references - supports analog feedback conditioning and overcurrent protection |
Pinout & Package
This device is packaged in a 48-pin LQFP (7 × 7 × 1.4 mm, 0.5 mm pitch), RoHS-compliant and moisture-sensitive level 3 per J-STD-020.
| Pin/Terminal | Circuit Role | Design Meaning |
|---|---|---|
| VDD / VSS | Power / Ground | Digital supply pins requiring local 100 nF decoupling; VDDA/VSSA must be routed separately for ADC/DAC stability |
| PTA0–PTA31, PTB0–PTB15, PTC0–PTC7, PTD0–PTD7 | GPIO / Peripheral Multiplexing | Configurable digital I/O with up to 35 usable pins; many support high-drive (18 mA) or analog functions (ADC/DAC/comp) |
| ADC0_SE0–ADC0_SE15, ADC1_SE0–ADC1_SE15 | Analog Input Channels | Up to 32 single-ended or 16 differential inputs across two ADCs-mapped to dedicated port pins per signal multiplexing table |
| FTM0_CH0–FTM0_CH5, FTM1_CH0–FTM1_CH5 | PWM Output / Capture Input | Hardware-timed outputs supporting center-aligned PWM, edge-aligned PWM, and input capture for encoder quadrature decoding |
| SPI0_PCS0–SPI0_SCK, I2C0_SCL–I2C0_SDA, UART0_TX–UART1_RX | Serial Interface Signals | Shared with GPIO; require pull-up resistors on I²C lines and proper slew rate configuration for noise immunity |
Key Features
| Feature | Design Value |
|---|---|
| Dual 16-bit ADCs with hardware trigger synchronization | Enables simultaneous sampling of phase currents and DC-link voltage without software coordination overhead |
| FlexTimer modules with dead-time insertion and fault protection | Prevents shoot-through in 3-phase inverter bridges via configurable blanking time and external fault pin response |
| Bit Manipulation Engine (BME) | Reduces GPIO bit-set/clear/swap operations from multiple instructions to single-cycle atomic execution |
| Nine low-power modes including VLLS0 (0.098 µA typical) | Supports rapid wake-from-sleep response (<5 µs) while maintaining RAM retention for stateful motor control recovery |
| Hardware CRC module and 80-bit unique ID | Enables secure firmware update validation and device-specific calibration data binding in production |
Applications
| Industrial Motor Drives | Inverter Systems |
|---|---|
Use Scenario: Closed-loop vector control of 3-phase AC induction or BLDC motors in HVAC blowers and pump systems. IC Role / Device Role / Timing Role: Real-time execution of field-oriented control (FOC) algorithm, synchronized ADC sampling, and six-channel PWM generation with <100 ns timing precision. Use Value: Enables >95% efficiency at partial load via precise torque/current regulation and adaptive switching frequency modulation. | Use Scenario: Grid-tied solar microinverters requiring isolated DC-AC conversion with anti-islanding detection. IC Role / Device Role / Timing Role: Primary controller managing MPPT tracking, DC-link voltage regulation, and sinusoidal PWM synthesis using dual ADCs and FTM modules. Use Value: Achieves THD <3% at full load through hardware-synchronized 16-bit ADC sampling and jitter-free PWM output. |
| Low-End Power Conversion | Industrial Sensor Nodes |
Use Scenario: Digital control of resonant LLC converters in telecom power supplies with adaptive frequency tuning. IC Role / Device Role / Timing Role: High-resolution timer-based frequency sweep generator interfacing with analog feedback via 12-bit DAC and comparator inputs. Use Value: Reduces component count by replacing discrete oscillator and comparator circuits with integrated mixed-signal peripherals. | Use Scenario: Smart motor starter modules monitoring winding temperature, vibration, and supply quality in factory automation. IC Role / Device Role / Timing Role: Edge node processor acquiring multi-channel analog sensor data, performing FFT-based vibration analysis, and reporting via UART to PLC. Use Value: Eliminates external ADC and DSP by executing real-time spectral analysis directly on the MKV10Z64VLF7R's 75 MHz core with hardware-accelerated math units. |
Equivalent & Alternatives
The following parts are listed as comparable options for similar motor-control microcontroller applications.
| Alternative Part | Technical Difference | Application Difference | Selection Advice |
|---|---|---|---|
| MKV11Z64VLF7 | Same core, package, and memory; adds FlexCAN 2.0B interface and increases I/O count to 35 | Required where CAN bus integration is needed for distributed motor control networks | Select MKV11Z64VLF7 when CAN communication with higher-layer controllers or other drives is mandatory |
| STM32F072RBT6 | Arm Cortex-M0, 48 MHz, 128 KB flash, 16 KB RAM, one 12-bit ADC (1 MSPS), one advanced timer (6-channel PWM) | Lacks dual ADCs and quadrature decoder support; requires external components for full 3-phase FOC implementation | Choose STM32F072RBT6 only for cost-sensitive, lower-performance applications without simultaneous multi-channel sampling needs |
Compared with MKV11Z64VLF7, the MKV10Z64VLF7R offers identical motor-control peripherals but omits FlexCAN-reducing BOM cost and layout complexity where CAN is unnecessary. Versus STM32F072RBT6, it delivers superior analog acquisition concurrency and deterministic timer resolution critical for high-fidelity motor control.
Availability
MKV10Z64VLF7R is available at Aetrix Electronics and suitable for industrial motor drives, inverter systems, and low-end power conversion applications requiring stable component supply, long-term lifecycle assurance, and automotive-grade thermal reliability.
Supply support for MKV10Z64VLF7R 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
NXP Semiconductors is a global semiconductor leader specializing in secure connectivity solutions for automotive, industrial, and IoT markets, with deep expertise in microcontrollers, RF, and analog technologies.
The Kinetis V Series-including MKV10Z64VLF7R-is designed specifically for cost-optimized, high-precision motor control and power conversion, leveraging TFS flash technology and tightly integrated analog/motor peripherals to reduce system-level component count.
FAQ
Does MKV10Z64VLF7R include a FlexCAN interface?
No, MKV10Z64VLF7R does not include FlexCAN functionality. This is explicitly confirmed in the ordering information table, which lists "No" under the FlexCAN column for all MKV10Z part numbers-including MKV10Z64VLF7R. FlexCAN is only available on KV11-series variants such as MKV11Z64VLF7. Designers requiring CAN must select the KV11 family or add an external CAN transceiver.
What package type and dimensions does MKV10Z64VLF7R use?
MKV10Z64VLF7R uses a 48-pin LQFP package measuring 7 × 7 × 1.4 mm with 0.5 mm pitch, as documented in the NXP package drawing 98ASH00962A1. This package is pin-compatible with other Kinetis V-series MCUs in the same footprint and supports standard reflow profiles for lead-free assembly.
How many ADC channels does MKV10Z64VLF7R support, and what is their maximum sampling rate?
MKV10Z64VLF7R integrates two independent 16-bit SAR ADCs, each supporting up to 16 single-ended or 8 differential inputs. In 12-bit mode, they achieve a combined sampling rate of up to 1.2 million samples per second (MS/s), with hardware-triggered synchronization enabling simultaneous sampling across both converters-critical for three-phase current reconstruction.
What is the maximum operating frequency and voltage range for MKV10Z64VLF7R?
MKV10Z64VLF7R operates at up to 75 MHz in high-speed run mode, with a supply voltage range of 1.71 V to 3.6 V and guaranteed operation across –40°C to +105°C ambient temperature. These specifications are validated per JEDEC JESD47 and meet industrial-grade reliability requirements for continuous-duty motor control applications.
Which development tools and software support MKV10Z64VLF7R?
MKV10Z64VLF7R is fully supported by NXP's S32 Design Studio (legacy Kinetis SDK), MCUXpresso IDE, and Processor Expert. Hardware evaluation is enabled via the FRDM-KV10Z32 board (compatible with MKV10Z64VLF7R pinout and peripherals), and production programming uses the OpenSDA debug interface with SWD protocol compatibility.
MKV10Z64VLF7R Specifications
- Product attributes
- Attribute value
- Manufacturer:
- NXP Semiconductors
- Package/Case:
- 48-LQFP
- Series:
- Kinetis KV
- Packaging:
- Tape & Reel (TR)
- Product Status:
- Active
- Programmable:
- Not Verified
- Core Processor:
- ARM® Cortex®-M0+
- Core Size:
- 32-Bit Single-Core
- Speed:
- 75MHz
- Connectivity:
- I2C, SPI, UART/USART
- Peripherals:
- DMA, LVD, POR, WDT
- Number of I/O:
- 35
- Program Memory Size:
- 64KB (64K x 8)
- Program Memory Type:
- FLASH
- EEPROM Size:
- -
- RAM Size:
- 16K x 8
- Voltage - Supply (Vcc/Vdd):
- 1.71V ~ 3.6V
- Data Converters:
- -
- Oscillator Type:
- Internal
- Operating Temperature:
- -40°C ~ 105°C (TA)
- Grade:
- -
- Qualification:
- -
- Mounting Type:
- Surface Mount
- Supplier Device Package:
MKV10Z64VLF7R FAQ
1.How can I place an order for MKV10Z64VLF7R through Aetrix?
Please submit a Request for Quotation (RFQ) for MKV10Z64VLF7R on Aetrix. Our sales agent will provide a competitive quotation and guide you through the order confirmation once you accept the terms.
2.Are the price and stock information for MKV10Z64VLF7R reliable?
The price and inventory of MKV10Z64VLF7R are updated periodically and may fluctuate due to market conditions. Stock and pricing data are typically refreshed every 24 hours. Quotation validity for MKV10Z64VLF7R is usually 5 days.
3.What payment methods are accepted for MKV10Z64VLF7R?
We accept Wire Transfer, PayPal, Credit Card, Western Union, MoneyGram, and Escrow for MKV10Z64VLF7R transactions.
Note: Certain payment methods may incur a processing fee.
4.How is shipping managed for MKV10Z64VLF7R?
MKV10Z64VLF7R orders can be shipped via leading logistics carriers, including DHL, UPS, FedEx, TNT, or Registered Mail.
Once your MKV10Z64VLF7R order is processed, you will receive an email with the shipment details and tracking number.
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 MKV10Z64VLF7R?
For technical support, including MKV10Z64VLF7R datasheets, pinout diagrams, or application guidance, please contact our engineering support team. They can provide detailed documentation and assistance for your MKV10Z64VLF7R requirements.
6.How does Aetrix verify that MKV10Z64VLF7R is sourced from the original manufacturer or authorized distributors?
All MKV10Z64VLF7R 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 MKV10Z64VLF7R meets industry standards.
7.What is the process for return or replacement of MKV10Z64VLF7R?
All MKV10Z64VLF7R units undergo pre-shipment inspection (PSI). If there is an issue with MKV10Z64VLF7R, 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 MKV10Z64VLF7R part is unused and in its original packaging.
Return procedure for MKV10Z64VLF7R:
1.Submit a request within 90 days.
2.Obtain a Return Material Authorization (RMA) from Aetrix.
MKV10Z64VLF7R Tags

-
ATTINY4-TSHR
Microchip Technology

-
ATTINY10-TSHR
Microchip Technology

-
ATTINY10-TS8R
Microchip Technology

-
ATTINY202-SSNR
Microchip Technology

-
ATTINY202-SSFR
Microchip Technology

-
ATTINY402-SSNR
Microchip Technology

-
PIC16F15213T-I/MF
Microchip Technology

-
PIC16F15213-E/MF
Microchip Technology

-
PIC10F200T-I/OT
Microchip Technology

-
ATTINY412-SSNR
Microchip Technology

-
PIC10F202T-I/OT
Microchip Technology

-
ATTINY404-SSNR
Microchip Technology
Tech Hub
A practical engineering guide to 3.3V and 5V logic compatibility, input thresholds, resistor dividers, translator ICs, MOSFET level shifting, I2C pull-ups, timing limits and power-sequencing risks.
The 74HC595 uses push-pull logic outputs, while the TPIC6B595 uses 50 V open-drain DMOS sinks for higher-power loads. This guide compares timing, current limits, 3.3 V interfacing, load wiring, thermal…
The 74HC595 converts serial data into eight stable parallel outputs. This guide covers pin functions, shift and storage timing, OE and MR behavior, drive-current limits, cascading, voltage compatibilit…
A technical comparison of level-sensitive latches and edge-triggered flip-flops, covering timing windows, setup and hold limits, master–slave operation, time borrowing, race-through, HDL inference and…
A D latch stores one bit while Enable controls when data can pass. This reference covers gate-level operation, truth tables, transparency, setup and hold timing, LE versus OE, common ICs and practical …
An SR latch stores one bit through cross-coupled feedback. This engineering reference covers NOR and NAND implementations, truth tables, forbidden-state recovery, gated operation, switch debouncing, fa…
Latch circuits retain one bit through feedback. This technical reference covers SR and D latches, truth tables, transparency, timing limits, latch-versus-flip-flop behavior, applications and common log…
An engineering guide to LED driver operation, constant-current and constant-voltage outputs, linear and switching topologies, dimming, IC selection, calculations, replacement compatibility, and fault c…
Operational amplifier guide covering op amp basics, feedback, ideal vs real op amps, common configurations, buffer circuits, offset, bias current, gain-bandwidth, slew rate, rail-to-rail limits and sel…
Jumper cables guide covering safe connection order, red and black clamp placement, final ground connection, cable gauge, length, clamp quality, copper vs CCA cables, jump starter comparison and battery…

