Liquid Crystal-driven Superspreading of Polymer Droplets at the Air-Water Interface
RESEARCH ARTICLE|Updated:2026-08-19
|
Liquid Crystal-driven Superspreading of Polymer Droplets at the Air-Water Interface
Liquid Crystal-driven Superspreading of Polymer Droplets at the Air-Water Interface
Chinese Journal of Polymer Science2026年44卷 页码:1-8
Affiliations:
State Key Laboratory of Advanced Fiber Materials, College of Chemistry and Chemical Engineering, Center for Advanced Low-Dimension Materials, Donghua University, Shanghai 201620, China
Author bio:
liuyanjun@dhu.edu.cn (Y.J.L.)
wupeiyi@dhu.edu.cn (P.Y.W.)
Funds:
This work was financially supported by the National Natural Science Foundation of China (Nos. 52433003 and 22405038) and Fundamental Research Funds for the Central Universities (No. 2232026D27).;The authors declare no interest conflict.Electronic supplementary information (ESI) is available free of charge in the online version of this article at http://doi.org/10.1007/s10118-026-3756-9.The related data of this paper is data that should not be shared, and can be obtained from the author for reasonable reasons. The author’s contact information: liuyanjun@dhu.edu.cn.
Song, Y. Z.; Chen, X. C.; Liu, Y. J.; Wu, P. Y. Liquid crystal-driven superspreading of polymer droplets at the air-water interface. Chinese J. Polym. Sci. https://doi.org/10.1007/s10118-026-3756-9
Yuan-Zhu Song, Xing-Chao Chen, Yan-Jun Liu, et al. Liquid Crystal-driven Superspreading of Polymer Droplets at the Air-Water Interface[J/OL]. Chinese Journal of Polymer Science, 2026, 441-8.
Song, Y. Z.; Chen, X. C.; Liu, Y. J.; Wu, P. Y. Liquid crystal-driven superspreading of polymer droplets at the air-water interface. Chinese J. Polym. Sci. https://doi.org/10.1007/s10118-026-3756-9DOI:
Yuan-Zhu Song, Xing-Chao Chen, Yan-Jun Liu, et al. Liquid Crystal-driven Superspreading of Polymer Droplets at the Air-Water Interface[J/OL]. Chinese Journal of Polymer Science, 2026, 441-8.DOI: 10.1007/s10118-026-3756-9.
Liquid Crystal-driven Superspreading of Polymer Droplets at the Air-Water Interface
Ultrathin polymer films are difficult to fabricate over large areas and transfer without damage. Spreading polymer droplets on water offers an atomically flat and releasable substrate
but the attainable area is limited by interfacial friction and tension gradient difference. Here
we show that interfacial resistance
rather than tension difference alone
dictates the spreading limit. By introducing a hydrophobic liquid crystal (4-cyano-4’-heptylbiphenyl
7CB)
we uncover a superspreading phenomenon in which polymer droplets rapidly expand into large-area ultrathin films on aqueous salt solutions. This behavior is enabled by a phase-transition-enabled interfacial lubrication mechanism. During spreading
7CB reaches a low-mobility nematic liquid-crystalline state and becomes enriched on the organic side of the solvent-water interface
forming a dynamically generated lubricating region that reduces resistance to rapid liquid-liquid spreading. Low-field nuclear magnetic resonance (NMR) measurements reveal a sharp transition in molecular mobility
directly linking the phase state of 7CB to interfacial resistance reduction. This strategy is universal across polymers with diverse mechanical properties and enables the fabrication of transferable
nanometer-thick films with integrated functionalities. These findings redefine the role of liquid-liquid interfaces in spreading dynamics and provide a general framework for designing near-frictionless interfacial transport processes.
关键词
Keywords
references
Couder, Y.; Fort, E.; Gautier, C. H.; Boudaoud, A. From bouncing to floating: noncoalescence of drops on a fluid bath. Phys. Rev. Lett. 2005 , 94 , 177801..
Couder, Y.; Protière, S.; Fort, E.; Boudaoud, A. Walking and orbiting droplets. Nature 2005 , 437 , 208−208..
Schutzius, T. M.; Jung, S.; Maitra, T.; Graeber, G.; Köhme, M.; Poulikakos, D. Spontaneous droplet trampolining on rigid superhydrophobic surfaces. Nature 2015 , 527 , 82−85..
Kim, H.; Muller, K.; Shardt, O.; Afkhami, S.; Stone, H. A. Solutal Marangoni flows of miscible liquids drive transport without surface contamination. Nat. Phys. 2017 , 13 , 1105−1110..
Jung, D.; Lim, C.; Shim, H. J.; Kim, Y.; Park, C.; Jung, J.; Han, S. I.; Sunwoo, S.-H.; Cho, K. W.; Cha, G. D.; Kim, D. C.; Koo, J. H.; Kim, J. H.; Hyeon, T.; Kim, D.-H. Highly conductive and elastic nanomembrane for skin electronics. Science 2021 , 373 , 1022−1026..
Dai, Y.; Li, M.; Ji, B.; Wang, X.; Yang, S.; Yu, P.; Wang, S.; Hao, C.; Wang, Z. Liquid metal droplets bouncing higher on thicker water layer. Nat. Commun. 2023 , 14 , 3532..
Zhang, P.; Zhang, F.; Zhao, C.; Wang, S.; Liu, M.; Jiang, L. Superspreading on immersed gel surfaces for the confined synthesis of thin polymer films. Angew. Chem. Int. Ed. 2016 , 55 , 3615−3619..
Zhou, T.; Zhao, C.; Liu, Y.; Huang, J.; Zhou, H.; Nie, Z.; Fan, M.; Zhao, T.; Cheng, Q.; Liu, M. Large-area ultrastrong and stiff layered MXene nanocomposites by shear-flow-induced alignment of nanosheets. ACS Nano 2022 , 16 , 12013−12023..
Liu, X.; Shi, S.; Li, Y.; Forth, J.; Wang, D.; Russell, T. P. Liquid tubule formation and stabilization using cellulose nanocrystal surfactants. Angew. Chem. Int. Ed. 2017 , 56 , 12594−12598..
Smit, W. J.; Bakker, H. J. The surface of ice is like supercooled liquid water. Angew. Chem. Int. Ed. 2017 , 56 , 15540−15544..
Stiopkin, I. V.; Weeraman, C.; Pieniazek, P. A.; Shalhout, F. Y.; Skinner, J. L.; Benderskii, A. V. Hydrogen bonding at the water surface revealed by isotopic dilution spectroscopy. Nature 2011 , 474 , 192−195..
Rather, A. M.; Xu, Y.; Chang, Y.; Dupont, R. L.; Borbora, A.; Kara, U. I.; Fang, J. C.; Mamtani, R.; Zhang, M.; Yao, Y.; Adera, S.; Bao, X.; Man na, U.; Wang, X. Stimuli-responsive liquid-crystal-infused porous surfaces for manipulation of underwater gas bubble transport and adhesion. Adv. Mater. 2022 , 34 , 2110085..
Xu, Y.; Chang, Y.; Yao, Y.; Zhang, M.; Dupont, R. L.; Rather, A. M.; Bao, X.; Wang, X. Modularizable liquid-crystal-based open surfaces enable programmable chemical transport and feeding using liquid droplets. Adv. Mater. 2022 , 34 , 2108788..
Tadokoro, C.; Nihira, T.; Nakano, K. Minimization of friction at various speeds using autonomous viscosity control of nematic liquid crystal. Tribol. Lett. 2014 , 56 , 239−247..
[Zheng, S.; Du, M.; Miao, W.; Wang, D.; Zhu, Z.; Tian, Y.; Jiang, L. 2D prior spreading inspired from Chinese Xuan papers. Adv. Funct. Mater . 2018, 28 , 1800832..
Zhu, Z.; Tian, Y.; Chen, Y.; Gu, Z.; Wang, S.; Jiang, L. Superamphiphilic silicon wafer surfaces and applications for uniform polymer film fabrication. Angew. Chem. Int. Ed. 2017 , 56 , 5720−5724..
Zhu, Z.; Chen, Y.; Luo, X.; Miao, W.; Dong, Z.; Zhou, J.; Tian, Y.; Jiang, L. Ultrafast impact superspreading on superamphiphilic silicon surfaces for effective thermal management. J. Am. Chem. Soc. 2023 , 145 , 15128−15136..
Ojha, D. P.; Praveen, P. L. Theoretical study on liquid crystal cyanobiphenyls: phase stability and phase behavior. J. Phys. Chem. Solids 2013 , 74 , 1653−1659..
Liu, Y.; Zhang, J.; Wu, P. Near-frictionless long-distance water transport in trees enabled by hierarchically helical molecular pumps. CCS Chem. 2025 , 7 , 484−492..
Zhang, X.; Liu, X.; Zhang, X.; Tian, Y.; Meng, Y. Ordering of the 7CB liquid crystal induced by nanoscale confinement and boundary lubrication. Liq. Cryst. 2012 , 39 , 1305−1313..
Dai, H.; Dong, Z.; Jiang, L. Directional liquid dynamics of interfaces with superwettability. Sci. Adv. 2020 , 6 , eabb5528..
Relaxation-reversed Phase Transition of Poly(butylene succinate)
Promoting Form II-Form I Phase Transition of Polybutene-1 by Constantly Alternative Annealing
Enhanced Phase Transition in Poly(ethylene glycol) Grafted Butene-1 Copolymers
Simulation of Surface-Induced Morphology Transition and Phase Diagram of Linear Triblock Copolymers under Spherical Confinement
Interlaminar Shear Strength Parameter, Durability Change and Other Properties of Carbon and Glass Fiber-reinforced Polymers After Long-term Weathering in Various Climatic Zones
相关作者
Zhe Ma
Gui-Qiu Ma
Ying-Zhuo Liu
Xin-Yu Liu
Jia-Liang Qiao
Xing-You Tian
Lin Chen
Yong-Xing Lin
相关机构
School of Materials Science and Engineering, State Key Laboratory of High Performance Roll Materials and Composite Forming, Tianjin Key Laboratory of Composite and Functional Materials, Key Laboratory of Organic Integrated Circuits, Ministry of Education, Tianjin University
University of Science and Technology of China
Key Laboratory of Photovoltaic and Energy Conservation Materials, Institute of Solid State Physics, Hefei Institutes of Physical Science, Chinese Academy of Sciences
Tianjin Key Laboratory of Composite and Functional Materials, and School of Materials Science and Engineering, Tianjin University
Key Laboratory of Surface modification of Polymer Materials, Wenzhou Polytechnic