The P1011NXN2HFB is a high-performance, power-efficient processor from NXP Semiconductors, designed to meet the demanding needs of embedded networking and telecommunications applications. This product is part of NXP's QorIQ P1 series, which is renowned for its advanced system-on-chip (SoC) architectures that integrate multicore processing with cutting-edge connectivity features.
Key Features
- Core: The P1011NXN2HFB boasts a single e500 core, built on Power Architecture technology, providing a robust and reliable processing solution with speeds of up to 800MHz.
- Connectivity: With a host of integrated peripherals, this processor includes Gigabit Ethernet controllers, USB 2.0 interfaces, and PCI Express lanes, facilitating versatile connectivity options for various system designs.
- Memory Support: It supports DDR2 and DDR3 memory types, allowing for flexible memory solutions that cater to the specific requirements of the application.
- Security: The product incorporates advanced security features, including a cryptographic engine and a secure boot process, ensuring secure data transactions and system integrity.
- Power Efficiency: Designed with power efficiency in mind, the P1011NXN2HFB is suitable for environments where energy consumption is a critical factor.
Applications
The versatility of the P1011NXN2HFB makes it ideal for a wide range of applications, including:
- Networking equipment such as routers, switches, and gateways
- Industrial control and automation systems
- Wireless infrastructure and base stations
- Enterprise storage and NAS devices
Technical Specifications
| Attribute |
Details |
| CPU |
e500 Core, up to 800MHz |
| Memory Support |
DDR2, DDR3 |
| Connectivity |
Gigabit Ethernet, USB 2.0, PCI Express |
| Security Features |
Cryptographic Engine, Secure Boot |
| Package |
23 x 23 mm 399-Pin MAPBGA |
In summary, the P1011NXN2HFB processor from NXP is a feature-rich solution that provides robust performance, extensive connectivity, and advanced security, all while maintaining energy efficiency. Its adaptability makes it a top choice for developers and engineers looking to create reliable, high-performance embedded systems.