43
11. Han, A., Lu, W., Punyamurtula, V.K., Chen, X., Surani, F.B., Kim, T., et al.: Effective viscosity of glycerin in a nanoporous silica gel. J. Appl.
Phys. 104, 124908 (2008)
12. Coiffard, L., Eroshenko, V.: Temperature effect on water intrusion/expulsion in grafted silica gels. J Colloid Interface Sci. 300, 304–309 (2006)
13. Xu, B., Wang, B., Park, T., Qiao, Y., Zhou, Q., Chen, X.: Temperature dependence of fluid transport in nanopores. J. Chem. Phys. 136,
184701 (2012)
14. Qiao, Y., Zhongyuan, S., Lu, W., Han, A.: Temperature variation in energy absorption system functionalized by nanomaterials. MRS Proc.
1242, 1–7 (2010)
15. Han, A., Lu, W., Punyamurtula, V.K., Kim, T., Qiao, Y.: Temperature variation in liquid infiltration and defiltration in a MCM41. J. Appl. Phys.
105, 2–5 (2009)
16. Grosu, Y., Ievtushenko, O., Eroshenko, V., Nedelec, J.M., Grolier, J.P.E.: Water intrusion/extrusion in hydrophobized mesoporous silica
gel in a wide temperature range: capillarity, bubble nucleation and line tension effects. Colloids Surf. A Physicochem. Eng. Asp. 441,
549–555 (2014)
17. Zhao, J., Liu, L., Culligan, P.J., Chen, X.: Thermal effect on the dynamic infiltration of water into single-walled carbon nanotubes. Phys. Rev.
E Stat. Nonlinear Soft Matter Phys. 80, 061206 (2009)
18. Ryzhikov, A., Nouali, H., Daou, T.J., Patarin, J.: A drastic influence of the anion nature and concentration on high pressure intrusion- extrusion
of electrolyte solutions in silicalite-1. Phys. Chem. Chem. Phys. 20, 6462–6468 (2018)
19. Liu, L., Lim, H., Lu, W., Qiao, Y., Chen, X.: Mechanical-to-electric energy conversion by mechanically driven flow of electrolytes confined in
nanochannels. Appl. Phys. Express. 6, 015202 (2013)
20. Xu, L., Li, M., Lu, W.: Effect of electrolytes on gas oversolubility and liquid outflow from hydrophobic nanochannels. Langmuir. 35,
14505–14510 (2019)
21. Li, M., Lu, W.: Adaptive liquid flow behavior in 3D nanopores. Phys. Chem. Chem. Phys. 19, 17167–17172 (2017)
22. Li, M., Xu, L., Lu, W.: Nanopore size effect on critical infiltration depth of liquid nanofoam as a reusable energy absorber. J. Appl. Phys. 125,
044303 (2019)
7 Ultra-Fast and Tunable Liquid Nanofoam Load Limiter
11. Han, A., Lu, W., Punyamurtula, V.K., Chen, X., Surani, F.B., Kim, T., et al.: Effective viscosity of glycerin in a nanoporous silica gel. J. Appl.
Phys. 104, 124908 (2008)
12. Coiffard, L., Eroshenko, V.: Temperature effect on water intrusion/expulsion in grafted silica gels. J Colloid Interface Sci. 300, 304–309 (2006)
13. Xu, B., Wang, B., Park, T., Qiao, Y., Zhou, Q., Chen, X.: Temperature dependence of fluid transport in nanopores. J. Chem. Phys. 136,
184701 (2012)
14. Qiao, Y., Zhongyuan, S., Lu, W., Han, A.: Temperature variation in energy absorption system functionalized by nanomaterials. MRS Proc.
1242, 1–7 (2010)
15. Han, A., Lu, W., Punyamurtula, V.K., Kim, T., Qiao, Y.: Temperature variation in liquid infiltration and defiltration in a MCM41. J. Appl. Phys.
105, 2–5 (2009)
16. Grosu, Y., Ievtushenko, O., Eroshenko, V., Nedelec, J.M., Grolier, J.P.E.: Water intrusion/extrusion in hydrophobized mesoporous silica
gel in a wide temperature range: capillarity, bubble nucleation and line tension effects. Colloids Surf. A Physicochem. Eng. Asp. 441,
549–555 (2014)
17. Zhao, J., Liu, L., Culligan, P.J., Chen, X.: Thermal effect on the dynamic infiltration of water into single-walled carbon nanotubes. Phys. Rev.
E Stat. Nonlinear Soft Matter Phys. 80, 061206 (2009)
18. Ryzhikov, A., Nouali, H., Daou, T.J., Patarin, J.: A drastic influence of the anion nature and concentration on high pressure intrusion- extrusion
of electrolyte solutions in silicalite-1. Phys. Chem. Chem. Phys. 20, 6462–6468 (2018)
19. Liu, L., Lim, H., Lu, W., Qiao, Y., Chen, X.: Mechanical-to-electric energy conversion by mechanically driven flow of electrolytes confined in
nanochannels. Appl. Phys. Express. 6, 015202 (2013)
20. Xu, L., Li, M., Lu, W.: Effect of electrolytes on gas oversolubility and liquid outflow from hydrophobic nanochannels. Langmuir. 35,
14505–14510 (2019)
21. Li, M., Lu, W.: Adaptive liquid flow behavior in 3D nanopores. Phys. Chem. Chem. Phys. 19, 17167–17172 (2017)
22. Li, M., Xu, L., Lu, W.: Nanopore size effect on critical infiltration depth of liquid nanofoam as a reusable energy absorber. J. Appl. Phys. 125,
044303 (2019)
7 Ultra-Fast and Tunable Liquid Nanofoam Load Limiter
