your custom Switch Fabric, AI, or HPC ASIC with Credo’s SerDes IP.
- TSMC
- 12nm
- FFC
- Silicon Proven
Multi-Protocol PHY IP cores provide physical-layer signaling for high-speed serial interfaces in modern SoC and ASIC designs.
These IP cores support shared physical-layer signaling for multiple serial standards to improve reuse and platform flexibility, giving designers reusable building blocks for reliable signaling across advanced serial protocols and custom links
This catalog allows you to compare Multi-Protocol PHY IP cores from leading vendors based on signal integrity, data rate, power efficiency, and process node compatibility.
Whether you are designing data center SoCs, networking chips, storage platforms, or multi-standard embedded systems, you can find the right Multi-Protocol PHY IP for your application.
your custom Switch Fabric, AI, or HPC ASIC with Credo’s SerDes IP.
32G NRZ Multi-Protocol PHY
PCIe 5.0 Serdes PHY IP, Silicon Proven in TSMC 12FFC
This Peripheral Component Interconnect Express (PCIe) x4 PHY is compliant with PCIe 5.0 Base Specification with support of PIPE 5…
Ultra-Low Latency 32Gbps SerDes IP in TSMC 12nm FFC
As real-time workloads—from high-frequency trading to low-latency AI and edge analytics—push system responsiveness to the limit, …
Ultra-Low Latency 32Gbps SerDes IP in TSMC 22nm ULP
As real-time workloads—from high-frequency trading to low-latency AI and edge analytics—push system responsiveness to the limit, …
As the demand for higher data rates and increased serial I/O density intensifies, the performance requirements for next-generatio…
10Gbps Multi-Link and Multi-Protocol PHY IP
Designed for multi-protocols running on single PHY macro and is compliant with USB 3.1, PCI Express (PCIe) 3.1, DisplayPort TX v1.4, Embedded DisplayPort TX v1.4b, SATA 3, QSGMII
Our SerDes architecture is in production in processes ranging from 12nm to 180nm and at rates from 100Mbps to 32.75Gbps and prove…
32Gbps SerDes IP in TSMC 12nm FFC
The relentless demand for higher data throughput in data centers and high-performance computing (HPC) systems drives the need for…
32Gbps SerDes IP in TSMC 22nm ULP
The relentless demand for higher data throughput in data centers and high-performance computing (HPC) systems drives the need for…
PCIe 2.0 Serdes PHY IP, Silicon Proven in TSMC 40ULP
The full gamut of PCIe 2.0 Base operations is covered by PCIe 2.0 transceiver IP.
PCIe 2.0 Serdes PHY IP, Silicon Proven in TSMC 16FFC
The whole spectrum of PCIe 2.0 Base applications is offered by PCIe 2.0 transceiver IP.
PCIe 2.0 Serdes PHY IP, Silicon Proven in TSMC 12FFC
A wide variety of PCIe 2.0 Base applications are available with PCIe 2.0 transceiver IP.
PCIe 2.0 Serdes PHY IP, Silicon Proven in TSMC 7nm
A comprehensive selection of PCIe 2.0 Base applications is offered by PCIe 2.0 transceiver IP.
PCIe 3.0 Serdes PHY IP, Silicon Proven in TSMC 22ULP
The PCIe 3.0 PHY IP is designed to support increased applications with its low-power, multi-lane, high-performance design.
PCIe 3.0 Serdes PHY IP, Silicon Proven in TSMC 16FFC
High-bandwidth applications can avail advantage of PCIe 3.0 PHY IP's high performance, multi-lane scalability, and low-power layo…
PCIe 3.0 Serdes PHY IP, Silicon Proven in TSMC 12FFC
To support high-bandwidth applications, PCIe 3.0 PHY IP provides a low-power, multi-lane, high-performance design.
PCIe 3.0 Serdes PHY IP, Silicon Proven in TSMC 7nm
For the high-bandwidth applications, PCIe 3.0 PHY IP offers high-performance, multi-lane capabilities, and low-power design.
PCIe 4.0 Serdes PHY IP, Silicon Proven in TSMC 16FFC
For high-bandwidth applications, the PCIe 4.0 PHY IP delivers high-performance, multi-lane capabilities and a low-power design.
PCIe 4.0 Serdes PHY IP Silicon Proven in TSMC 7nm
The high-bandwidth applications benefit from the low power, multi-lane, and high-performance PCIe 4.0 PHY IP's design.