203
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Effects of total pressure on carbon nanotube synthesis, independent of feed pressure

, , ORCID Icon, &
Pages 199-206 | Received 19 Sep 2021, Accepted 16 Jan 2022, Published online: 04 Feb 2022

References

  • Iijima S. Helical microtubules of graphitic carbon. Nature. 1991;354(6348):56–58.
  • Takakura A, et al. Strength of carbon nanotubes depends on their chemical structures. Nat Commun. 2019;10(1):3040.
  • Barnett CJ, et al. Enhancement of multiwalled carbon nanotubes’ electrical conductivity using metal nanoscale Copper contacts and its implications for carbon nanotube-enhanced copper conductivity. J Phys Chem C. 2020;124(34):18777–18783.
  • Chakraborty S, et al. Surface area measurement of functionalized single-walled carbon nanotubes. J Phys Chem B. 2006;110(49):24812–24815.
  • Ren X, et al. Carbon nanotubes as adsorbents in environmental pollution management: A review. Chem Eng J. 2011;170(2):395–410.
  • Chen Y, et al. Toughness reinforcement in carbon nanotube-filled high impact polypropylene copolymer with β-nucleating agent. Ind Eng Chem Res. 2016;55(32):8733–8742.
  • Liu P, et al. Ultra-low CNTs filled high-performance fast self-healing triboelectric nanogenerators for wearable electronics. Compos Sci Technol. 2021;208:108733.
  • Toussi SM, et al. Optimization of synthesis condition for carbon nanotubes by catalytic chemical vapor deposition (CCVD). IOP Conference Series: Materials Science and Engineering, 2011. 17: p. 012003.
  • Qistina O, et al. Optimization of carbon nanotube-coated monolith by direct liquid injection chemical vapor deposition based on taguchi method. Catalysts. 2020;10(1).
  • Chang J, et al. Efficient closed-loop maximization of carbon nanotube growth rate using Bayesian optimization. Sci Rep. 2020;10(1):9040.
  • Radman H, et al. Quality and quantity of carbon nanotube arrays grown in different pressures and temperatures across absorption-, surface-, and diffusion-controlled regimes. Ind Eng Chem Res. 2020;59(23):10923–10930.
  • Lebedeva IV, et al. First-principles based kinetic modeling of effect of hydrogen on growth of carbon nanotubes. Carbon N Y. 2011;49(7):2508–2521.
  • Pint CL, et al. Temperature and gas pressure effects in vertically aligned carbon nanotube growth from Fe−Mo catalyst. J Phys Chem C. 2008;112(36):14041–14051.
  • Sharma R, et al. Dynamic observations of the effect of pressure and temperature conditions on the selective synthesis of carbon nanotubes. Nanotechnology. 2007;18(12):125602.
  • Li WZ, et al. Effect of gas pressure on the growth and structure of carbon nanotubes by chemical vapor deposition. Appl Phys A. 2001;73(2):259–264.
  • Pint CL, et al. Investigation of optimal parameters for oxide-assisted growth of vertically aligned single-walled carbon nanotubes. J Phys Chem C. 2009;113(10):4125–4133.
  • Koepke JC, et al. Role of pressure in the growth of hexagonal boron nitride thin films from ammonia-borane. Chem Mater. 2016;28(12):4169–4179.
  • Kast W, Hohenthanner C-R. Mass transfer within the gas-phase of porous media. Int J Heat Mass Transfer. 2000;43(5):807–823.
  • Zaryankin AE. Boundary layer and fundamental problems of hydrodynamics (compatibility of a logarithmic velocity profile in a turbulent boundary layer with the experience values). J Phys Conf Ser. 2017;891:012061.
  • Schneider JJ. Vertically Aligned Carbon nanotubes as platform for biomimetically Inspired mechanical sensing, bioactive surfaces, and Electrical cell interfacing. Advanced Biosystems. 2017;1(11):1700101.
  • Liu C, Jie W. Thermodynamic analysis and single crystal growth of ZnSe from ZnSe−N−H−Cl system. Cryst Growth Des. 2008;8(10):3532–3536.
  • Li C, et al. Role of boundary layer diffusion in vapor deposition growth of chalcogenide nanosheets: the case of GeS. ACS Nano. 2012;6(10):8868–8877.
  • Pruitt WO, Morgan DL, Lourence FJ. Momentum and mass transfers in the surface boundary layer. Q J R Metereol Soc. 1973;99(420):370–386.
  • Pham QN, et al. Effect of growth temperature on the synthesis of carbon nanotube arrays and amorphous carbon for thermal applications. physica Status Solidi (a). 2017;214(7):1600852.
  • Li Y, et al. Effect of hydrogen concentration on the growth of carbon nanotube arrays for gecko-inspired adhesive applications. Coatings. 2017;7(12).
  • Ci L, et al. Crystallization behavior of the amorphous carbon nanotubes prepared by the CVD method. J Cryst Growth. 2001;233(4):823–828.
  • Srisuma P, et al. A fundamental exploration on carbon nanotube formation via pyrolysis of ferrocene and glycerol: experimental and theoretical viewpoints. Engineering Science and Technology, an International Journal. 2021;24(6):1373–1382.
  • Shaijumon MM, Ramaprabhu S. Studies of yield and nature of carbon nanostructures synthesized by pyrolysis of ferrocene and hydrogen adsorption studies of carbon nanotubes. Int J Hydrogen Energy. 2005;30(3):311–317.
  • Zheng R, et al. Synthesis of vertically aligned carbon nanotube arrays on silicon substrates. Sci China Ser E Technol Sci. 2004;47(5):616–624.
  • Kaatz FH, et al. Thermodynamic model for growth mechanisms of multiwall carbon nanotubes. Appl Phys Lett. 2006;89(24):241915.
  • Hofmann S, et al. Effects of catalyst film thickness on plasma-enhanced carbon nanotube growth. J Appl Phys. 2005;98(3):034308.
  • Mori S, Suzuki M. Non-Catalytic, Low-Temperature Synthesis of Carbon Nanofibers by Plasma-Enhanced Chemical Vapor Deposition, in Nanofibers. 2010.
  • Kang S-JL. Intermediate and final stage sinterin. In: S-JL Kang, editor. Sintering. Oxford: Butterworth-Heinemann; 2005. p. 57–87.
  • Navas H, et al. Unveiling the evolutions of nanotube diameter distribution during the growth of single-walled carbon nanotubes. ACS Nano. 2017;11(3):3081–3088.
  • Tuinstra F, Koenig JL. Raman spectrum of graphite. J Chem Phys. 1970;53(3):1126–1130.
  • Schünemann C, et al. Catalyst poisoning by amorphous carbon during carbon nanotube growth: fact or fiction? ACS Nano. 2011;5(11):8928–8934.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.