Key Takeaway: Which seal material should you use — elastomer, PTFE, or spring-energized hybrid?
There's no universal best seal material — the right choice depends on weighing your application's media, temperature range, speed and pressure, service-life target, gland design, and cost together, rather than defaulting to whatever you used last time. The checklist below walks through each factor so you can see where your application actually lands.
The “best” seal material doesn’t exist in isolation; it only exists relative to the operating envelope you’re actually running.
If you guess wrong on a seal material, the bill doesn't show up as a line item — it shows up as an AOG event, a warranty claim, or a hydraulic system down for inspection. A leaking fuel seal or a hydraulic line that weeps under thermal cycling isn't a minor fix in aerospace; it's a grounded aircraft and a very expensive phone call.
This isn't a materials primer. If you want the full breakdown of elastomer, PTFE, and hybrid material families, we covered that in another blog, “Materials Matter: Choosing the Right Seal Material for Aerospace”. This post is a decision framework: given your application's real operating conditions, which material family actually wins, and why.
Elastomers are still the right call for a large share of sealing applications, particularly when:
A note on O-rings: O-ring describes a seal's shape, not a material family. O-rings can be molded in elastomer compounds or machined from PTFE, so the criteria above still decide which one's right, not the geometry itself. One elastomer-specific option worth knowing: pairing an O-ring with a PEEK (or similar high-modulus plastic) anti-extrusion backup ring can extend it into higher-pressure static service that would otherwise push you toward PTFE or hybrid — a simpler, lower-cost step before jumping to a different material family.
However, there is one trade-off to flag: the compression set. Over long dwell times or long service life, elastomers lose their ability to spring back and maintain sealing force — which makes them a poor fit for applications that need to hold up for decades without intervention.
PTFE earns its premium when the environment would degrade or overwhelm an elastomer:
“PTFE also can run dry and cooler due to a lower coefficient of friction. Also, the fact that PTFE can be filled with various fillers to adapt the material to the specific application. PTFE also does not require molding or special tooling,” notes Gerald Strenk, Ergoseal Global PTFE Product Manager.
Trade-off to flag: PTFE has no elastic memory. It doesn't spring back the way an elastomer does, so it needs an energizer to maintain sealing force, and it demands tighter shaft and bore tolerances to perform reliably.
Spring-energized PTFE seals exist for a specific reason: to combine PTFE's chemical and thermal ceiling with a sealing load that doesn't depend on PTFE's own (nonexistent) memory. That combination wins when:
We've built this exact solution before — Ergoseal's spring-energized PTFE lip seal running on a silicon carbide sleeve and spring-energized PTFE seals purpose-built for aircraft engine applications where failure isn't an option.
There are many applications where spring-energized PTFE is the best solution:
“You could use spring-energized PTFE hybrid seals when you need PTFE's chemical and thermal ceiling plus a controlled, consistent sealing load — deep cryogenics, torque-sensitive rotary applications, or multi-decade service life,” Strenk explains. “Spring-energized seals are also recommended when the pressure exceeds 500 psi and could be used in excess of 20k psi with the correct design features.”
Trade-off to flag: hybrid seals cost more and require a more complex gland design — split or stepped, rather than a simple machined groove. This isn't a default choice. It's the right call only where the performance gap actually justifies the added cost and design complexity.
Run your application through these six questions. Each one points toward the material family best suited to answer it:
If most of your answers land in one column, you have your material family. If they're split, that's exactly the conversation you should have before you commit to a design.
The right seal material isn't a guess, and it shouldn't be treated like one. Every material decision we make runs through in-house design and testing under our AS9100D quality process, so data, not intuition, backs the choice.
If your application sits in the gray area between these three categories, talk to one of our application engineers before you finalize the design. It's a lot cheaper than finding out the hard way.