open access publication

Article, 2024

Surface wettability and tribological performance of Ni-based nanocomposite moulds against polymer materials

Journal of Materials Research and Technology, ISSN 2214-0697, 2238-7854, Volume 30, Pages 8506-8518, 10.1016/j.jmrt.2024.05.236

Contributors

Guan, Tianyu 0009-0003-0223-4222 [1] Jagannath, Akshaya [1] Delaunay, Yohann [2] [3] Haasbroek, Pieter Daniel [4] Su, Quanliang [1] Kristiansen, Per Magnus 0000-0001-7714-0966 [4] Zhang, Nan 0000-0001-7849-3974 (Corresponding author) [1]

Affiliations

  1. [1] University College Dublin
  2. [NORA names: Ireland; Europe, EU; OECD];
  3. [2] Novo Nordisk (Denmark)
  4. [NORA names: Novo Nordisk; Private Research; Denmark; Europe, EU; Nordic; OECD];
  5. [3] Technical University of Denmark
  6. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  7. [4] University of Applied Sciences and Arts Northwestern Switzerland
  8. [NORA names: Switzerland; Europe, Non-EU; OECD]

Abstract

In the mass-production of microfluidic devices through micro hot embossing/injection moulding, the longevity of mould inserts is influenced by elevated adhesion and friction between the polymer and the mould. Thus, accurate prediction of mould lifespan requires a comprehensive understanding of surface wettability and tribological performance during polymer contact. The current study addresses this gap by characterizing fabricated micro-structured Ni, Ni-WS2, and Ni-PTFE nanocomposite moulds (surface morphologies, crystal structures and microhardness) to investigate inherent lubrication mechanisms. Surface wettability of mould material was systematically studied by measuring the contact angles with eight different polymer melts. Pin-on-disk tests with polymer pins made of cyclic olefin copolymer (COC 8007), polypropylene (PP), and poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV) were conducted to elucidate the wear resistance of the nanocomposite moulds. Pressure-dependent friction coefficient and wear resistance were further explored under increasing external loads, simulating the actual moulding processes where contact pressure may vary considerably depending on the part shape. Results indicate that Ni-WS2 exhibits the highest microhardness (532 Hv), followed by Ni-PTFE (465 Hv) and Ni (198 Hv). Notably, Ni-PTFE demonstrates exceptional hydrophobicity against all polymer melts, signifying low surface energy during polymer contact. Moreover, both nanocomposite moulds exhibit reduced friction coefficients and enhanced wear resistance across various polymers. Counterintuitively, despite its lower hardness, the Ni-PTFE mould displays superior wear resistance against the COC pin under higher loads, while the Ni-WS2 mould experiences severe adhesive wear, as observed from wear morphology and profile analysis. This finding establishes the Ni-PTFE as a promising alternative as a mould insert material for precision manufacturing.

Keywords

COC, Ni, Ni-PTFE, accurate prediction, actual molding process, adhesion, adhesive wear, alternative, analysis, angle, coefficient, comprehensive understanding, contact, contact angle, contact pressure, copolymers, cyclic olefin copolymer, devices, elevated adhesion, energy, enhanced wear resistance, external load, findings, friction, friction coefficient, hardness, higher loads, higher microhardness, hydrophobicity, increasing external load, insertion, insertion materials, lifespan, load, longevity, low hardness, low surface energy, lubrication mechanism, manufacturing, mass production, mass production of microfluidic devices, materials, mechanism, melting, microfluidic devices, microhardness, mold, mold insert, mold insert materials, mold material, molding process, morphology, nanocomposite mold, olefin copolymer, performance, pin, pin-on-disc, pin-on-disk tests, poly(3-hydroxybutyrate-co-3-hydroxyvalerate, polymer, polymer contacts, polymer materials, polymer melts, polymer pins, polypropylene, precision, precision manufacturing, pressure, pressure-dependent friction coefficient, process, profile, profile analysis, reduced friction coefficient, resistance, results, severe adhesive wear, shape, study, superior wear resistance, surface, surface energy, surface wettability, test, tribological performance, understanding, wear, wear morphology, wear resistance, wettability

Funders

  • Science Foundation Ireland
  • China Scholarship Council
  • Enterprise Ireland

Data Provider: Digital Science