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Italicized carbon nanotube facilitating water transport: a molecular dynamics simulation

  • Article
  • Chemistry
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Science Bulletin

Abstract

While the preferential movement of water inside carbon nanotube is appealing for water purification, our understanding of the water transport mechanism through carbon nanotube (CNT)-based membrane is far from adequate. Here we conducted molecular dynamics simulations to study how the alignment of the CNTs in the membrane affects the water transport through the CNT membrane. It was shown that compared to the conventional CNT membrane where the alignment of CNTs was vertical to membrane surface, the “italicized CNT membrane” in which the contact angel between membrane surface and the CNT alignment is not 90° offered a higher transmembrane flux of water. The expanded exposure of more carbon atoms to water molecules reduced the energy barrier near the entrance of this italicized CNT membrane, compared to the vertical one. For water flows through the italicized CNT membrane, the Lennard-Jones interaction between water and nanotube as function of central path of the CNT changes from “U” to “V” pattern, which significantly lowers energy barrier for filling water into the CNT, favoring the water transport inside carbon nanotube. Above simulation indicates new opportunities for applying CNT in water purification or related fields in which water transport matters.

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References

  1. Hummer G, Rasaiah JC, Noworyta JP (2001) Water conduction through the hydrophobic channel of a carbon nanotube. Nature 414:188–190

    Article  Google Scholar 

  2. Majumder M, Zhan X, Andrews R et al (2007) Voltage gated carbon nanotube membranes. Langmuir 23:8624–8631

    Article  Google Scholar 

  3. Hinds BJ, Chopra N, Rantell T et al (2004) Aligned multiwalled carbon nanotube membranes. Science 303:62–65

    Article  Google Scholar 

  4. Chen QW, Meng LY, Li QK et al (2011) Water transport and purification in nanochannels controlled by asymmetric wettability. Small 7:2225–2231

    Article  Google Scholar 

  5. Won CY, Aluru NR (2007) Water permeation through a subnanometer boron nitride nanotube. J Am Chem Soc 129:2748–2749

    Article  Google Scholar 

  6. Won CY, Aluru NR (2008) Structure and dynamics of water confined in a boron nitride nanotube. J Phys Chem C 112:1812–1818

    Article  Google Scholar 

  7. Huang LL, Zhang LZ, Shao Q et al (2006) Molecular dynamics simulation study of the structural characteristics of water molecules confined in functionalized carbon nanotubes. J Phys Chem B 110:25761–25768

    Article  Google Scholar 

  8. Kalra A, Garde S, Hummer G (2003) Osmotic water transport through carbon nanotube membranes. Proc Natl Acad Sci USA 100:10175–10180

    Article  Google Scholar 

  9. Joseph S, Aluru NR (2008) Why are carbon nanotubes fast transporters of water? Nano Lett 8:452–458

    Article  Google Scholar 

  10. Service RF (2006) Desalination freshens up. Science 313:1088–1090

    Article  Google Scholar 

  11. Corry B (2008) Designing carbon nanotube membranes for efficient water desalination. J Phys Chem B 112:1427–1434

    Article  Google Scholar 

  12. Won CY, Joseph S, Aluru NR (2006) Effect of quantum partial charges on the structure and dynamics of water in single-walled carbon nanotubes. J Chem Phys 125:114701

    Article  Google Scholar 

  13. Suk ME, Raghunathan AV, Aluru NR (2008) Fast reverse osmosis using boron nitride and carbon nanotubes. Appl Phys Lett 92:133120

    Article  Google Scholar 

  14. Raghunathan AV, Aluru NR (2006) Molecular understanding of osmosis in semipermeable membranes. Phys Rev Lett 97:024501

    Article  Google Scholar 

  15. Raghunathan AV, Aluru NR (2006) Effect of size-asymmetric electrolyte on single-file osmosis. Appl Phys Lett 89:064107

    Article  Google Scholar 

  16. Granick S, Bae SC (2008) Chemistry a curious antipathy for water. Science 322:1477–1478

    Article  Google Scholar 

  17. Falk K, Sedlmeier F, Joly L et al (2010) Molecular origin of fast water transport in carbon nanotube membranes: superlubricity versus curvature dependent friction. Nano Lett 10:4067–4073

    Article  Google Scholar 

  18. Lu DN (2013) Accelerating water transport through a charged swcnt: a molecular dynamics simulation. Phys Chem Chem Phys 15:14447–14457

    Article  Google Scholar 

  19. Lee B, Baek Y, Lee M et al (2015) A carbon nanotube wall membrane for water treatment. Nat Commun 6:7109

    Article  Google Scholar 

  20. Chen QL, Kong X, Li JP et al (2014) Electrokinetic desalination using honeycomb carbon nanotubes (hc-cnts): a conceptual study by molecular simulation. Phys Chem Chem Phys 16:18941–18948

    Article  Google Scholar 

  21. Qiu T, Meng XW, Huang JP (2015) Nonstraight nanochannels transfer water faster than straight nanochannels. J Phys Chem B 119:1496–1502

    Article  Google Scholar 

  22. Corry B (2011) Water and ion transport through functionalised carbon nanotubes: implications for desalination technology. Energy Environ Sci 4:751–759

    Article  Google Scholar 

  23. Chan WF, Chen HY, Surapathi A et al (2013) Zwitterion functionalized carbon nanotube/polyamide nanocomposite membranes for water desalination. ACS Nano 7:5308–5319

    Article  Google Scholar 

  24. Melillo M, Zhu FQ, Snyder MA et al (2011) Water transport through nanotubes with varying interaction strength between tube wall and water. J Phys Chem Lett 2:2978–2983

    Article  Google Scholar 

  25. Dutzler R, Campbell EB, Cadene M et al (2002) X-ray structure of a cic chloride channel at 3.0 angstrom reveals the molecular basis of anion selectivity. Nature 415:287–294

    Article  Google Scholar 

  26. Nose S (1984) A unified formulation of the constant temperature molecular-dynamics methods. J Chem Phys 81:511–519

    Article  Google Scholar 

  27. Essmann U, Perera L, Berkowitz ML et al (1995) A smooth particle mesh ewald method. J Chem Phys 103:8577–8593

    Article  Google Scholar 

  28. Schneider EW, Verbrugge MW (1993) Radiotracer method for simultaneous measurement of cation, anion and water transport through ion-exchange membranes. Appl Radiat Isot 44:1399–1408

    Article  Google Scholar 

Download references

Acknowledgments

This work was supported by the National Natural Science Foundation of China (21476125), Tsinghua University Foundation (2013108930) and State Key Laboratory of Chemical Engineering (SKL-CHE-10A01).

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The authors declare that they have no conflict of interest.

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Correspondence to Diannan Lu or Zheng Liu.

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Li, J., Kong, X., Lu, D. et al. Italicized carbon nanotube facilitating water transport: a molecular dynamics simulation. Sci. Bull. 60, 1580–1586 (2015). https://doi.org/10.1007/s11434-015-0888-7

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  • DOI: https://doi.org/10.1007/s11434-015-0888-7

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