The rapid development of generative artificial intelligence is creating unprecedented demand for network bandwidth. Modern AI clusters may contain thousands or even hundreds of thousands of GPUs that must constantly exchange model parameters, training data, and inference results. As GPU performance increases, traditional 400G and 800G network connections can become a bottleneck. NVIDIA’s 1.6T optical transceivers are designed to address this challenge by delivering up to 1,600 gigabits per second of transmission capacity through a single OSFP module.
NVIDIA’s current 1.6T optical transceiver portfolio includes the MMS4C10 and MMS4C11 Gen2 Fully Retimed Optics products. The MMS4C10 is designed for XDR InfiniBand systems, while the MMS4C11 supports Ethernet networks. Both products use a twin-port OSFP architecture and provide two independent 800G optical interfaces inside one 1.6T module.
How the NVIDIA 1.6T Optical Module Works
The NVIDIA 1.6T transceiver uses eight electrical lanes, with each lane operating at 200 Gb/s via PAM4 modulation. PAM4 transmits two bits in each symbol by using four signal levels, allowing significantly more data to be carried without requiring an equivalent increase in symbol rate.
On the optical side, the module uses a 2×DR4 configuration. Each DR4 interface contains four 200G optical lanes and provides an aggregate bandwidth of 800Gb/s. Combining the two DR4 interfaces creates a total module capacity of 1.6Tb/s.
The module is equipped with two MPO-12/APC connectors and operates over 1310nm single-mode fibre. It supports transmission distances of up to 500 meters, making it suitable for switch-to-switch links, equipment rows, data halls, and large AI computing campuses. A single module can establish one complete 1.6T connection or two separate 800G connections to different switches or network adapters.
The term “Fully Retimed Optics,” or FRO, means that the module includes signal-retiming functions to recover and regenerate high-speed electrical signals. Retiming helps reduce jitter, compensate for signal degradation, and maintain reliable communication at 200G per electrical lane. This becomes increasingly important as lane speeds rise and electrical signal margins become smaller.
Key Features of the 1.6T Twin-Port OSFP Design
OSFP is well suited to next-generation networking because its larger physical size offers stronger thermal performance than many smaller transceiver form factors. Heat dissipation is especially important for 1.6T modules because they contain high-speed electrical components, optical transmitters, receivers, digital processing functions, and management electronics.
According to NVIDIA’s specifications, the 1.6T 2×DR4 transceiver has a maximum power consumption of 27 watts. It is hot-pluggable, supports CMIS 5.0 and later management interfaces, and includes secure firmware boot and update functions. The module is also offered in different thermal configurations.
An integrated heat-sink version can be used in systems where cooling is provided directly through the module. A riding heat-sink version is designed for platforms in which the equipment supplies the primary cooling structure. These configurations allow the transceiver to work with air-cooled switches, liquid-cooled systems, and densely integrated AI platforms.
Another important advantage is port density. A twin-port OSFP cage can provide two 800G network ports while occupying one module position. This allows high-capacity switches to support a large number of 800G connections without requiring twice as many physical cages.
Applications in NVIDIA AI Infrastructure
NVIDIA’s 1.6T optical modules are primarily designed for large-scale AI and high-performance computing networks. They can be used in NVIDIA Quantum-X800 InfiniBand and Spectrum-6 Ethernet platforms, as well as Vera Rubin NVL72 infrastructure.
For InfiniBand deployments, the 1.6T transceiver supports XDR connectivity. XDR InfiniBand is intended for extremely high-performance GPU clusters that require low latency, high throughput, and efficient collective communication. These capabilities are important during distributed AI training, where GPUs must repeatedly synchronise large quantities of data.
For Ethernet environments, the Ethernet version of the module supports next-generation Spectrum-X network architectures. Ethernet remains attractive to cloud providers and enterprises because it offers a broad ecosystem, familiar management tools, and compatibility with standard data centre infrastructure.
The 2×800G design also provides deployment flexibility. One 1.6T switch-side module can connect to two separate 800G devices, such as switches, network interface cards, or compute nodes. This breakout architecture can simplify cabling and help operators gradually transition from 800G to 1.6T networks. NVIDIA states that the transceiver is intended for platforms including Quantum-X800 switches, Spectrum-6 pluggable switches, and Vera Rubin NVL72 systems.
Benefits and Deployment Considerations

The main benefit of a 1.6T optical transceiver is its ability to double the bandwidth of an 800G module without doubling the number of front-panel module positions. Higher port bandwidth can reduce the number of cables and transceivers needed for a given switching capacity, improve rack-level network density, and support larger GPU clusters.
However, deploying 1.6T optics requires careful planning. The switch must support 200G electrical lanes and the correct twin-port OSFP design. Operators must also select suitable MPO-12/APC fibre cables, confirm connector polarity, manage module temperature, and maintain clean optical interfaces. Contamination on high-density MPO connectors can cause insertion loss and link failures, so inspection and cleaning are essential during installation.
Power and cooling must also be considered. Although 1.6T modules provide more bandwidth per port, their individual power consumption is higher than that of earlier-generation optics. Data centre designers must evaluate airflow, liquid-cooling options, module spacing, and total system power.
The Future of NVIDIA 1.6T Connectivity
NVIDIA’s 1.6T optical transceivers represent an important step from 800G networking toward multi-terabit AI fabrics. Their combination of 200G-PAM4 electrical lanes, twin 800G optical ports, single-mode DR4 transmission, and OSFP thermal design makes them suitable for the rapidly expanding bandwidth requirements of AI factories.
As NVIDIA’s Rubin-generation platforms and next-generation switches enter wider deployment, demand for compatible 1.6T transceivers, fibre cables, cleaning tools, and breakout solutions is expected to increase. QSFPTEK.COM will continue to follow the development of NVIDIA 1.6T optical connectivity and related industry standards. We will also work to provide reliable 1.6T optical modules and fibre connectivity solutions for next-generation AI, Ethernet, and InfiniBand networks.
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