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From Cutting Tool Engineering

Photochemical etching carves out role in manufacturing

Precision manufacturing is evolving rapidly, and engineers now face two main challenges: miniaturization and the creation of more complex geometries.

March 30, 2026By Mark Bowden

Precision manufacturing is evolving rapidly, and engineers now face two main challenges: miniaturization and the creation of more complex geometries. As components in cars, medical devices and electronics get smaller, traditional methods like stamping and machining often reach their limits. When designs need tiny channels, fine meshes or smooth edges on thin metal, mechanical methods can cause stress, deformation or high tooling costs that slow innovation. To address these challenges, many manufacturers now use photochemical etching, a process that uses controlled chemicals to shape metal with high precision.

The Evolution of Micromanufacturing Chemical etching, sometimes called industrial etching or photochemical machining, removes material with temperature-controlled chemicals to create specific shapes and patterns. This method enables the production of detailed designs that stamping cannot achieve while preserving the metal’s original properties. Because it avoids the stress of punch-and-die methods, etching keeps parts flat, stress and burr-free, which is essential for high-performance applications where even tiny flaws can cause problems. Chemical etching can be done on sheets or panels, but the most advanced version is reel-to-reel photochemical etching.

This method uses a continuous metal reel and offers clear advantages over batch processing. Reel-to-reel processing combines multiple steps into a single continuous system, significantly reducing manual handling and the risk of defects. Reel-to-reel etching is well-suited to automation because the parts remain attached to a continuous strip. This allows them to proceed directly to other automated steps, such as forming, plating, molding and assembly.

This setup lowers manufacturing costs and keeps parts aligned for later steps. Also, continuous operation helps the equipment remain stable, which means tighter tolerances and more consistent results than stop-and-start sheet processing. From Cleaning to Etching Making a high-quality etched part begins with careful preparation. A reel of thin metal, usually between 0.02 mm (0.00079″) and 0.5 mm (0.01969″) thick, passes through a cleaning line.

This step is important because any dirt or residue can affect how well the photoresist sticks, which could cause defects. The metal is cleaned in several stages, including chemical and electrolytic cleaning, water rinses, acid activation, and final hot-air drying to ensure a spotless surface. After cleaning, the metal is transferred to an ISO 5 Class 100 cleanroom for lamination. A dry photosensitive film, also known as a photoresist film, is applied to both sides of the metal simultaneously under heat and pressure.

This photoresist acts as a protective layer that shapes the part. Next, the metal is placed between two glass photomasks, which hold the negative image of the part. High-intensity ultraviolet light then flashes through the masks, hardening the photoresist where it needs to stay. Using glass photomasks in this setup keeps alignment within 5 µm, which is needed for today’s tiny components.

After exposure, the metal is developed in a solution that removes the unexposed photoresist, revealing the bare metal for etching. The strip then moves into the etching chambers, where chemicals are sprayed onto both sides at once. Advanced systems, such as those used by ENNOVI, employ titanium chambers that withstand high temperatures and pressures to deliver better results. The process removes excess metal to achieve the final shape.

At the end, the remaining photoresist is removed, and the parts are rinsed, dried and inspected.

Unlocking Micro-Features

Engineers often choose chemical etching because it can make features that stamping cannot. Since it uses liquid chemicals instead of mechanical punches, it is not limited by the same physical restrictions. This means it can create holes, slots and webs almost equal to the material’s thickness, as well as complex shapes like hexagons or ovals that would be too expensive to produce with a die. One special feature of this process is half-etching, which involves the removal of material from only one side of the metal to a set depth.

This enables manufacturers to create detailed 3D features such as grooves, microchannels for fluid flow, and pockets for parts. It is also used to make tabs that hold the part during processing, but can be broken off easily later. Half-etching produces sharp edges and tips, such as those required for medical needles, without requiring additional grinding or sharpening. Making micro-channels with half-etching also enables new solutions for thermal management and fluid control.

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