⚗️ Patented Technology · Peer-Reviewed Science · 6 Mechanisms

Six Reasons Flexiphene™
Outperforms Everything Else.

The performance numbers — 100× lower resistance, 96× higher capacitance, +19% polymer strength — don't happen by accident. They're the result of six distinct technical advantages built into Flexiphene™ at the molecular level. This is the science behind why it works.

U.S. Patents 10,049,783 / 11,961,630 B2. Published in Electroanalysis (2020). ASTM-tested mechanical data.

Every Advantage Is Measurable. Every Mechanism Is Patented.

Standard nanocarbon dispersions fail for predictable, correctable reasons. Flexiphene™ addresses each one with a specific technical solution — and then validates it with independent data.

Measured Performance Across Two Applications

Six mechanisms, two independently validated datasets. Every number below is traceable to a specific published source.

Electrical Performance
NASA JPL Validated · Electroanalysis (2020)
Property Flexiphene™ Standard Δ
Resistance0.09 MΩ10+ MΩ100× ↓
Capacitance50 µF0.52 µF96× ↑
Drift Rate20 µV/s1900 µV/s95× ↓
4-Month Retention83%DegradesProven

Source: Noell et al., Electroanalysis (2020). NASA JPL peer-reviewed evaluation.

Conductive Films application page →
🔩
Mechanical Performance
ASTM-Tested · SEM-Verified · PA 66 at 1 wt.%
Property Baseline + Flexiphene™ Δ
Tensile Strength100%Enhanced+19.0%
Flexural Modulus100%Enhanced+18.9%
Tensile Modulus100%Enhanced+16.0%
AgglomerationNoneSEM verified

Type V tensile (10 mm/min), ASTM D790 flexural (14:1 span, 1 mm/min). PA 66 at 1 wt.%.

Polymer Reinforcement application page →
🛰️ Independent Validation · NASA JPL · Electroanalysis 2020
The novel GO-CNT based SC-ISEs were the most stable as demonstrated by their large capacitance, low resistance, and reproducible behavior.

Dr. Aaron C. Noell, Senior Research Scientist

NASA Jet Propulsion Laboratory · California Institute of Technology

Electroanalysis (2020) · Peer-reviewed · Space-mission instrumentation evaluation

✓ Surfactant-Free Mechanism Validated ✓ Structural Integrity Confirmed ✓ Electron Pathway Performance Measured ✓ Long-Term Stability Proven

A System, Not a Single Feature

The six mechanisms aren't independent advantages — they reinforce each other. Understanding how they interconnect explains why Flexiphene™ achieves results that no single-improvement approach can match.

Standard Dispersion: A Chain of Compromises

  • 1To disperse CNTs, surfactants are added → they coat every tube surface
  • 2Surfactant coating creates insulating barriers → resistance skyrockets to 10+ MΩ
  • 3To get more functional groups, acid treatment is used → tube structure is damaged
  • 4Damaged tubes have shorter aspect ratio → less reinforcement, fewer electron bridges
  • 5Higher loadings tried to compensate → agglomeration worsens, properties plateau
  • 6Batch variation accumulates → results become irreproducible

Each compromise leads to the next. The system fails together.

Flexiphene™: A Reinforcing Cycle of Performance

  • 1Proprietary surface engineering disperses without surfactants → clean surfaces throughout
  • 2Clean surfaces allow direct nanocarbon-polymer contact → maximum load transfer and bonding
  • 3No acid treatment → structural integrity maintained → full aspect ratio preserved
  • 4Intact, long nanotubes bridge farther through the matrix → continuous electron pathways
  • 5Effective at 1 wt.% → no high-loading penalties, no agglomeration at low addition rates
  • 6Consistent starting dispersion → 90% batch reproducibility → reliable scale-up

Each advantage enables the next. Performance compounds.

Technical Deep-Dives

Each page below covers a specific mechanism in depth — what the problem is, how Flexiphene™ solves it, and the measured evidence that it works.

Understanding Is the First Step. Testing Is the Proof.

Request a free sample kit with the full technical datasheet. Our materials scientists will match you with the right formulation for your application and support your evaluation from day one.