參考文獻 |
[1] W.S. Wong, M. Li, D.R. Nisbet, V.S. Craig, Z. Wang, A. Tricoli, Mimosa Origami: A nanostructure-enabled directional self-organization regime of materials, Sci. adv. 2(6) (2016) e1600417.
[2] J.A. Lv, Y. Liu, J. Wei, E. Chen, L. Qin, Y. Yu, Photocontrol of fluid slugs in liquid crystal polymer microactuators, Nature 537(7619) (2016) 179-84.
[3] H. Chen, P. Zhang, L. Zhang, H. Liu, Y. Jiang, D. Zhang, Z. Han, L. Jiang, Continuous directional water transport on the peristome surface of Nepenthes alata, Nature 532(7597) (2016) 85-9.
[4] C. Wang, S.S. Nair, S. Veeravalli, P. Moseh, K.J. Wynne, Sticky or Slippery Wetting: Network Formation Conditions Can Provide a One-Way Street for Water Flow on Platinum-cured Silicone, ACS Appl. Mater. Interfaces 8(22) (2016) 14252-62.
[5] A. Zavabeti, T. Daeneke, A.F. Chrimes, A.P. O′Mullane, J. Zhen Ou, A. Mitchell, K. Khoshmanesh, K. Kalantar-Zadeh, Ionic imbalance induced self-propulsion of liquid metals, Nat. Commun. 7 (2016) 12402.
[6] F.D. Dos Santos, T. Ondarcuhu, Free-running droplets, Phys. Rev. Lett. 75(16) (1995) 2972-2975.
[7] M.K. Chaudhury, G.M. Whitesides, How to make water run uphill, Science 256(5063) (1992) 1539-1541.
[8] Y. Zheng, H. Bai, Z. Huang, X. Tian, F.Q. Nie, Y. Zhao, J. Zhai, L. Jiang, Directional water collection on wetted spider silk, Nature 463(7281) (2010) 640-3.
[9] C. Liu, J. Sun, J. Li, C. Xiang, L. Che, Z. Wang, X. Zhou, Long-range spontaneous droplet self-propulsion on wettability gradient surfaces, Sci. Rep. 7(1) (2017) 7552.
[10] V. Singh, C.-J. Huang, Y.-J. Sheng, H.-K. Tsao, Smart zwitterionic sulfobetaine silane surfaces with switchable wettability for aqueous/nonaqueous drops, J. Mater. Chem. A 6(5) (2018) 2279-2288.
[11] V. Singh, C.-J. Wu, Y.-J. Sheng, H.-K. Tsao, Self-propulsion and shape restoration of aqueous drops on sulfobetaine silane surfaces, Langmuir 33(24) (2017) 6182-6191.
[12] S.-W. Hu, C.-Y. Wang, Y.-J. Sheng, H.-K. Tsao, Peculiar Wetting of N,N-Dimethylformamide: Expansion, Contraction, and Self-Running, J. Phys. Chem. C 123(40) (2019) 24477-24486.
[13] Y.-H. Weng, C.-J. Wu, H.-K. Tsao, Y.-J. Sheng, Spreading dynamics of a precursor film of nanodrops on total wetting surfaces, Phys. Chem. Chem. Phys. 19(40) (2017) 27786-27794.
[14] N.A. Ivanova, N.M. Kovalchuk, V.D. Sobolev, V.M. Starov, Wetting films of aqueous solutions of Silwet L-77 on a hydrophobic surface, Soft Matter 12(1) (2016) 26-30.
[15] S.W. Hu, K.Y. Chen, Y.J. Sheng, H.K. Tsao, Directed self-propulsion of droplets on surfaces absent of gradients for cargo transport, J. Colloid Interface Sci. 586 (2021) 469-478.
[16] J.S. Sander, R.M. Erb, C. Denier, A.R. Studart, Magnetic transport, mixing and release of cargo with tailored nanoliter droplets, Adv. Mater. 24(19) (2012) 2582-2587.
[17] A.F. Demirörs, M.T. Akan, E. Poloni, A.R. Studart, Active cargo transport with Janus colloidal shuttles using electric and magnetic fields, Soft Matter 14(23) (2018) 4741-4749.
[18] L. Guo, G.H. Tang, S. Kumar, Droplet Morphology and Mobility on Lubricant-Impregnated Surfaces: A Molecular Dynamics Study, Langmuir 35(49) (2019) 16377-16387.
[19] F. Schellenberger, J. Xie, N. Encinas, A. Hardy, M. Klapper, P. Papadopoulos, H.J. Butt, D. Vollmer, Direct observation of drops on slippery lubricant-infused surfaces, Soft Matter 11(38) (2015) 7617-26.
[20] S. Sett, X. Yan, G. Barac, L.W. Bolton, N. Miljkovic, Lubricant-Infused Surfaces for Low-Surface-Tension Fluids: Promise versus Reality, ACS Appl. Mater. Interfaces 9(41) (2017) 36400-36408. |