BOPP 电容膜用什么料:不加任何添加剂才是最高门槛

应用领域 发布时间: 2026-09-15 4108 阅读

What material is used for BOPP capacitor film? Let's clarify one thing first: the highest threshold for PP specialized material for capacitor film is not performance indicators, but 'not adding any additives.' The essence of modified PP granulation is adding auxiliaries. If you add ash content, it cannot be reduced, which is a conflict in the process route, not an issue of skill level.

What material is used for BOPP capacitor film? It needs to have an ash content reduced to the ppm level.

This is the most frequently asked question about this capacitor film line. The latter part is often: 'It is used for metallization, so it cannot have any lubricant, anti-blocking agent, or nucleating agent.'

Let's start with the most important point that needs to be clarified first: the highest standard for capacitor film-grade PP special material is not any performance index, but that it "contains no additives". The ash content must be reduced to tens of mg/kg, which is at the ppm level, and metal ions like aluminum, silicon, titanium, and calcium must each be kept below a few mg/kg. No slip agents, anti-blocking agents, nucleating agents, or antistatic agents can be added.

The modification and granulation of PP is essentially about 'adding things.' By adding additives, the performance becomes easier to adjust and use; but adding additives also increases ash content and the amount of extractables. Therefore, in this field, the statement 'we are not doing well enough' is wrong—it’s a conflict in the process route itself, not a matter of skill. Emphasizing this point upfront is much more useful than just taking an order, and this is the main point this article wants to clarify.

1. The six operating conditions of BOPP capacitor film: dielectric loss and breakdown field strength are product definition parameters

Conclusion first: In the six dimensions, load and lifespan are not measured by 'bearing capacity / years,' but by 'electric field strength / thousands of hours of high-temperature aging'; appearance is not just 'good enough,' it must have no fish eyes, no impurities, and the metallized layer must not delaminate.

DimensionActual operating conditionsRequirements for the materials
TemperatureThe film-forming melt is approximately (240±5)℃; with the downstream metallization, vapor deposition, and capacitor operating temperatures increasing with application upgrades, the drive systems of new energy vehicles have already reached the 125–150℃ level.Heat-resistant oxidation aging, small thermal shrinkage, dielectric stability at high temperatures
LoadPrimarily electric field stress: the working field strength of the film is often in the range of 200–400 V/μm, with higher requirements in scenarios such as DC-Link.High volume resistivity, low dielectric loss, high breakdown field strength
MediumMetalized layer (zinc/aluminum), impregnated oil or resin; operating under long-term strong electric fieldNo precipitation, does not contaminate the medium, stable metal adhesion
LifespanLong service life: New energy scenarios evaluated for 15 years / thousands of hours of high-temperature agingLong oxidation induction period, extremely low precipitates, anti-aging
AppearanceThe film surface is clean, free of fish eyes, and has low haze; the metallized layer adheres firmly and does not peel.Granule appearance: no impurities, haze <6%, yellow index ≤1.0
ComplianceCapacitor factory certification (DC-Link / high temperature resistant / long life), complete machine verificationHandled by the capacitor factory and inspection agency, not at the material end

The load dimension is the easiest to be mistakenly applied with the wrong template. Many people interpret the 'strength' of structural components as an understanding of the capacitor film, but in fact, it withstands the electric field; what really dictates material selection are the volume resistivity, dielectric loss factor, breakdown field strength, and the 'purity' that stabilizes them.

2. Comparison of material routes: polymer-grade homopolymer, modified granules, finished film, each party manages one section

Conclusion first: On the capacitor film chain, polymer-grade material, modified granulation, and finished film are three separate things, handled by three different parties; a modified PP granulation line can only handle the extreme peripheral auxiliary sections, not the main part.

Let's put the boundaries upfront: The capacitive film-grade PP special material is a polymer-grade homopolymer directly supplied from the polymerization end of large petrochemical plants, not a product from modified pelletizing lines. It requires a meso index M type ≥98.0%, R type ≥96.0%, ash content ≤30 mg/kg, metal elements each limited to a few mg/kg, and no accelerators, anti-blocking agents, nucleating agents, or antistatic agents are added—its purity is determined at the polymerization and purification stages and cannot be supplemented downstream.

RouteSubjectWhose hands will it fall intoCan modified PP be granulated?
① Homopolymer PP for polymer-grade (capacitor film grade)Natural color granules, high uniformity, ash content at ppm level, no additivesLarge Petrochemical Plant Units (Polymerization and Purification)Don't do it. Purity is determined at the polymerization end; it cannot be supplemented at the modification end.
② Modified PP granulation (with additives)Filling / Enhancing / Flame-retardant / Smooth and other modified particlesModified granulation line (this type in our factory)It can be done, but the ash content and precipitation cannot meet the capacitor film threshold.
③ Finished capacitor film (metalized film / roughened film)BOPP Bi-axially Oriented Polypropylene Film RollFilm Factory (Biaxial Stretching Production Line)No. Biaxial stretching and granulation are two separate sets of equipment systems.

None of the three routes is 'better'; they are just different divisions of labor: ① Determine whether the film can be both pure and stretchable, ② Solve the problem of 'how to make added functions practical,' ③ Decide the electrical performance and appearance of the film roll itself. For capacitor films, ① and ③ are the main focus, while ② conflicts as soon as it enters the main focus.

Why the conflict? See where the ash comes from.

Ash / Metal SourceFrom which stepThe effect on the capacitor membrane
Nucleating agents, antioxidants, lubricants, and other additives themselvesModified granulation must be addedDirectly increasing the ash content and introducing metal ions cause a decrease in breakdown field strength
Fillers (talc, glass fiber, barium sulfate, etc.)Reinforced / Filled ModificationAsh content is soaring and unevenly distributed
Carrier resins and low molecular weight materialsMasterbatch, compatibilizerPrecipitable matter increases, and dielectric loss rises
Equipment wear metalGranulation screw / die headExcessive levels of aluminum, silicon, titanium, and calcium metal ions

Text version of the conclusion: The source of ash corresponds almost exactly to 'why additives are added in modified granulation'; adding additives makes it durable, easy to demold, and smooth to adjust, yet capacitor films insist on 'adding nothing at all'. The two routes diverge right from the starting point.

3. ★ Selection Criteria Table for Capacitor Film Grade PP: Ash content at ppm level is the primary criterion

Conclusion first: The first item on this table is the primary criterion for capacitor films—ash content and metal ions; what deserves more attention is the third column 'how to measure,' not 'what to measure.'

According to the public group standard T/CPCIF 0332-2024 "Plastics - Special polypropylene (PP) materials for capacitor films" (current version), the naming method for special materials is PP-H FC03R (R = roughened film) / PP-H FC03M (M = metallized film), with character group 3 representing the nominal MFR value. The main requirements are as follows:

IndicatorThreshold Value (Typical)Verification Method · Standard NumberCommon FailuresCommon solution
Ash content≤30 mg/kgGB/T 9345.1, Platinum Crucible Direct Combustion Method A, 850±50℃Excessive ash content, breakdown field strength decreaseGo through aggregation-level additive-free channels
Metal elements (Aluminum / Silicon / Titanium / Calcium)≤6 / ≤3 / ≤3 / ≤6 mg/kgElemental analysis after ashingExcessive metal ions, increase in dielectric lossAggregate End Purification
Waiting Standard IndexM type ≥98.0%, R type ≥96.0%GB/T 2412 (Arbitration)Uneven crystallization, thickness fluctuationPetrochemical plant grade designation
Tensile Elastic Modulus / Yield Stress≥1300 MPa (1 mm/min) / ≥34.0 MPa (50 mm/min)GB/T 1040.2-2022, Type 1A specimenInsufficient film strength, tearing under tensionGrade designated
Film Haze / Yellowness Index / Volatile Content<6% / ≤1.0 / ≤0.20%GB/T 2410; Yellow index and volatile matter according to the corresponding methodsAppearance downgrade, later precipitationAggregate-level purification
Melting temperature167.0±3.0℃DSC methodProcessing Window OffsetGrade designated
Oxidation Induction Time OIT (200℃)≥35 minGB/T 19466.6, aluminum crucibleInsufficient thermal aging lifePolymer-grade stable system
Volume resistivity≥3.0×10¹⁵ Ω·mGB/T 31838.2-2019, 1.0 mm ± 0.1 mm specimen, 1 kVElectric leakage, overheatingNo additives
Dielectric loss factor (Power frequency 50 Hz)≤5.0×10⁻⁴GB/T 1409-2006, Xilin Bridge Method, Field Strength 1 kV/mmMedium heating, high lossNo additives
Granule Appearance (SH/T 1541.1)Black granules 0 pcs/kg, colored granules and black spots ≤0 pcs/kg, large granules and small granules ≤10 g/kgSH/T 1541.1Crystal spots, black spots, film surface defectsAggregation End Cleanliness Control

Text Version Conclusion: Ash content and metal ions are the tickets to entry — without them, all subsequent electrical properties are irrelevant. The standard also provides a set of publicly disclosed evaluation conditions for cast film preparation (only for evaluating special materials under the specified film-forming conditions): cooling roll (26±2)℃, screw length-to-diameter ratio not less than 25, die slit 0.3~0.4 mm, melt temperature (240±5)℃, traction speed (8.0±0.5) m/min, film thickness (0.030±0.005) mm, without using air knives or filter screens. Note: The evaluation is for 'special material,' not 'finished film.'

By the way, lay out the scale of the finished film to facilitate understanding of the boundaries between the 'material side' and the 'film side' (according to publicly available company product information, grade B, can be used as a reference for scale):

TypeThicknessKey performance levelSource Classification
Metalized Film (MP)4–15 μmTensile strength: longitudinal 155–165 MPa, transverse 310–325 MPa; elongation at break: longitudinal 157–166%, transverse 57–60%; dielectric strength (electrode method) average 522–605 V/μm; dielectric loss factor tgδ 2×10⁻⁴~2.8×10⁻⁴; volume resistivity approximately 1.7×10¹⁵~1.9×10¹⁵ Ω·mClass B (Enterprise Product Information)
Roughened Membrane (RP / RRP)6–15 μmSurface roughness 0.34–0.45 μm; dielectric strength (electrode method) average 495–531 V/μm, (component method) average 387–436 V/μm; porosity approximately 9.5%Class B (Enterprise Product Information)

Text Version Conclusion: The commitment target in the above table is 'film roll,' not 'particle'; the values are fulfilled by the film factory in the biaxial stretching metallization/coarsening process, tested according to the GB/T 12802 series, and the modified granulation line is not responsible for it.

4. Common Failures and Root Causes: If the ash content doesn’t increase, it is mostly because 'what was added' wasn’t clearly thought through.

Conclusion first: The most common mistake in selecting capacitor films is not 'choosing the wrong grade,' but 'applying the modified material approach to polymer-grade materials.'

Failure 1: Thinking that 'adding the highlighted additive can also pass the capacitor membrane threshold.' This is wrong and is the most typical misjudgment in this line.

The requirements for capacitor film are that no additives are allowed, whereas each functional aspect of modified PP granules—smoothness, anti-stick, nucleation, anti-oxidation, reinforcement—is achieved by adding something. Adding even a little increases ash content, metal ions, and extractables, causing resistivity and dielectric loss to deteriorate. This is not a matter of 'adding cleverly or not'; adding and not adding are inherently opposed.

Failure 2: Thinking 'It's fine as long as the ash content is a bit lower; a difference of a few dozen mg/kg doesn't matter.'

Maybe this is true for structural components, but not for capacitor films. According to publicly available industry data (Grade B), the evaluation criteria for electrical-grade PP resin are: ash content ≤50 ppm (≤20 ppm for high-end), metal ions ≤3 ppm, containing no additives; dielectric loss ≤0.0005 at 1 MHz, dielectric constant stable at 2.2~2.3; film room temperature breakdown strength ≥50 kV/mm; melt flow index 2.5~3.5, isotacticity ≥98%; long oxidation induction period, extremely low extractables. Every 'extremely low' and 'extremely pure' corresponds to 'nothing added'.

Can we deny a common practice: some people present 'our modified PP can make films' to match the demand for capacitor films. This statement is valid for ordinary packaging films (such as smooth, anti-stick masterbatches, see PP-AE0), but it does not hold for capacitor films. Combining the two things as one will ultimately lead to the material being sent in, ash content tested, and the whole batch rejected. It's more important to first distinguish whether it's 'packaging film' or 'capacitor film' than to discuss the formulation.

Failure Three: Thinking 'If the material is pure, the membrane's performance will naturally meet the standard.'

That's not right either. Aggregated-grade virgin material is just the entry ticket; the electrical performance of the film depends on biaxial stretching orientation, metallization/roughening processes, and a clean environment together to realize it; the material side only ensures 'purity and processability,' not 'dielectric strength'—that’s the responsibility of the film manufacturer.

5. Verification sequence: from particle appearance to dielectric strength, each level is just returned if not passed

Conclusion first: The verification sequence for capacitor film-specific materials is 'purity first, electrical performance second, film formation evaluation last'; if the sequence is reversed, failure will occur at the film formation step.

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① Granule Appearance Black granules / Colored granules / Black spotted granules / Large and small granules (SH/T 1541.1)

↓ If there are black particles or impurities → Return to the polymerization end for cleanliness control

② MFR and isotactic index MFR is according to the rated value; isotactic index GB/T 2412 (M≥98.0% / R≥96.0%)

↓ However → Return to grade and polymerization process

③ Ash and Metal Elements Ash GB/T 9345.1 (≤30 mg/kg); Aluminum, Silicon, Titanium, and Calcium each according to the threshold

↓ Exceeds standard → Return to the additive-free polymer-grade channel (this level is the key point of the capacitor film)

④ Volatile Matter and Yellowness Index Volatile Matter ≤0.20%; Yellowness Index ≤1.0

↓ However → Return to purification and stabilization system

⑤ OIT and melting temperature OIT (200℃) ≥35 min (GB/T 19466.6); melting temperature 167.0±3.0℃

↓ However → Revert to the thermally stable system

⑥ Volume Resistivity and Dielectric Loss Volume resistivity ≥ 3.0×10¹⁵ Ω·m (GB/T 31838.2-2019)

Dielectric loss factor ≤5.0×10⁻⁴ (GB/T 1409-2006)

↓ However → Revert to additive-free and purified

⑦ Cast Film Haze and Fish Eyes Produce cast film under publicly disclosed evaluation conditions, and check for haze <6% and fish eyes

↓ However → Return to the aggregation end and membrane-forming conditions

⑧ Stretching and Dielectric Strength After Film Formation: Measure the stretching and dielectric strength after biaxial stretching (according to GB/T 12802 series)

↓ However → Return to matching the film-forming process with specialized materials

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The two most commonly skipped parts: skipping ③ and going straight to ⑥, leaving the 'excess ash' to be revealed only during the electrical performance test; skipping ⑦ and going straight to ⑧, a single bidirectional stretching sample is the cost for the entire batch, but the problem was actually determined earlier at the material stage.

6. Reverse honesty: For these four types of demand, you should go to the petrochemical plants or membrane factories, we can't handle them.

Conclusion first: This section talks about 'when not to look for us.' Saying this sentence upfront completes the boundary of honesty.

The situation that occurredWhy did it fall to another channelWho should I find?
Special material for aggregate-grade capacitor films (ash content at ppm level, without any additives)Additives are essential for modified granulation. Once ash is added, it can't be compressed — this is a process route conflict, not an issue of skill.Petrochemical Plant (Polymer-Grade Homopolymer Channel)
Need BOPP biaxially oriented film manufacturingStepwise or synchronous bidirectional stretching production line and granulation are two separate equipment systemsFilm factory
Performance commitments for the finished film (dielectric strength, tgδ, roughness, porosity)The promised object is the membrane rollFilm factory
Certification at the capacitor end (DC-Link, high temperature resistance, long lifespan)Belongs to the capacitor factory and complete machine verificationCapacitor Factory / Testing Organization

Consistent rules: Any requirements concerning the 'purity matrix of the entire film' and 'the film-forming process itself' should not be handled by the modified PP granulation line. We do not do this part, nor do we pretend we can handle it. By clarifying this line, customers are actually more willing to hand over the small portion that can be handled.

The only areas we can participate in are at the very marginal supporting directions: first, the direction of functional additives for general BOPP packaging films that are not at the capacitive level—but this topic is the same as PP-AE0 (slip and blooming of BOPP films), which will only be briefly mentioned here without further discussion; second, certain functional additive directions involved in film processing (in a non-capacitive context). We clearly will not take on the main part, nor pretend that we can.

One piece of experience: For such inquiries, first distinguish whether the customer wants 'aggregated-level particles,' 'film rolls,' or 'capacitor certification'—those asking for particles refer to petrochemical plants, those asking for film rolls refer to film factories, and those asking for certification refer to capacitor manufacturers and testing agencies. After completing these three steps, what remains is what we can actually discuss.

7. Material Change Risk List: The caliber of the biaxially stretched film is not the caliber of the injection mold.

Conclusion first: The risk of material change for capacitor film lines is not the same as for injection molding lines— for injection molding, it's about mold shrinkage rate and gate, while for biaxial stretching, it's about stretching temperature factor and quenching rollers. Using the injection molding checklist will inevitably miss items.

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Stretching Temperature and RatioWhether the vertical/horizontal stretching temperature window matches the draw ratio of the new materialUneven thickness, film breakage, insufficient orientation
Vertical / Horizontal RatioLongitudinal and transverse draw ratio ratio, orientation balanceStiffness abnormality, anisotropic thermal shrinkage
Quenching RollerRoll temperature and line speed determine the crystallization state and surface qualityIncrease in haze, uneven crystallization, poor metallization adhesion
Rewinding tensionTension and roll diameter matchingWrinkles, broken veins, loose curls, interlaminar damage
Surface treatment before metallizationCorona / Pre-deposition Treatment and Surface TensionInsufficient adhesion of the metallized layer, delamination
Verification orderParticle appearance → MFR and isotacticity → Ash content and metals → Volatile content and yellowness index → OIT and melting temperature → Resistivity and loss → Cast film haze and fish eyes → Film formation, stretching, and dielectricAll the risks are concentrated to explode at the film-making sample step

Changing materials involves adjusting four areas: stretch temperature multiplier, quenching roller, winding tension, and pre-treatment before metallization. Among them, the one that should be discussed first is still the verification sequence—skipping the material end and directly doing bidirectional stretching sampling is equivalent to using the cost of the entire batch to discover problems that could have been detected in the particles themselves.

8. One-page report form: The selection of capacitor film material can be directly pasted into the PPT

Conclusion first: There is only one criterion—whether the client can use this form to determine 'who to contact' in a single meeting.

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
PP particles for capacitor film gradePetrochemical plant polymer-grade homopolymer special material (PP-H FC03R / FC03M)Ash ≤30 mg/kg; Metal ions; Isotactic index; OIT ≥35 minT/CPCIF 0332-2024Film type (roughened R / metallized M), MFR grade
Want finished capacitor film rollsFilm Factory BOPP Biaxially Oriented (Metallized / Textured)Dielectric strength, tgδ, roughness, porosityGB/T 12802 SeriesMetallization or coarsening, thickness grade
Capacitor certification requiredCapacitor Factory Testing Organization (DC-Link / High Temperature Resistant / Long Life)Whole Machine Validation ProjectCapacitor Factory Standards / Complete Machine SpecificationsApplication conditions (such as new energy 125–150℃)
Non-capacitor grade BOPP packaging filmModified Granulation (Functional Masterbatch / Additive Direction)Smooth, non-stick, precipitation controlSee PP-AE0Applications and Downstream Processes

Text version conclusion: Don't cram the three things 'purity, film formation, certification' into the phrase 'want a good material'—each of the three things should have a different subject. The most useful is the last column, as it determines whether what is reported can be fulfilled.

9. In this direction, the thing that most easily goes wrong is often not the materials, but choosing the wrong path.

The common practice in the industry is to distinguish three things: sourcing aggregate-grade pure materials from petrochemical plants, sourcing finished films from film manufacturers, and seeking capacitor certification from capacitor manufacturers and testing institutions. The difficulty is not 'whose material is better,' but 'where to draw the boundaries.'

Ningbo Cologne New Materials Co., Ltd. does not participate in the main line of capacitor films—it does not produce polymer-grade materials for capacitor films, does not perform biaxial stretching of film, and is not responsible for the electrical properties of finished films or capacitor certification. The only areas it can be involved in are at the very peripheral auxiliary stages: certain functional additives related to film processing outside the capacitor-grade context; and functional masterbatches and crystallization control for general BOPP packaging films. Please refer to the PP-AE0 article for details, which will not be expanded on in this article.

Frequently Asked Questions

Question: Can you produce PP material for capacitor films?

Answer: No. Capacitor-grade film requires ash content to be reduced to the ppm level with no additives, while the essence of modified PP granules is adding additives—once ash is added, it cannot be reduced; this is a conflict in the process route, not a matter of skill level. For polymer-grade material, please contact a petrochemical plant directly.

Question: Then why do some materials say that modified PP can also be used to make films?

Answer: That is the direction of ordinary packaging film (BOPP packaging film), relying on functional additives such as slip/anti-block masterbatch to achieve it, which is not the same as the 'additive-free' threshold of capacitor film; this direction has clearly been separated from PP-AE0 and should not be confused.

Question: If we want to make metallized film capacitors, who should we contact?

Answer: For the material, look for polymer-grade specialized material from petrochemical plants; for the film, have a film factory make biaxially oriented and metallized film; for certification, work with capacitor manufacturers and testing institutions to verify according to the complete device's operating conditions. Clarifying these three steps is more useful than discussing the formula first.

I'd like to give a reminder: The most common mistake in capacitor film inquiries is first asking 'Can you make it?' and then asking 'What additives are needed to meet the standards?' The sequence is reversed — you should first set the process route, then discuss the materials; if this step is not determined, everything that follows is rework.

Ten, Lastly, Say Three Sentences

First, the highest threshold for PP materials dedicated to capacitor film is not performance, but "no additives at all." Ash content at ppm level, metal ions each ≤3~6 mg/kg, no accelerated slip agents / anti-blocking agents / nucleating agents / antistatic agents — these are determined at the polymerization stage and cannot be compensated downstream.

Second, the essence of modified PP granulation is 'adding things', which conflicts with the 'not adding things' approach of capacitor films right from the start. This is not because we didn't do a good job, but because the process routes themselves are incompatible.

Third, assigning 'purity, film formation, and certification' to three separate entities is more useful than discussing the formula first—materials go to the petrochemical plant, the film goes to the film factory, and certification goes to the capacitor factory; by clearly defining the boundaries, only the part that can be connected can be connected stably.

About Us

The selection process gets stuck, usually at a very specific step.

It's unclear whether to go with polymer-grade pure materials or a modified route, what level the ash content should be reduced to, and who should be responsible for guaranteeing the performance of the finished film—clarifying which step is stuck is much more useful than saying 'we need a good material'.

Ningbo Cologne New Materials Co., Ltd. produces modified polypropylene (PP) granules, covering homopolymer, random copolymer, and block copolymer base materials, as well as modifications including filled, glass fiber reinforced, toughened, flame-retardant, low odor and low VOC, weather-resistant, and scratch-resistant without coating; it also deals in PP resins from major petrochemical plants, off-spec materials, and bulk materials.

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