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本文引用的文献

1
Effect of Variations in Micropatterns and Surface Modulus on Marine Fouling of Engineering Polymers.微图案和表面模量变化对工程聚合物海洋污损的影响。
ACS Appl Mater Interfaces. 2017 May 24;9(20):17508-17516. doi: 10.1021/acsami.6b14262. Epub 2017 May 15.
2
Bio-Inspired Design and Fabrication of Micro/Nano-Brush Dual Structural Surfaces for Switchable Oil Adhesion and Antifouling.受生物启发的微/纳米刷双重结构表面的设计与制造及其用于可切换的油附着和防污。
Small. 2017 Jan;13(4). doi: 10.1002/smll.201602020. Epub 2016 Aug 11.
3
Extremely durable biofouling-resistant metallic surfaces based on electrodeposited nanoporous tungstite films on steel.基于在钢上电沉积纳米多孔钨酸盐薄膜的极其耐用的抗生物污染金属表面。
Nat Commun. 2015 Oct 20;6:8649. doi: 10.1038/ncomms9649.
4
Engineered antifouling microtopographies: surface pattern effects on cell distribution.工程化防污微地形:表面图案对细胞分布的影响。
Langmuir. 2014 Dec 23;30(50):15212-8. doi: 10.1021/la504215b. Epub 2014 Dec 8.
5
Biomimicking micropatterned surfaces and their effect on marine biofouling.仿生微图案表面及其对海洋生物污损的影响。
Langmuir. 2014 Aug 5;30(30):9165-75. doi: 10.1021/la502006s. Epub 2014 Jul 24.
6
Marine tubeworm metamorphosis induced by arrays of bacterial phage tail-like structures.海洋管蠕虫的蜕变是由细菌噬菌体尾状结构阵列诱导的。
Science. 2014 Jan 31;343(6170):529-33. doi: 10.1126/science.1246794. Epub 2014 Jan 9.
7
Engineered antifouling microtopographies: an energetic model that predicts cell attachment.工程化抗污微形貌:预测细胞附着的能量模型。
Langmuir. 2013 Oct 22;29(42):13023-30. doi: 10.1021/la402952u. Epub 2013 Oct 8.
8
Bioinspired surfaces with dynamic topography for active control of biofouling.具有动态形貌的仿生表面用于主动控制生物附着。
Adv Mater. 2013 Mar 13;25(10):1430-4. doi: 10.1002/adma.201203374. Epub 2013 Jan 6.
9
Grafting polymer brushes on biomimetic structural surfaces for anti-algae fouling and foul release.在仿生结构表面接枝聚合物刷以防止藻类附着和自释放。
ACS Appl Mater Interfaces. 2012 Sep 26;4(9):4557-65. doi: 10.1021/am300912w. Epub 2012 Sep 12.
10
Biofouling: lessons from nature.生物污垢:从自然中吸取的教训。
Philos Trans A Math Phys Eng Sci. 2012 May 28;370(1967):2381-417. doi: 10.1098/rsta.2011.0502.

利用微观脊状表面形貌对抗生物污垢:一项仿生学研究。

Combat biofouling with microscopic ridge-like surface morphology: a bioinspired study.

机构信息

Department of Mechanical Engineering, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong SAR, People's Republic of China.

Department of Chemistry and Chemical Engineering, Jiangxi Normal University, Nanchang 330022, People's Republic of China.

出版信息

J R Soc Interface. 2018 Mar;15(140). doi: 10.1098/rsif.2017.0823.

DOI:10.1098/rsif.2017.0823
PMID:29514985
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5908525/
Abstract

Biofouling refers to the unfavourable attachment and accumulation of marine sessile organisms (e.g. barnacles, mussels and tubeworms) on the solid surfaces immerged in ocean. The enormous economic loss caused by biofouling in combination with the severe environmental impacts induced by the current antifouling approaches entails the development of novel antifouling strategies with least environmental impact. Inspired by the superior antifouling performance of the leaves of mangrove tree , here we propose to combat biofouling by using a surface with microscopic ridge-like morphology. Settlement tests with tubeworm larvae on polymeric replicas of leaves confirm that the microscopic ridge-like surface morphology can effectively prevent biofouling. A contact mechanics-based model is then established to quantify the dependence of tubeworm settlement on the structural features of the microscopic ridge-like morphology, giving rise to theoretical guidelines to optimize the morphology for better antifouling performance. Under the direction of the obtained guidelines, a synthetic surface with microscopic ridge-like morphology is developed, exhibiting antifouling performance comparable to that of the replica. Our results not only reveal the underlying mechanism accounting for the superior antifouling property of the leaves, but also provide applicable guidance for the development of synthetic antifouling surfaces.

摘要

生物附着是指海洋中浸没的固体表面上海洋固着生物(如藤壶、贻贝和管虫)的不利附着和积累。生物附着造成的巨大经济损失,加上当前防污方法带来的严重环境影响,需要开发对环境影响最小的新型防污策略。受红树林叶片优异的防污性能的启发,我们提出使用具有微观脊状形貌的表面来对抗生物附着。管虫幼虫在叶片聚合物复制品上的附着试验证实,微观脊状表面形貌可以有效地防止生物附着。然后建立了一个基于接触力学的模型来定量分析管虫附着与微观脊状形貌结构特征的关系,为优化形貌以获得更好的防污性能提供了理论指导。根据获得的指导方针,开发了具有微观脊状形貌的合成表面,其防污性能可与复制品相媲美。我们的研究结果不仅揭示了红树叶片优异的防污性能的潜在机制,还为合成防污表面的开发提供了实用的指导。