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3M 1245 EMI shielding tape is a single-sided pressure-sensitive adhesive construction consisting of an embossed copper foil carrier and a conductive acrylic adhesive. The backing thickness is 0.035 mm, the conductive adhesive layer is 0.046 mm, and the total tape thickness is 0.081 mm. Standard rolls are supplied in 16.5 m lengths with widths from 6.35 mm to 304.8 mm. The manufacturer’s technical data sheet lists a surface resistivity of 0.005 Ω/sq and a through-adhesive resistance of 0.03 Ω. Peel adhesion to stainless steel is reported at 35 oz/in (38.3 N/100 mm) under ASTM D3330. The product is recognized under UL 510 with a 130 °C continuous-use temperature rating and is declared compliant with RoHS Directive 2011/65/EU as amended. The embossed copper pattern distinguishes this tape from smooth copper foil products because the embossing permits lengthwise elongation and allows the tape to be dressed over radiused enclosure seams without tearing.
The conductive path is divided between the copper foil carrier and the z-axis conductive adhesive. The copper carrier provides a surface resistivity of 0.005 Ω/sq; the filled acrylic adhesive reduces through-adhesive resistance to 0.03 Ω per the manufacturer method. Surface resistivity is measured under ASTM D257. Through-adhesive resistance is determined by clamping the tape between two copper electrodes under defined pressure and contact area. In installed seams, the limiting resistance is frequently the adhesive-substrate interface rather than the bulk copper foil. Substrate roughness, oxide formation, and roller pressure affect the final value.
Mechanical tensile properties are specified at 25 lb/in (438 N/100 mm) with elongation of 5% under ASTM D3759. The embossed copper carrier yields locally at the embossed crowns during lamination, allowing the tape to conform to uneven sheet-metal junctions. A smooth 0.035 mm copper foil would wrinkle and lift at sharp corners; embossing lowers bending stiffness without reducing carrier thickness. Peel adhesion is measured at 180° on stainless steel after a defined dwell time. The reported 35 oz/in value is an initial adhesion value. Production-level adhesion increases with roller pressure and post-lamination dwell time, but no heat cure is required.
Enclosure-level shielding effectiveness is not a fixed material constant. A continuous copper foil section without apertures can exceed 70 dB from 30 MHz to 1 GHz, but published data for this specific configuration is limited. Installed tape seams introduce apertures at overlaps, corners, and tape edges. The attenuation of a taped seam is therefore lower than the theoretical attenuation of the foil layer. Compliance measurements for enclosure attenuation are performed under IEEE 299. Near-field magnetic shielding below 10 MHz depends more on magnetic permeability than on copper conductivity; copper foil tape alone is not an effective low-frequency magnetic absorber.
Rolls are converted by rotary die cutting, razor slitting, or manual trimming. The release liner is removed without stretching the embossed copper, because manual stretching beyond 5% elongation opens the embossed crowns and reduces contact area. On zinc-plated steel and chromated aluminum, the seam is cleaned with 70% isopropanol and dried before lamination. A hard rubber-covered roller is used to apply pressure along the tape length, displacing trapped air and forcing the conductive adhesive into the surface roughness. The tape is overlapped at least 10 mm at seam ends and burnished at the overlap. On painted, anodized, or e-coated surfaces, the adhesive may bond mechanically but does not create an electrical path to the base metal. A conductive conversion coating or a mechanical ground lug is required at the termination point.
Soldering to the copper backing is possible for grounding wires or solder tabs. The acrylic adhesive cannot tolerate solder reflow temperatures above its 130 °C continuous rating. Localized soldering to the foil backing with a temperature-controlled iron is limited to less than 3 s; heat input above 260 °C at the adhesive interface causes adhesive decomposition, outgassing, and loss of peel strength. When soldering is required, the tape is pre-tinned, and the joint is made at the tape edge where heat can dissipate into the substrate.
The conductive acrylic pressure-sensitive adhesive consists of an acrylic polymer matrix and a dispersed conductive filler. The filler network provides z-axis conduction through particle-to-particle contacts. When the tape is applied under pressure, the filler network compresses and reduces through-adhesive resistance. The bond line does not require heat curing. The adhesive is sensitive to silicone mold-release agents, fluorinated greases, and hydrocarbon oils. These contaminants deposit on the substrate and prevent wetting of the metal oxide surface. Cleaning with 70% isopropanol removes ionic contamination but does not remove silicone oils. Silicone-contaminated surfaces require a volatile siloxane remover followed by isopropanol.
Ketones such as acetone and methyl ethyl ketone swell the acrylic matrix and separate the filler network. Esters used in conformal coating thinners produce a similar effect. Aromatic solvents such as toluene and xylene can dissolve the acrylic matrix. The tape is not suitable for immersion cleaning processes or vapor degreasing operations. Alcohol wiping after application may be performed with isopropanol, but prolonged alcohol soaking at the edge can cause lifting. The adhesive also absorbs moisture; sustained humidity above 90% RH reduces adhesion to steel and can create microvoids at the adhesive-substrate interface.
The copper backing is subject to oxidation, sulfidation, and fingerprint corrosion. Fingerprints on the copper surface before lamination increase contact resistance; handling with nitrile gloves is required. Storage at 16–27 °C and 40–60% RH preserves the release liner and adhesive tack. The manufacturer’s standard shelf life for conductive acrylic foil tapes is 24 months from date of shipment when stored in original packaging. Rolls exposed to humid air for more than 6 months may show brown tarnish at exposed foil edges. Edge tarnish does not affect bulk conductivity but increases resistance at overlap joints. Tarnished edges are cut back or cleaned with a mild acid flux before soldering.
Compared with 3M 1181, which uses a smooth copper foil carrier, 3M 1245 is specified where seams and corners require an embossed, lower-bending-stiffness foil. 3M 1181 is selected for flat, continuous shielding surfaces where wrinkle-free application can be controlled. 3M 1345 is the tin-plated variant of the embossed construction; the tin plating provides solderability and oxidation resistance after storage. The tin plating changes the outer surface color but keeps electrical resistance low. 3M 1345 is often selected for grounding applications in telecommunication cabinets where corrosion resistance is required. Conductive fabric tapes offer higher drape and conformability around cable harnesses but have higher surface resistivity and are not solderable. Aluminum foil tapes are lighter and lower cost, but aluminum oxide surface layers produce higher contact resistance and are not recommended for low-impedance grounding.
| Standard or directive | Designation / condition | Status |
|---|---|---|
| RoHS Directive 2011/65/EU | Including 2015/863 restricted substances | Declared compliant |
| REACH Regulation (EC) 1907/2006 | SVHC candidate list | No SVHC above 0.1% w/w per manufacturer declaration |
| UL 510 | Component program for adhesive tape | Recognized, 130 °C temperature rating |
| ASTM D257 | Surface resistivity | 0.005 Ω/sq |
| ASTM D3330 | Peel adhesion to stainless steel | 35 oz/in (38.3 N/100 mm) |
Form-in-place gaskets are compressible gap fillers that recover between service cycles. 3M 1245 is a permanent conductive foil tape and does not offer comparable compression recovery. The tape is not intended to fill gaps above 0.1 mm. The conductive acrylic adhesive forms a bond that must be cut to open a removable cover. Repeated closure cycles degrade the foil and adhesive, and the tape requires replacement after each cover removal. For high-cycle service openings, the fixed seam may be treated with 1245, while the removable interface is fitted with a metal spring-finger contact or a conductive elastomer gasket. The foil tape is used to bond cable shield drain wires to connector backshells and to ground internal seams that are not opened during field service.
Production experience on rack-mount enclosure seams indicates that contact resistance rises when the tape is applied over nonconductive chromate films, even though the copper carrier remains conductive. The adhesive-substrate interface becomes the limiting resistance. Contact resistance values have been observed to rise from below 0.05 Ω to above 0.5 Ω when the tape is installed over a nonconductive chromate conversion coating without a bare-metal ground pad. This failure is not visible in bulk conductivity measurement of the tape itself; it is an interface failure. The corrective action is to mask the seam area, remove the chromate coating, or use a serrated ground contact that penetrates the coating. On castings with mold-release residue, adhesion failure under peel testing occurs at the adhesive-substrate interface rather than within the adhesive. Cleaning with isopropanol and light mechanical abrasion restores the bond.