Xiamen, Fujian Province, China – August 19, 2026 – On-Metal RFID tags are specifically designed for direct mounting on metal surfaces. Unlike ordinary RFID tags, their antenna structure, dielectric layer, encapsulation method, and impedance matching parameters are designed for metal mounting environments. Therefore, they maintain stable RFID communication even when in direct contact with steel plates, aluminum, metal equipment, tools, or mechanical structures.
Ordinary UHF RFID tags typically have their antennas tuned in free space or on non-conductive materials. When a tag is directly attached to a metal surface, the metal alters the electromagnetic boundary conditions near the antenna, causing changes in antenna impedance. In severe cases, this can lead to tag detuning, reducing the RF energy received by the chip and the strength of the backscattered signal. GS1 explicitly states that metal can cause ordinary RFID tags to detune, while dedicated tags designed for metal environments can be used on tools, equipment, and other industrial assets.
Therefore, in engineering, determining whether an RFID tag is suitable for a metal surface cannot solely rely on “UHF,” “ISO 18000-6C,” or the chip model. What truly needs to be confirmed is whether the tag’s antenna has been properly matched and validated for the target metal environment.
Why do ordinary RFID tags fail when attached to metal?
To understand on-metal RFID tags, it’s essential to first understand the impact of metal on RFID antennas. Taking a common passive UHF RFID tag as an example, the tag is essentially a radio frequency system composed of an RFID IC and an antenna. The reader emits UHF electromagnetic waves, the tag antenna extracts energy from the radio frequency field, the chip is activated, and then returns data to the reader via backscatter.
In an interference-free environment, the tag antenna can be impedance matched according to the target frequency band, ensuring that the antenna input impedance and the complex impedance of the RFID chip are as conjugate matched as possible, thereby improving power transmission efficiency. However, when an ordinary tag is directly attached to a metal surface, the situation changes.
Metal has high conductivity, which significantly alters the electromagnetic field distribution near the tag. The current generated by the tag antenna interacts with the induced current on the metal surface, causing the antenna, originally tuned for free space, to develop new impedance characteristics. The result may manifest as a shift in resonant frequency, decreased antenna efficiency, reduced power available to the chip, and weakened backscatter signal.
In short, it’s not that RFID itself can’t work near metal, but rather that the antennas of ordinary tags aren’t designed with the boundary condition of “attached to metal” in mind.
How does an On-Metal RFID tag solve the metal detuning problem?
An On-Metal RFID tag doesn’t simply add a layer of glue to the back of a regular RFID tag. Instead, it modifies the antenna structure and electromagnetic environment to enable the tag to function correctly under metal boundary conditions.
A common approach is to add a dielectric spacer between the RFID antenna and the metal surface, combined with a conductive backplate or a specific antenna structure. This structure creates a controlled electromagnetic coupling environment between the antenna and the metal, thus avoiding severe detuning that occurs when ordinary tags are directly attached to metal.
The implementation methods vary across different products. Some On-Metal RFID tags use foam, ABS, PC, PVC, ceramic, FR4, or other low-loss materials to form the spacer; others use PCB antennas, patch antennas, short-circuit structures, or other specialized UHF antenna topologies.
Therefore, “On-Metal” is not a standalone chip technology, but rather an RFID antenna and structural design optimized for the installation environment.
Why does the size of an On-Metal RFID tag affect performance?
For UHF RFID, antennas typically need to achieve resonance and impedance matching in the target frequency band within a limited size. The smaller the tag size, the more limited the antenna design space becomes. Therefore, miniaturized On-Metal RFID tags often require more complex antenna structures or higher-precision tuning. This is why it’s usually difficult to achieve the best performance simultaneously for both “ultra-small anti-metal tags” and “long-range anti-metal tags.”
If a project requires tags to be only 20 × 10 mm, while simultaneously aiming for stable identification over tens of meters on metal tools, then the engineering requirements must be reassessed. There is a real trade-off between tag size, metal size, installation location, and reader configuration.
In recent years, research has also focused on optimizing miniaturized RFID antennas for metal surfaces, such as using meander-line and patch structures to improve RF efficiency within a limited size by enhancing impedance matching. Therefore, “tag size” is itself a radio frequency (RF) parameter, not just a visual parameter.
Should On-Metal RFID Tags be fixed with adhesive or screws?
Adhesive mounting is suitable for equipment housings, tools, cabinets, vehicle parts, and assets where drilling is inconvenient. For industrial environments, the reliability of adhesives under temperature changes, oil contamination, humidity, UV radiation, and long-term vibration needs to be considered.
Screw mounting is more suitable for scenarios requiring long-term fixation and high mechanical strength, such as metal molds, industrial equipment, containers, construction machinery, and large assets.
Screw fixing also involves an easily overlooked RF issue: the screw itself is also metal. If the screw is located in a high-current region of the antenna, it may alter the antenna’s impedance and radiation characteristics. Therefore, it cannot be simply assumed that “drilling a hole in the tag and fixing it with a metal screw” will not affect RF performance.
A 2026 study on UHF metal-surface RFID antennas specifically designed for metal screw mounting, reducing the impact of the central screw on antenna performance by creating a current zero-point region at the antenna center.
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