48 x 1GbE RJ45 ports + 4 x 100GbE QSFP28 uplinks
Ideal for out-of-band management or ToR use
Open networking support: Cumulus Linux / ONIE
Non-blocking, wire-speed architecture
ASIC-level telemetry for real-time monitoring
16MB shared buffer to handle burst traffic
Compact 1U rack-mountable design
Suitable for cloud, storage, and analytics workloads
Energy-efficient hardware with enterprise reliability
The NVIDIA Spectrum SN2201 switch is part of the advanced SN2000 series, the second generation of high-performance, open networking switches engineered specifically for modern data center architectures.
With 48 RJ45 1GbE ports and 4 QSFP28 100GbE uplinks, the SN2201 is the perfect solution for out-of-band (OOB) management, top-of-rack (ToR) switching, and high-density aggregation, offering unmatched versatility, performance, and reliability.Whether you’re building a hyperscale cloud infrastructure, deploying software-defined networks, or managing hybrid enterprise environments, the SN2201 provides the robust features and intelligent telemetry you need to meet today’s networking demands and tomorrow’s innovations.
With this flexibility, enterprises and cloud providers can build truly programmable, SDN-enabled infrastructure that aligns with their evolving DevOps and NetOps strategies.
| Feature | Details |
| Model | NVIDIA Spectrum SN2201 |
| Form Factor | 1U Rackmount |
| Port Configuration | 48 × RJ45 1GbE + 4 × QSFP28 100GbE |
| Network Interface | RJ45 and QSFP28 |
| Data Rates | 1GbE for access ports, 100GbE for uplinks |
| Operating Systems | Cumulus Linux / ONIE |
| Buffer Size | 16MB fully shared |
| Management Capabilities | ASIC-level telemetry, SDN-friendly |
| Use Cases | OOB management, ToR, enterprise aggregation |
| Cooling | Front-to-back airflow support (dependent on model) |
| Power Supply Options | Redundant, hot-swappable (model-specific) |
| Technology | Ethernet |
| SKU | OPN | Data Rate | Interface | Ports | Technology |
| 920-9N110-00F1-0C0 | MSN2201-CB2FC | 1GbE / 100GbE | RJ45 + QSFP28 | 48 × 1GbE + 4 × 100GbE | Ethernet |
| 920-9N110-00R1-0C0 | MSN2201-CB2RC | 1GbE / 100GbE | RJ45 + QSFP28 | 48 × 1GbE + 4 × 100GbE | Ethernet |
Whether you’re deploying it as an OOB switch, a ToR platform, or part of a larger leaf-spine design, the SN2201 guarantees performance, flexibility, and future-readiness in every packet.
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The NVIDIA Quantum-X800 platform is the next generation of NVIDIA Quantum InfiniBand, purpose-built for trillion-parameter-scale AI models and comprised of the NVIDIA Quantum-X800 InfiniBand switch, NVIDIA ConnectX®-8 SuperNIC, and LinkX cables and transceivers.
The new platform supports advanced hardware-based, In-Network Computing with Scalable Hierarchical Aggregate Reduction Protocol (SHARP)™ v4, adaptive routing, and telemetry-based congestion control, enabling a new frontier of AI innovation.
The NVIDIA Quantum-X800 InfiniBand switch provides 144 ports of 800Gb/s connectivity per port. It includes hardware-based In-Network Computing with SHARP v4, adaptive routing, telemetry-based congestion control, performance isolation capabilities, and a dedicated port supporting the Unified Fabric Manager (UFM). NVIDIA Quantum-X800 switches also add advanced power-efficiency features, including low-power link state and power profiling.
The NVIDIA Quantum-X800 switch provides increased performance and power efficiency to significantly reduce scientific computing, AI workload completion time, and energy costs.
Quantum-X silicon photonics switches further reduce total power consumption and latency by minimizing the distance and number of connections between optics and electronics.
The NVIDIA ConnectX-8 SuperNIC delivers 800Gb/s connectivity with ultra-low latency and supports the latest in advanced In-Network Computing. Based on the ConnectX architecture, it continues to provide accelerated MPI hardware engines, quality of service, adaptive routing, congestion control, and more.
The NVIDIA Quantum-X800 platform connectivity options with the NVIDIA LinkX® interconnect portfolio provide the maximum flexibility for building a preferred network topology, using connectorized transceivers with passive fiber cables and linear active copper cables (LACCs).
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