By leveraging standard CMOS fabrication processes, silicon photonics allows cost-effective mass production of optical components, including modulators, photodetectors, waveguides, and optical transceivers, supporting the growing demand for bandwidth-intensive. By leveraging standard CMOS fabrication processes, silicon photonics allows cost-effective mass production of optical components, including modulators, photodetectors, waveguides, and optical transceivers, supporting the growing demand for bandwidth-intensive. But despite significant advancements and potential market opportunities, existing manufacturing processes are limiting the scalability and mass production of silicon photonics components. Manufacturing is often manual and labor-intensive due to the intricacy and precision required in fabricating. As global AI leaders double down on next-generation compute, a pivotal question dominates the industry: why has silicon photonics—despite massive investment and engineering talent—still not crossed the threshold into true mass production? By 2025, the demand for high-speed AI computation has. STMicroelectronics just entered high-volume production of its PIC100 silicon photonics platform — the manufacturing technology behind the 800G and 1. 6T optical modules going into every major AI data center buildout. For network engineers, this is the plumbing layer beneath your VXLAN EVPN overlays. Silicon photonics—the technology of manufacturing the hundreds of components required for optical communications with CMOS processes—has been employed to produce coherent optical modules for metro and long-distance communications for years. The increasing bandwidth demands brought on by AI are now. The global silicon photonics market size accounted for USD 2. 86 billion in 2025 and is predicted to increase from USD 3.