MCP2510-I/SO Microchip Integrated Circuit (Small Outline Packages) In Stock
MCP2510-I/SO is a stand-alone CAN controller with SPI interface supporting CAN 2.0B at up to 1 Mb/s, operating from 3 V to 5.5 V in an 18-pin SOIC package. Suitable for automotive and industrial CAN bus networks.
- Manufacturer
- Microchip
- Package
- Small Outline Packages
- Pin Count
- 18
- Lifecycle
- ACTIVE
- Datasheet
- MCP2510-I/SO Datasheet PDF
- Category
- Integrated Circuit
- Price
- From $3.0100(MOQ 1)
- Temp Range
- -40.0°C to 85.0°C
- RoHS
- Compliant
- Lead Time
- 3–7 business days
- Shipping
- DHL Express · Worldwide
Key Features
- Full CAN 2.0A and CAN 2.0B protocol support at up to 1 Mb/s
- SPI interface up to 5 MHz for easy microcontroller integration
- Two receive buffers with six 29-bit hardware acceptance filters
- Operating voltage range from 3.0 V to 5.5 V
- One-shot transmission mode for deterministic messaging
- 18-pin SOIC package with low standby current
Applications
MCP2510-I/SO is used in automotive body control modules, industrial automation, and embedded systems requiring CAN connectivity where the host microcontroller lacks an on-chip CAN peripheral. Its SPI interface allows any microcontroller to access a CAN 2.0B-compliant network. It is also found in medical devices and building automation systems for reliable multi-node communication.
Specifications
| Pbfree Code | Yes |
| Manufacturer Package Code | SOIC-18 |
| Reach Compliance Code | Compliant |
| Factory Lead Time | 6Weeks |
| Date Of Intro | 1999-06-07 |
| YTEOL | 3 |
| Additional Feature | OPERATES AT 3V MINIMUM SUPPLY @ 16 MHZ |
| Boundary Scan | NO |
| Bus Compatibility | SPI |
| Clock Frequency-Max | 25MHz |
| Communication Protocol | SYNC; BIT ;BYTE |
| Data Encoding/Decoding Method | NRZ |
| Data Transfer Rate-Max | 0.125MBps |
| JESD-30 Code | R-PDSO-G18 |
| JESD-609 Code | e3 |
| Low Power Mode | YES |
| Number of Serial I/Os | 1 |
| On Chip Data RAM Width | 8 |
| Package Body Material | PLASTIC/EPOXY |
| Package Equivalence Code | SOP18,.4 |
| Package Shape | RECTANGULAR |
| Package Style | SMALL OUTLINE |
| Peak Reflow Temperature (Cel) | 260 |
| Qualification Status | Not Qualified |
| RAM (words) | 14 |
| Screening Level | TS 16949 |
| Supply Current-Max | 10mA |
| Supply Voltage-Max | 5.5V |
| Supply Voltage-Min | 4.5V |
| Supply Voltage-Nom | 5V |
| Surface Mount | YES |
| Technology | CMOS |
| Temperature Grade | INDUSTRIAL |
| Terminal Finish | Matte Tin (Sn) |
| Terminal Form | GULL WING |
| Terminal Pitch | 1.27mm |
| Terminal Position | DUAL |
| Time@Peak Reflow Temperature-Max (s) | 40 |
| uPs/uCs/Peripheral ICs Type | SERIAL IO/COMMUNICATION CONTROLLER, LAN |
| ## MCP2510-I/SO Alternates Showing results | Image |
| Package | Small Outline Packages |
Compliance & Regulatory
| RoHS Status | Compliant |
| Lead-Free | Yes (Pb-Free) |
| Moisture Sensitivity Level | MSL 1 |
| ECCN | EAR99 |
| HTS Code | 8542.39.00.01 |
| Country of Origin | Thailand |
Alternate & Equivalent Parts
Compatible alternatives and drop-in replacements for MCP2510-I/SO:
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Frequently Asked Questions
What CAN bus data rate does the MCP2510-I/SO support and what protocol versions are compatible?
MCP2510-I/SO supports CAN 2.0A and CAN 2.0B protocols at data rates up to 1 Mb/s. Both standard 11-bit and extended 29-bit identifiers are supported, making it compatible with the vast majority of automotive and industrial CAN networks.
How does the MCP2510-I/SO connect to a host microcontroller and what interface speed is supported?
The MCP2510-I/SO uses an SPI interface operating at up to 5 MHz to communicate with a host microcontroller. This allows any MCU with an SPI port, regardless of whether it has a built-in CAN peripheral, to interface with a CAN 2.0B network. The 18-pin SOIC footprint keeps board area small.
How many acceptance filters does the MCP2510-I/SO provide and why does that matter for real-time systems?
MCP2510-I/SO provides six 29-bit hardware acceptance filters and two mask registers across its two receive buffers. Hardware filtering reduces the interrupt rate and CPU overhead on the host microcontroller, which is critical for deterministic real-time response in automotive ECUs and industrial controllers.
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