MSPM0G3507 - 80MHz Cortex-M0+ 128KB MCU CAN-FD | TI
MPN: MSPM0G3507 β Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $0 | $0.00 |
| 10 | $0 | $0.00 |
| 100 | $0 | $0.00 |
| 500 | $0 | $0.00 |
| 1,000 | $0 | $0.00 |
Drop-in alternatives for MSPM0G3507 β same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
Quick Comparison Tool β Select alternative parts for side-by-side comparison:
MSPM0G3506
β Drop-Inπ Reference alternative (not in catalog)
MSPM0G3505
β Drop-Inπ Reference alternative (not in catalog)
MSPM0G3507-Q1
β Drop-Inπ Reference alternative (not in catalog)
MSPM0G3519
β Drop-Inπ Reference alternative (not in catalog)
MSPM0G3107
β Drop-Inπ Reference alternative (not in catalog)
MSPM0G3507 Maximum Ratings & Electrical Characteristics
| Core Processor | Arm Cortex-M0+ |
| Core Size | 32-bit |
| Maximum Clock Frequency | 80 MHz |
| Flash Memory | 128 KB (128K x 8) |
| SRAM | 32 KB |
| ADC Resolution | 12-bit |
| ADC Channels / Converters | 2 x ADC, 4 Msps |
| DAC | 1 x 12-bit |
| Comparators | 3 |
| Operational Amplifiers | 2 |
| CAN Interface | CAN-FD |
| Hardware Math Accelerator | MATHACL (trigonometric and division operations) |
| Supply Voltage Range | 1.62 V to 3.6 V |
| Operating Temperature | -40C to +125C |
| Package / Pin Count | 48-LQFP (7x7 mm); family also offered in 64-LQFP and 32-VQFN (5x5) |
| Mounting Type | Surface Mount |
| Data Converter Sum | ADC x2, DAC x1 |
| Peripherals | CAN-FD, MATHACL, OPA, COMP, DAC, ADC |
MSPM0G3507 48-lqfp (7x7 mm); family also offered in 64-lqfp and 32-vqfn (5x5) Pin Configuration Guide
Complete pinout information for MSPM0G3507 (48-lqfp (7x7 mm); family also offered in 64-lqfp and 32-vqfn (5x5) package) with 48-LQFP (7x7 mm); family also offered in 64-LQFP and 32-VQFN (5x5) pins. This digital IC includes GPIO, communication interfaces (UART, SPI, I2C), and power pins. Refer to the manufacturer datasheet for alternate pin functions and configuration options. Essential for embedded system design and PCB layout.
No detailed pinout data available for MSPM0G3507.
Refer to the datasheet for full pin configuration.
Estimated pin count: 48-LQFP (7x7 mm); family also offered in 64-LQFP and 32-VQFN (5x5) pins (digital package)
Safe Operating Area (SOA) & Thermal Characteristics
No official SOA curve available for this digital IC. Always operate within absolute maximum ratings specified in the datasheet. Ensure adequate cooling and derate as needed.
Typical Applications
MSPM0G3507 is suitable for 6 applications: Motor Control and Digital Power, Industrial Sensing and Signal Conditioning, CAN-FD Networked Modules, Medical Alarms and Portable Diagnostics, Building Automation and HVAC Control, Consumer and IoT Edge Devices.
Motor Control and Digital Power
The MSPM0G3507 fits motor control through its combination of dual 12-bit ADCs sampling at 4 Msps, which capture phase-current and bus-voltage feedback fast enough for current-loop closure, and the MATHACL accelerator, which offloads the trigonometric and division operations that software FOC implementations otherwise execute slowly on a Cortex-M0+. Placed in a BLDC or PMSM drive, the MCU reads shunt currents through its two integrated operational amplifiers, eliminating external front-end amplifiers and their offset and cost penalties. The trade-off versus TI's C2000 line is lower PWM resolution and fewer motor-specific peripherals, so it is best for cost-sensitive, sensor-based drives rather than high-performance sensorless systems.
Recommended
Industrial Sensing and Signal Conditioning
For industrial sensing nodes, the MSPM0G3507 integrates the complete analog chain: two operational amplifiers to amplify sensor outputs, three comparators for threshold detection independent of the CPU, the 12-bit DAC for stimulus or bias generation, and dual 4 Msps ADCs for high-speed acquisition. Operating from 1.62V to 3.6V with -40C to +125C capability, it survives factory-floor conditions and battery-backed installations. A typical chain connects a bridge or current-loop sensor to the OPA inputs, digitizes the conditioned signal at up to 4 Msps, and streams results over UART or SPI. Ultra-low-power MSP family heritage keeps sleep current low for periodically woken sensor nodes.
Recommended
CAN-FD Networked Modules
The MSPM0G3507's integrated CAN-FD controller makes it a natural node processor for industrial buses and automotive body/sensor networks running flexible-data-rate CAN. Unlike MCUs needing an external CAN controller, the on-chip module transmits frames up to the CAN-FD data phase rates while the 80 MHz core handles protocol stacks and application logic; MATHACL accelerates any signal processing between messages. Connect the CAN-FD TX/RX pins to a 3.3V CAN transceiver at the physical layer. Because the MSPM0G3507-Q1 variant shares the same die, one PCB design serves both commercial and automotive-qualified fleet requirements, and the MSPM0G3519 offers a same-footprint memory upgrade path.
Recommended
Medical Alarms and Portable Diagnostics
TI explicitly demonstrates medical alarm functionality with the MSPM0G3507 in a reference design developed in accordance with IEC 60601-1-8, using the MCU to implement primary alarm, backup alarm, and visual alarm outputs. The dual 4 Msps ADCs and integrated op-amps digitize physiological sensor signals in portable monitors, while the low-power MSP architecture extends battery life in bedside or ambulatory equipment. The -40C to +125C range and 1.62V minimum supply support battery-powered designs. Designers should follow TI's medical reference design documentation for alarm timing redundancy and verify the specific quality grade and documentation package required for their regulatory submission.
Recommended
Building Automation and HVAC Control
In building automation, the MSPM0G3507 controls fans, dampers, and pumps while hosting sensor interfaces and fieldbus communication. The 80 MHz Cortex-M0+ executes PID loops efficiently with MATHACL accelerating the control math, two op-amps condition NTC thermistor or pressure-sensor signals, and CAN-FD or UART links panels to a building controller. The 12-bit DAC can generate analog control references for variable-speed drives or actuator drivers. Extended -40C to +125C operation covers rooftop and mechanical-room environments where consumer-grade MCUs fail, and the cost-optimized MSPM0G positioning keeps BOM cost competitive in high-volume thermostat and controller applications.
Recommended
Consumer and IoT Edge Devices
For IoT edge products, the MSPM0G3507 combines an ultra-low-power MSP pedigree with enough analog integration to replace discrete sensor front ends: op-amps, comparators, DAC, and 4 Msps ADCs in a single chip reduce component count in smart meters, appliance controls, and connected accessories. The 128KB flash hosts BLE or sub-1GHz module drivers over UART/SPI alongside application firmware, and the 1.62V minimum supply directly matches single-cell lithium battery rails through a simple regulator. Cost-optimized family pricing, availability in a compact 5x5 mm VQFN, and TI's free SysConfig tooling shorten development cycles for high-volume consumer platforms.
Recommended
Recommended Products Summary
Engineering reference data for MSPM0G3507 β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | MSPM0G3506 | MSPM0G3505 | MSPM0G3519 | MSPM0G3107 |
|---|---|---|---|---|---|
| Package | 48-LQFP (7x7 mm) | 48-LQFP (7x7 mm) - same | 48-LQFP (7x7 mm) - same | 48-LQFP (7x7 mm) available - same footprint | 48-LQFP (7x7 mm) - same |
| Brand | Texas Instruments | Texas Instruments | Texas Instruments | Texas Instruments | Texas Instruments |
| Core / Frequency | Arm Cortex-M0+ 80 MHz | Arm Cortex-M0+ 80 MHz | Arm Cortex-M0+ 80 MHz | Arm Cortex-M0+ 80 MHz | Arm Cortex-M0+ 80 MHz |
| Flash Memory | 128 KB | 64 KB | 32 KB | Larger option (family high-memory member) | 128 KB |
| SRAM | 32 KB | 32 KB | 32 KB | [DATA_NEEDED] | 32 KB |
| ADC | 2 x 12-bit, 4 Msps | 2 x 12-bit, 4 Msps | 2 x 12-bit, 4 Msps | [DATA_NEEDED] | 12-bit ADC (reduced configuration) |
| CAN-FD | Yes | Yes | Yes | Yes | Yes |
| Unit 1-pc Price (as of 2026-08-30) | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] |
Key Differentiators
- Maximum flash memory in the pin-compatible cost-down ladder (vs MSPM0G3506)
- Fastest ADC pair in the Cortex-M0+ class within MSPM0G (vs MSPM0G3107)
- Same-die automotive upgrade path (vs MSPM0G3507-Q1)
Design Notes
Place a 100 nF ceramic decoupling capacitor at each VDD pin pair, as close to the pins as possible, plus a bulk 4.7-10 uF capacitor near the device; the analog supply and VREF inputs should be filtered separately (ferrite bead plus local capacitance) to preserve the full ADC performance of the dual 4 Msps converters. Keep the VREF trace short and guarded by ground. Use TI SysConfig to confirm pin muxing before layout freeze, since peripheral assignments change between the 32-VQFN, 48-LQFP, and 64-LQFP package options.
Do not assume package pin compatibility outside the MSPM0G350x family: engineers attempting STM32F103VGT6 substitution on the TI E2E forum were advised no pin-to-pin crossover exists. Within the family, confirm flash headroom before choosing MSPM0G3506/3505 cost-down parts, as 64KB/32KB flash replaces the 128KB of the G3507. When designing for future migration to MSPM0G3519, verify VREF+ / VREF- pin handling per the TI E2E guidance - unused VREF pins on the G3519 footprint require explicit review rather than being left floating by accident.
The two integrated operational amplifiers can replace external signal-conditioning stages, but PCB layout still determines accuracy: route sensor inputs differentially where possible, keep high-current motor or switching nodes away from OPA and ADC input traces, and use the on-chip comparators with internal references for fast protection functions so they react without ADC/software latency. When sampling at the full 4 Msps rate, sequence conversions with the ADC's hardware triggers from timers instead of software polling to avoid jitter in control loops.
Compliance Information
RoHS/lead-free status per standard TI active-product offering; the -Q1 variant is the automotive-qualified option. Detailed REACH and conflict-minerals declarations should be pulled from TI's product quality portal.