Sealing rotating motion in a vacuum
Ferrofluidic seals, also known as magnetic liquid rotary seals, create a physical barrier using a ferrofluid suspended by a permanent magnet. Since their development in the 1970s, these devices have found use in specialized areas including computer disc drives and vacuum systems. In etching equipment, they function as rotary feedthroughs, transmitting rotational movement into a vacuum chamber. This enables processes like wafer handling or source rotation while maintaining the sealed environment necessary for semiconductor and flat panel display manufacturing.
Performance demands in semiconductor production
Etching and deposition processes impose strict requirements on feedthrough components. Each combination of construction materials and design features has practical limits regarding temperature, differential pressure, speed, and applied loads. Devices must be engineered to meet specific application criteria. Compared to conventional oil seals, magnetic fluid feedthroughs offer superior sealing performance with extremely low leak rates. Their non-contact sealing nature also reduces mechanical wear and particle generation, which is necessary for maintaining clean vacuum environments.
Design adaptations for harsh conditions
To function reliably in etching equipment, standard seal designs often require modification. Necessary features can include multiple ferrofluid stages for enhanced pressure holding, integrated water cooling for thermal management, and the use of customized or exotic materials. The nut mounting thread body configuration is one design approach that enables secure integration into equipment frames and manifolds. This mechanical interface must withstand operational vibrations and loads while preserving the seal's integrity.
A core component for modern fabrication
The use of these seals extends across several high-tech manufacturing sectors. They are employed in the production of semiconductors, flat panel displays, LEDs, and solar cells. Within semiconductor fabrication, they are mainly used in etching and deposition process tools. The technology accounts for a core part of the supply for these industries, indicating its established position in precision vacuum applications where reliable, low-contamination motion transfer is required.
We provide a range of these specialized feedthroughs and related components for industrial vacuum applications.

