高频连接器材料怎么选?低介电之外还有三笔账

应用领域 发布时间: 2026-09-14 976 阅读

Last month, a customer who makes optical module structural components sent a very brief message.

Only nine characters plus a question mark: 'Do you have low-dielectric nylon?'

I went back and first asked three questions: Where is the frequency range of this component? What is the budget for insertion loss? Will the casing be metallized? What are the long-term humidity and heat conditions?

The answer he gave is: a section around 28 GHz, the casing needs to be made conductive, and long-term 85°C and 85% relative humidity.

Answered in three sentences, the outline of this matter changed — what he really wanted to resolve was not 'whether the dielectric is low or not,' but 'whether after being kept at 85℃ and 85% humidity for five years, the size, coating, and loss can still all be maintained.'

This article elaborates on the materials of high-frequency connectors: first, look at what constraints this component has, then look at the positions of several base materials, followed by the criteria table, and finally clarify above which frequency range plastics should not handle this work.

1. Low dielectric is a relative term, so first clarify what 'low' is being compared to.

In the materials field, saying 'low dielectric' is a relative term; you need to find a reference first.

Ordinary nylon is not a low-loss system.

PA6 and PA66 have dense amide groups on their molecular chains, which are polar groups. Polar groups will flip in an alternating electric field, and if they can't flip, they generate heat—this is the physical origin of dielectric loss.

So the dielectric constant of PA66 at 1 GHz is roughly between 3.5 and 4.0, and the dielectric loss is on the order of 0.02 to 0.04.

For comparison: the dielectric loss of LCP and modified PPE is between 0.002 and 0.007.

Off by an order of magnitude. This gap cannot be bridged by a formula; it is determined by the molecular structure.

Secondly, water absorption.

The dielectric constant of water is on the order of 80, much higher than that of any engineering plastic.

Every bit of water absorbed by nylon increases the dielectric constant and the dielectric loss of the material. The equilibrium water absorption of PA66 is 8% to 9%, while PA9T is significantly lower—this is why "low water absorption substrates" are highly regarded in RF components, not just for size, but also for electrical performance.

The third thing: fiberglass.

The dielectric constant of E glass is on the order of 6.6, higher than that of resin.

In other words, for every bit of fiberglass you add for rigidity, you are raising the dielectric constant. If you want rigidity and a low dielectric constant, these two directions are opposite in fiberglass.

So the true meaning of the four words 'low dielectric nylon' is: in a system that is not originally low, try to suppress these three things — few polar groups, low water absorption, and little high-dielectric filler.

In a word: the so-called low-dielectric nylon does not turn nylon into an inherently low-loss material; rather, it keeps the increase in loss within the budget.

2. Operating condition six dimensions: What is the high-frequency component clamped by

Frequency and loss budget. This is the first thing to clarify.

Insertion loss budget is usually allocated according to the entire channel, and the share that a connector or housing can get is limited. The higher the frequency, the greater the attenuation calculated from the same dielectric loss.

The frequency goes from 10 GHz to 28 GHz, and with the same dielectric loss, the attenuation magnitude will more than double. So the same material is sufficient for a 100G component, but it is not enough for a 400G one.

Temperature. High-frequency components are divided into two stages: the peak of 240 to 260°C during the few tens of seconds in the furnace, and the long-term operating temperature.

The long-term temperature of the optical module enclosure is usually considered to be between 70 and 85°C, and it will be higher in densely stacked cabinets. The long-term value is what needs to be monitored.

Humidity. This is the dimension that is most easily underestimated in high-frequency components.

85°C and 85% relative humidity are common accelerated test conditions in the industry. Under this condition, the moisture absorption of nylon will approach saturation.

After absorbing water, the size increases, the dielectric constant rises, and the dielectric loss rises; all three things happen simultaneously.

Load. Low-frequency components discuss plug-in and unplug forces, while high-frequency components discuss the positioning accuracy during plugging and unplugging.

The insertion tolerance of optical modules is commonly on the order of 0.05 millimeters; even a slight increase in size can change the insertion and removal force from 'just right' to 'stuck'.

Appearance and craftsmanship. The casing often needs to be metallized or sprayed with conductive coating, and the adhesion of the plating is a critical factor.

Once there is a transfer layer on the surface, the coating cannot hold—it’s the same issue as the surface precipitation mentioned in the article about the glue core.

Compliant. Flame-retardant V-0, halogen-free, RoHS, as well as additional requirements from some customers regarding volatility and leaching.

In these six dimensions, frequency and humidity are unique to high-frequency components, while the remaining four dimensions share the same logic as ordinary connectors.

3. Several routes, each with its own merits

Lay out the substrates that can make this part; there are roughly five routes.

RouteDielectric constant (on the order of 1 GHz)Magnitude of dielectric lossThe position on this piece
PA6T / PA9T ReinforcedAbout 3.4–3.8About 0.01–0.02Balances reflow soldering resistance with dimensional stability; dielectric constant increases with high glass fiber content
PPA (Semi-Aromatic Copolymer)About 3.3–3.8Approximately 0.008–0.015Balance temperature resistance and low absorption, and make the processing window a bit wider
Modified PPE / PPOAbout 2.5–2.9Approximately 0.002–0.007Good RF performance; temperature resistance and solvent resistance need to be evaluated separately
LCPAbout 3.0–3.3About 0.002–0.005Extremely thin walls and advantages in high-frequency bands are obvious; toughness and flow directionality are strong
PPS / PEEKAbout 3.0–3.2About 0.002–0.005Good temperature resistance and chemical stability; price and molding process involve trade-offs

Don't make a 'who is better' conclusion, just talk about the differences.

The situation with PA6T and PA9T is: they can withstand enough heat, have low water absorption, and stable dimensions, making them a compromise that customers can accept in high-frequency components; the cost is that their intrinsic losses are not low, and as the frequency increases, it depends on whether the specific component can handle it.

The account for modified PPE is: the RF aspect is indeed good, that's its intrinsic advantage; however, its temperature resistance, solvent resistance, and dimensional stability are not as good as the nylon family, so for parts that need to go through the oven, it needs to be re-evaluated.

The characteristics of LCP are: it has both ultra-thin walls and low loss; the trade-off is that it is highly anisotropic, so assembly and drop conditions need to be verified separately.

There is also one route worth mentioning separately: replacing part of the fiberglass.

Replacing high glass fiber with low-dielectric fillers such as minerals and glass beads can bring down the dielectric constant, at the cost of reduced rigidity.

This route is very cost-effective for parts that are 'slightly lacking in dielectric but have excess rigidity,' but it is not a universal solution—the trade-off point between rigidity and dielectric must be determined by the part.

A reminder: Switching the substrate system is equivalent to changing the entire set of interface solutions and verification plans. Don't use the loss data from system A to infer parts of system B.

4. Selection Criteria Table (This page is worth saving)

Translate the above constraints into verifiable indicators. The threshold values in the table are directional suggestions, not acceptance criteria—the actual values must be determined by specific projects, specific working conditions, and actual measurements.

IndicatorDirectional thresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
Dielectric constantBased on the channel impedance budget, it is usually taken in the range of 3.0–3.8Resonant cavity method or transmission line method, specify the frequency pointImpedance deviation, increased reflectionLow water-absorption substrate Low dielectric fillerCoupling agent
Dielectric LossAccording to the insertion loss budget, the high-frequency band often needs to be reduced below 0.01.Same as above, and the test frequency must be specifiedInsertion loss exceeds budget, local overheatingReduce the density of polar groups to decrease water absorptionCoupling agent
Electrical drift after moisture absorptionThe difference between moisture-conditioned state and dry state is calculated per pieceTest again after 85°C/85% RH treatmentIt's only over the limit when installedRequest the supplier to provide the data in the conditioned stateWithout additives
Dimensional stability (plug-in tolerance)Common 0.05 mm scaleMeasured before and after humidity adjustment / ISO 294Increased insertion and extraction force, stickingLow water-absorption substrate Moisture-adjusted deliveryWithout additives
Coating adhesionPaige or Lathrop method qualifiedConduct part-level tests according to the customer's coating systemBlistering, peeling, localized loss of glossControl surface migration Confirm coating compatibilityLubricant
Long-term thermal oxygen retention rateAfter 85℃ × 1000 h, determine per itemISO 527whitish and brittleStabilization systemAntioxidant
Flame retardantV-0 (reported according to the minimum wall thickness per piece)UL94 / IEC 60695A departing fire does not extinguish itselfHalogen-free flame retardant system

How to use this table: Do not score line by line. First, look at the first two rows.

If the dielectric and loss are unacceptable, no matter how well the dimensions and coatings are made later, it is meaningless because the signal simply cannot pass through.

A reminder: For the rows 'Dielectric Constant' and 'Dielectric Loss', the test frequency points must be included in the protocol. The same material has different values at 1 GHz and 28 GHz, and data without frequency points is equivalent to no data.

Five, four common failures and their real root causes

Failure 1: The sample stage meets the loss standard, but the insertion loss increases after mass production.

The root cause of this phenomenon is often not the formula, but moisture absorption.

The samples in the laboratory are in a dry or semi-dry state, so the measured loss is a very optimistic scenario. Once they leave the door, are stored in the southern warehouse for two weeks, and then installed in the cabinet for operation, the values change after absorbing moisture.

Common solution: write the loss data of the conditioned state into the technical agreement, and only record the dry state data as a process record. This is much more effective than changing materials.

The timeline for this kind of matter is usually shaped like this:

Starting point: The sample was tested in the laboratory, in a dry state, and the loss just stayed within the budget line, so the plan was approved.

Latent: The mass-produced items left the factory and were stored in the southern warehouse for two weeks. They absorbed a little water slowly, but no one measured it.

Outbreak: When installed in the cabinet and running, the insertion loss of a certain section of the channel exceeded the budget, and the customer first suspected the PCB.

Traceback: Take out the problematic batch number and sample, run them through a cycle in the humidity and heat chamber, and the data matches after moisture absorption.

Settlement: The plan did not change the materials; what was changed were the delivery status and acceptance conditions — losses in the conditioned state are included in the agreement, while those in the dry state are only recorded.

The most expensive step in this process is 'tracing,' because it requires using samples to deduce the state from several months ago.

Failure 2: After thermo-oxidative aging, there is variability in the loss among the same batch of parts.

The root cause lies on the additive side: uneven dispersion of the stabilization system.

If the antioxidant is not evenly mixed during the mixing stage, areas with high local concentration will age slowly, while areas with low concentration will age quickly, and the consumption will naturally disperse.

First check the blending process and masterbatching; don't rush to change the substrate.

Failure 3: After metallization, the coating shows localized blistering.

The root cause lies on the additive side: the amount of external lubricant is relatively high.

It migrates to the surface, forming a very thin migration layer. If it is not compatible with the coating, the adhesion will not improve.

This item is often mistakenly judged as 'pre-plating cleaning not done properly,' but actually the first thing to check is the lubrication system.

Failure 4: The insertion and extraction force is good on the new part, but increases after being installed on site for a few months.

The root cause is moisture absorption and expansion. A tolerance of 0.05 millimeters, spread over a 30-millimeter casing, only requires a change of one-thousandth seven to consume it.

Here is something that needs to be said directly: the item most likely to be omitted in this failure analysis is the measurement conditions.

Measuring the same part in a drying cabinet, in the workshop, and in a temperature- and humidity-controlled room yields three different dimensions. If the measurement conditions are not written into the agreement, disputes can never be clearly resolved.

A straightforward statement: The order for inspecting high-frequency components is—first determine the frequency points and measurement conditions, then look at the humidity history, and only finally suspect the grade.

If the order is reversed, a 'status problem' will be treated as a 'material problem'.

6. Processing and Verification: Several Things That Must Be Decided in Advance

Drying. The drying window for substrates like PA6T and PA9T should be determined according to the actual measured moisture content, and a dehumidifying dryer must be used.

High-frequency parts have stricter requirements for this aspect than ordinary parts, because moisture affects both dimensions and wear.

Mold temperature. Mold temperature affects crystallinity, which affects shrinkage and also influences moisture absorption rate.

The mold temperature is set too low, resulting in insufficient surface crystallization. Moisture absorption will be faster than normal parts — this will gradually become apparent in long-term field operations.

Glass fiber orientation. High-frequency parts are mostly elongated or thin-walled, and the gate position determines the fiber orientation, which in turn determines the shrinkage difference in two directions.

If the long direction of the part is not the flow direction, dimensional stability basically relies on luck.

Metalized pretreatment. The adhesion of the coating should be considered during the molding stage: draft angle, surface roughness, and the way mold release agents are used.

Wait until the part is made before thinking about the coating; the room for adjustments will be very limited.

Verification order. It is recommended to arrange it like this; do not change the order:

1. Dry-state electricity: dielectric constant and dielectric loss, standard frequency point

2. Humidity-conditioned electrical: test the same group again after treatment at 85℃/85% RH

3. Dimensions: Key fitting dimensions before and after humidity adjustment

4. Component-level assembly: insertion/extraction force, positioning accuracy, retention force

5. Coating and aging: coating adhesion, electrical re-measurement after aging

If the previous item fails, just move on; the subsequent data has no explanatory value.

Here's an insider detail: for wear data of high-frequency parts, the same set of samples needs to be measured in at least three humidity conditions—dry state, during moisture adjustment, and near saturation.

Only when three points are connected in a line can one understand how sensitive this component is to humidity. Data from a single point can only indicate that moment.

7. Boundaries: Which high-frequency parts should not use modified nylon

This section might be more valuable than the previous six sections.

First, RF channel components with dielectric loss budget reduced below 0.005.

This scale has already entered the territory of LCP, modified PPE, fluoroplastics, and even ceramics. The intrinsic loss of the nylon family determines that it is not a suitable option at this level; trying to force it with formulations will cost much more than switching to a different system.

Secondly, matching parts that need to maintain dimensional accuracy for a long time at 85°C and 85% humidity.

Nylon's moisture absorption is inherent; formulations can reduce the rate, but cannot eliminate the final amount. For combinations that require absolutely stable dimensions over the long term, you either need to modify the structure to allow for extra tolerance, or switch to a low-moisture-absorption system.

Third, it needs to bear the main structural load of the shell.

The rigidity of thin-shell parts relies on fiberglass, and fiberglass also raises the dielectric constant. These two requirements are opposing in the same part, and if the part also has to bear the main load, the trade-off becomes very ugly.

Fourth, it is necessary to make the parts fully shielded.

What usually determines the shielding effect is the metallized layer or metal components; the plastic here provides shape and insulation. Relying on the plastic's own formulation for shielding requirements is the wrong direction.

Writing these four points first is not to discourage, but to save time.

The verification cycle for high-frequency components is long and costly. Projects that go smoothly at the sample stage often get stuck at the wet heat aging retest, and in the end, the entire channel often has to be re-evaluated—the cost of rolling back is much higher than not doing it in the first place.

There is one more thing to clarify: high-frequency connectors and optical module housings are not the same thing. Connectors focus more on dielectric properties and mating alignment, while housings focus more on dimensions, plating, and heat dissipation. The materials for these two types of components may come from the same source, but the criteria for evaluation are prioritized differently.

Material Change Risk List (From PA66-GF to low moisture absorption high-frequency system, things that need to be changed)

link; segment; partWhat needs to be moved?Points that are easy to overlook
Substrate SystemWater absorption, melting point, and flow have all changed, the formula needs to be rebalanced.Interface solution based on the original system
MoldThe shrinkage rate and anisotropy have changed, and the matching dimensions need to be recalculated.Only compensate according to the general shrinkage rate in the manual
DryReplace the dehumidifying dryer and raise the temperature by one levelContinue using the drying parameters of PA66
Material Temperature / Mold TemperatureRaise the material temperature, and reset the mold temperature according to crystallization requirementsDirectly apply the original process parameters
Surface treatmentThe demolding and lubrication system must be matched with the coating requirementsRelease agent residue affects adhesion
Measurement ConditionsTesting specifications are defined separately for dry state and humidity-conditioned stateOnly give the dimensions for one state
Verification orderDry-state electrical → Humidity-conditioned electrical → Dimensions → Assembly → Coating agingIf the previous item fails, just move on.

One-page report form (for people who need to report upwards)

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
High-frequency connector positioning componentPA6T / PA9T ReinforcedDielectric constant, dielectric lossTransmission line method with specified frequency pointsFrequency Band and Insertion Loss Budget
The optical module casing needs to go through the oven.PA6T / PPADimensionally stable and resistant to reflow solderingDimensions after firing Retest in conditioned stateNumber of passes through the furnace and measured peak value
RF band, but not the ovenModified PPE / LCP directionDielectric LossElectrical re-inspection at multiple humidity pointsIs the temperature resistance and solvent resistance sufficient?
Shell that requires metallizationLow Water Absorption System Coating SolutionCoating adhesion, dimensionsBai Ge or La Tuo Retest after damp-heatCoating system compatibility

Risk warning: The main uncertainty of this route lies in electrical and dimensional drift after moisture absorption, not in the initial dielectric constant.

Three questions readers often ask

Question: The material property table lists a dielectric constant of 3.5. Does that mean it can be used?

First, look at two things: the frequency at which this number was measured, and the humidity condition under which it was measured. Dielectric data without frequency points and conditions have limited reference value.

Q: Adding glass fiber improves rigidity, so why does the dielectric property get worse?

Because the dielectric constant of glass fiber itself is higher than that of resin. Stiffness and dielectric properties are two opposite directions in glass fiber, so low-dielectric fillers or structural adjustments are needed to compensate.

Question: If the casing is not metallized, can the shielding filler in the plastic itself solve the problem?

It can solve part of the problem; the usual approach is to add conductive fillers to achieve a certain level of conductivity. However, it is not equivalent to a metallized layer. For components with high shielding requirements, it is recommended to evaluate both options together.

Conclusion

Back to the first customer.

In the end, we didn't recommend the grade to him first. Instead, we went through the insertion loss budget of the channel together and ran a few rounds of retesting on two sets of samples at 85°C/85% humidity.

Upon retesting, his problem mainly lies in the drift after moisture absorption, rather than the initial dielectric constant.

Later, three changes were made: the substrate was replaced with a grade that absorbs less water, the fiberglass ratio was slightly reduced, and the metallization pretreatment process was also modified.

The chain for determining materials for high-frequency connectors ultimately comes down to three things: frequency range sets the insertion loss budget → moisture absorption determines the allowable size and electrical margins → measurement conditions define the boundaries of disputes.

If it's still the same three or five years later—for high-frequency components, this is not an adjective, it is the dividing line for whether it can be delivered.

Once the three are determined, the question "Can this part be made of plastic" naturally has an answer.

If you currently have a high-frequency part or optical module housing to select materials for, just send over three things and we can give direction: frequency range and insertion loss budget, whether to use metallization, long-term hot and humid conditions.

High-frequency components are more aware than others of one fact: the material is only a segment in the link; it cannot alone save the entire channel.

What we do is very specific: turning PA6, PA66, PA46, PA11, PA12, PA6T, PA9T, and nylon alloys into forms that can actually be used for a given component; we also handle modified PPO, PPS, and thermoplastic elastomers.

We also deal in large chemical manufacturers' nylon resins, secondary brands, and bulk in-stock materials. Additionally: we have long-term collection of nylon raw materials, sprue scraps, and various nylon wastes with proper disposal channels.

The additive systems in the formulations are tailored to the working conditions of each part—common additives are kept in stock, special types are provided as needed; you report the working conditions and grade, and the materials and additives are prepared all at once.

The material selection and mold trial for this type of part can be discussed together.

这台机器上的件,说下工况我帮你看看

报个件、说清温度和要过的认证,当天回你两三个能打的方案。电话微信同号,找到人就能聊。

打电话 18969817163发邮件询价
WA