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Editorial

Carbon-Based Polymer Nanocomposites for High-Performance Applications II

by
Ana M. Díez-Pascual
Universidad de Alcalá, Facultad de Ciencias, Departamento de Química Analítica, Química Física e Ingeniería Química, Ctra. Madrid-Barcelona, Km. 33.6, 28805 Alcalá de Henares, Madrid, Spain
Polymers 2022, 14(5), 870; https://doi.org/10.3390/polym14050870
Submission received: 29 January 2022 / Accepted: 15 February 2022 / Published: 23 February 2022
In the field of science and technology, carbon-based nanomaterials, such as carbon nanotubes (CNTs), graphene, graphene oxide, graphene quantum dots (GQDs), fullerenes, and so forth, are becoming very attractive for a wide number of applications. For instance, in the field of biological and biomedical applications, they are widely used in biosensing, drug delivery, tissue engineering, imaging, diagnosis, and cancer therapy. In 1991, Iijima observed, for the first time, the formation of multiwalled carbon nanotubes from carbon arc discharge [1]. Afterward, research on CNTs proliferated quickly as a consequence of their unique mechanical, electrical, and structural diversity, which endows them with superior strength, flexibility, and electrical conductivity. However, among the various allotropes of carbon, graphene is regarded as the most attractive material owing to its unique intrinsic properties. The term “graphene” was initially introduced by Mouras and co-workers in 1987, who coined the term “graphitic intercalation compounds (GIC)” [2]. Over the last two decades, research on graphene has greatly increased, and numerous exceptional properties have been reported. Its oxidized form, graphene oxide, shows easy functionalization ability and aqueous processability, making it suitable for large-scale applications [3]. Other attractive nanomaterials from the carbon family are GQDs, which have excellent photoluminescence due to their quantum confinement effect, superior biocompatibility, and resistance to photo-bleaching [4]. The combination of carbon nanomaterials with polymeric matrices leads to novel nanocomposites with better performance due to synergistic effects [5,6,7,8,9], with applications in areas such as electronics, energy storage, photocatalysis, automobiles, aerospace engineering, and so forth.
This Special Issue offers selected examples regarding carbon nanomaterial-reinforced polymeric composites for a variety of these applications. Organic thermoelectric materials, such as polyaniline, poly(3-hexylthiophene) (P3HT), and poly(3,4-ethylenedioxythiophene) (PEDOT), have attracted extensive attention due to their low cost, flexibility, and inherently low thermal conductivity [10,11,12]. However, their thermoelectric factor is low compared to their inorganic counterparts. Thus, the nanocomposite strategy has been utilized to tune the thermoelectric properties of conducting polymers based on the expectation of combining the unique characters of individual nano-inclusions and/or introducing possible synergistic effects [13]. Single-walled carbon nanotubes (SWCNTs) have been extensively used as nanofillers for enhancing the thermoelectric properties of polymers, due to their outstanding electronic transport properties. However, raw SWCNTs are mixtures of semiconducting and metallic CNTs, which makes the tuning of properties difficult. In a recent work [14], pure SWCNT powders were obtained by sorting them from raw mixed SWCNTs through a simple solution centrifugation process, using regioregular poly(3-dodecylthiophene) (rr-P3DDT) as the dispersant. The SWCNT/rr-P3DDT composite films with different SWCNT contents of up to 50 wt% were prepared via direct solution casting, showing significantly enhanced Seebeck coefficients and power factors. This work shows the effectiveness of pure semiconductor SWCNTs as fillers to optimize the thermoelectric properties of polymer/CNT nanocomposites.
However, the major challenges in utilizing CNTs include the poor interfacial bonding between CNTs and the polymer matrix, the poor dispersion of the CNTs within the polymer matrix, the improper alignment of the CNTs, and the degradation of the CNTs due to processing. As a result, the predicted properties of the CNTs could not be fully reached in modified polymer nanocomposites. To solve this issue, numerous surface modification methods for improving the quality of the filler–matrix bonding have been reported [15,16,17,18]. In particular, acid treatment using a H2SO4/HNO3 mixture and silane functionalization is an effective method to enhance the dispersion of the MWCNTs within kenaf and hybrid kenaf/glass fiber-reinforced epoxy multifunctional composites [19]. Thus, the compressive modulus and strength increased by 73% and 20%, respectively, for composites incorporating 1.0 wt% SWCNT compared to binary composites.
Piezoelectric polymers, such as polyvinylidene (PVDF), with advantages such as simple processing routes, light, and thin structures, durability, high chemical resistance, low environmental sensitivity, and biocompatibility, have significant potential in wearable devices. The incorporation of SWCNTs and MWCNTs has been reported as an efficient route to induce a higher proportion of the β-phase structure and improve the overall piezoelectricity and mechanical strength of the polymer [20]. In a recent study, 0D carbon black 1D CNT–COOH and 2D GO were added to poly(vinylidenefluoride-co-trifluoroethylene (PVDF-TrFE) films to improve their crystallinity and piezoelectric effect [21]. The addition of 1 wt% CNT–COOH and polymeric dispersants increased the β-phase content in PVDF-TrFE from 74% to 86%, which in turn raised the piezoelectric coefficient by about 32%, and these films show great potential as seismocardiographic sensors, pressure sensors, and energy-harvesting elements. Flexible and wearable electronics have enormous potential in applications in human motion detection, human–computer interaction, and context identification, which have promoted the rapid development of flexible sensors. A novel work developed a facile solvent-free method toward creating a flexible pressure and stretch sensor based on a hierarchical layer of graphene nanoplates. The resulting sensor exhibited excellent pressure and strain-sensing characteristics, with a low strain detection limit at 0.1%, a large strain gauge factor of up to 36, and outstanding cyclic stability, withstanding more than 1000 cycles. Moreover, the sensor has an extraordinary pressure range as large as 700 kPa. Compared to most of the reported graphene-based sensors, this work uses a completely environmentally friendly method without any organic solvents [22].
In another work, a high-performance copolymer matrix made from Kevlar®- and Nomex®-derived chains was modified by introducing a few kinks in the linear Kevlar intractable chain to improve its solubility, and hence processability, without affecting its outstanding thermo-mechanical performance [23]. The matrix was then reinforced with exfoliated pristine graphene and graphene oxide. The carboxyl groups on the surface of the graphene oxide were chemically bonded with the amine-terminated copolymer chains, resulting in improved mechanical properties and glass transition temperatures. This novel strategy is highly suitable for tailoring the properties of high molecular weight polymers.
GO shows improved solubility in aqueous media. However, it is insoluble in non-polar and polar aprotic solvents, which limits some applications. In this regard, different functionalization approaches have been carried out, such as the reaction with hexamethylene diisocyanate (HDI) [24]. Another approach is the functionalization with macromolecular compounds, such as poly(5-amino-1-naphthol) (P5A1N), which can be carried out by the electrochemical polymerization of 5-amino-1-naphthol (5A1N) in the presence of HClO4 and H4SiW12O40 on the surface of a Au electrode covered with the GO sheets [25]. The functionalized nanomaterial was able to support 1,4-phenylene diisothiocyanate (PDITC), a compound used as a cross-linking agent for various biological application platforms for the detection of cancer biomarkers. Overall, we hope that this issue will be useful to an interdisciplinary readership, including researchers in academia and industry in the fields of materials science, engineering, chemistry, energy, and biomedical engineering.

Conflicts of Interest

The author declares no conflict of interest.

References

  1. Monthioux, M.; Kuznetsov, V.L. Who should be given the credit for the discovery of carbon nanotubes? Carbon 2006, 44, 1621–1623. [Google Scholar] [CrossRef]
  2. Mouras, S.A.; Djurado, D.; Hamm, A.; Cousseins, J. Synthesis of first stage graphite intercalation compounds with fluorides. Inorg. Chem. Rev. 1987, 24, 572–582. [Google Scholar]
  3. Díez-Pascual, A.M.; Díez-Vicente, A.L. Poly(propylene fumarate)/polyethylene glycol-modified graphene oxide biocomposites for tissue engineering. ACS Appl. Mater. Interfaces 2016, 8, 17902–17914. [Google Scholar] [CrossRef] [PubMed]
  4. Tian, Z.; Yao, X.; Ma, K.; Niu, X.; Grothe, J.; Xu, Q. Metal–organic framework/graphene quantum dot nanoparticles used for synergistic chemo- and photothermal therapy. ACS Omega 2017, 2, 1249–1258. [Google Scholar] [CrossRef] [Green Version]
  5. Diez-Pascual, A.M.; Naffakh, M.; Gomez, M.A.; Marco, C.; Ellis, G.; Gonzalez-Dominguez, J.M.; Anson, A.; Martínez, M.T.; Martínez-Rubi, Y.; Simard, B.; et al. Influence of a compatibilizer on the thermal and dynamic mechanical properties of PEEK/carbon nanotube composites. Nanotechnology 2009, 20, 315707–315720. [Google Scholar] [CrossRef] [PubMed]
  6. Díez-Pascual, A.M.; Sánchez, J.A.L.; Capilla, R.P.; Díaz, P.G. Recent Developments in Graphene/Polymer Nanocomposites for Application in Polymer Solar Cells. Polymers 2018, 10, 217. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  7. Siwal, S.S.; Zhang, Q.; Devi, N.; Thakur, V.K. Carbon-based polymer nanocomposite for high-performance energy storage applications. Polymers 2020, 12, 505. [Google Scholar] [CrossRef] [Green Version]
  8. Diez-Pascual, A.M.; Naffakh, M.; Marco, C.; Ellis, G. Rheological and tribological properties of carbon nanotube/thermoplastic nanocomposites incorporating inorganic fullerene- like WS2 nanoparticles. J. Phys. Chem. B 2012, 116, 7959–7969. [Google Scholar] [CrossRef] [Green Version]
  9. Mérai, L.; Deák, Á.; Sebők, D.; Kukovecz, Á.; Dékány, I.; Janovák, L. A Stimulus-Responsive Polymer Composite Surface with Magnetic Field-Governed Wetting and Photocatalytic Properties. Polymers 2020, 12, 1890. [Google Scholar] [CrossRef]
  10. Luceño Sánchez, J.A.; Peña Capilla, R.; Díez-Pascual, A.M. High-Performance PEDOT:PSS/hexamethylene diisocyanate-functionalized graphene oxide nanocomposites: Preparation and properties. Polymers 2018, 10, 1169. [Google Scholar] [CrossRef] [Green Version]
  11. Wang, J.; Cai, K.F.; Song, H.J.; Shen, S. Simultaneously enhanced electrical conductivity and Seebeck coefficient in Poly(3,4-ethylenedioxythiophene) films treated with hydroiodic acid. Synth. Met. 2016, 220, 585–590. [Google Scholar] [CrossRef]
  12. Luceño Sánchez, J.A.; Díez-Pascual, A.M.; Peña Capilla, R.; García Díaz, P. The effect of hexamethylene diisocyanate-modified graphene oxide as a nanofiller material on the properties of conductive polyaniline. Polymers 2019, 11, 1032. [Google Scholar] [CrossRef] [Green Version]
  13. Luceño-Sánchez, J.A.; Charas, A.; Díez-Pascual, A.M. Effect of HDI-Modified GO on the Thermoelectric Performance of Poly(3,4-ethylenedioxythiophene): Poly(Styrenesulfonate) Nanocomposite Films. Polymers 2021, 13, 1503. [Google Scholar] [CrossRef] [PubMed]
  14. Wang, M.; Yao, Q.; Qu, S.; Chen, Y.; Li, H.; Chen, L. Preparation and Thermoelectric Properties of Semiconducting Single-Walled Carbon Nanotubes/Regioregular Poly(3-dodecylthiophene) Composite Films. Polymers 2020, 12, 2720. [Google Scholar] [CrossRef] [PubMed]
  15. Sahoo, N.G.; Rana, S.; Cho, J.W.; Li, L.; Chan, S.H. Polymer nanocomposites based on functionalized carbon nanotubes. Prog. Polym. Sci. 2010, 35, 837–867. [Google Scholar] [CrossRef]
  16. Diez-Pascual, A.M.; Naffakh, M. Grafting of an aminated poly(phenylene sulphide) derivative to functionalized single-walled carbon nanotubes. Carbon 2012, 50, 857–868. [Google Scholar] [CrossRef] [Green Version]
  17. Pitchan, M.K.; Bhowmik, S.; Balachandran, M.; Abraham, M. Effect of surface functionalization on mechanical properties and decomposition kinetics of high performance polyetherimide/MWCNT nano composites. Compos. Part A 2016, 90, 147–160. [Google Scholar] [CrossRef]
  18. Diez-Pascual, A.M.; Martinez, G.; Gonzalez-Dominguez, J.M.; Anson, A.; Martínez, M.T.; Gomez, M.A. Grafting of a hydroxylated poly(ether ether ketone) to the surface of single-walled carbon nanotubes. J. Mater. Chem. 2010, 20, 8285–8296. [Google Scholar] [CrossRef]
  19. Sapiai, N.; Jumahat, A.; Jawaid, M.; Khan, A. Effect of MWCNT Surface Functionalisation and Distribution on Compressive Properties of Kenaf and Hybrid Kenaf/Glass Fibres Reinforced Polymer Composites. Polymers 2020, 12, 2522. [Google Scholar] [CrossRef]
  20. Ansón-Casaos, A.; González-Domínguez, J.M.; Díez-Pascual, A.M.; Gómez-Fatou, M.A.; Martínez, M.T. J Choosing the Chemical Route for Carbon Nanotube Integration in Poly(vinylidene fluoride). Phys. Chem. C 2012, 116, 16217–16225. [Google Scholar] [CrossRef]
  21. Li, J.-W.; Huang, C.-Y.; Chen, K.-Y.; Chen, J.-X.; Hsu, X.-Y.; Chen, Y.-F.; Kuo, C.-F.J.; Cheng, C.-C.; Suen, M.-C.; Chiu, C.-W. Enhanced Piezoelectric Properties of Poly(Vinylidenefluoride-Co-Trifluoroethylene)/Carbon-Based Nanomaterial Composite Films for Pressure Sensing Applications. Polymers 2020, 12, 2999. [Google Scholar] [CrossRef] [PubMed]
  22. Wang, J.; Suzuki, R.; Ogata, K.; Nakamura, T.; Dong, A.; Weng, W. Near-Linear Responsive and Wide-Range Pressure and Stretch Sensor Based on Hierarchical Graphene-Based Structures via Solvent-Free Preparation. Polymers 2020, 12, 1814. [Google Scholar] [CrossRef] [PubMed]
  23. Shiju, J.; Al-Sagheer, F.; Ahmad, Z. Thermal Mechanical Properties of Graphene Nano-Composites with Kevlar-Nomex Copolymer: A Comparison of the Physical and Chemical Interactions. Polymers 2020, 12, 2740. [Google Scholar] [CrossRef] [PubMed]
  24. Luceño, J.A.; Maties, G.; Gonzalez-Arellano, C.; Díez-Pascual, A.M. Synthesis and characterization of graphene oxide derivatives via functionalization reaction with hexamethylene diisocyanate. Nanomaterials 2018, 8, 870. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  25. Baibarac, M.; Daescu, M.; Socol, M.; Bartha, C.; Negrila, C.; Fejer, S.N. Influence of Reduced Graphene Oxide on the Electropolymerization of 5-Amino-1-naphthol and the Interaction of 1,4-Phenylene Diisothiocyanate with the Poly(5-Amino-1-naphtol)/Reduced Graphene Oxide Composite. Polymers 2020, 12, 1299. [Google Scholar] [CrossRef] [PubMed]
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Díez-Pascual, A.M. Carbon-Based Polymer Nanocomposites for High-Performance Applications II. Polymers 2022, 14, 870. https://doi.org/10.3390/polym14050870

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Díez-Pascual AM. Carbon-Based Polymer Nanocomposites for High-Performance Applications II. Polymers. 2022; 14(5):870. https://doi.org/10.3390/polym14050870

Chicago/Turabian Style

Díez-Pascual, Ana M. 2022. "Carbon-Based Polymer Nanocomposites for High-Performance Applications II" Polymers 14, no. 5: 870. https://doi.org/10.3390/polym14050870

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