Wetting for self-healing and electrowetting for additive manufacturing

被引:6
作者
Yarin, Alexander L. [1 ]
机构
[1] Univ Illinois, Dept Mech & Ind Engn, 842 W Taylor St, Chicago, IL 60607 USA
关键词
Wetting; Electrowetting; Advanced manufacturing; Self-healing; 3D printing; Direct writing; NANOFIBER-BASED COMPOSITES; CARBON/EPOXY COMPOSITES; AGENTS; SHELL; EPOXY; ENCAPSULATION; CAPABILITY; DROPS;
D O I
10.1016/j.cocis.2020.08.003
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Advanced additive manufacturing actively widens its tool box of wettability-related phenomena to be used in production of new items. Novel self-healing engineering materials incorporate vascular networks with two types of nanochannels: the one containing a resin monomer, whereas another one - a curing agent. If such nanocomposites are damaged locally, both types of channels are locally broken, and they release resin monomer and curing agent droplets. These droplets spread by wettability over the nanotextured matrix, touch each other, and coalesce, which triggers polymerization reaction and crack stitching. Wettability-facilitated droplet spreading is accompanied by liquid imbibition in the pores in the nanofiber network. Such process peculiarities are in focus in the present review. An additional process relevant in direct writing and 3D printing is electrowetting (EW). It stems from the change in the contact angle in response to the electric polarization of dielectric substrates. EW allows movement of droplets on horizontal, vertical, and inverse surfaces, which can significantly facilitate the existing direct writing and 3D printing technologies. Accordingly, EW is also in focus in the present review.
引用
收藏
页数:10
相关论文
共 46 条
[1]  
Aissa B., 2014, SELF HEALING MAT INN
[2]   A review on corrosion-protective extrinsic self-healing: Comparison of microcapsule-based systems and those based on core-shell vascular networks [J].
An, Seongpil ;
Lee, Min Wook ;
Yarin, Alexander L. ;
Yoon, Sam S. .
CHEMICAL ENGINEERING JOURNAL, 2018, 344 :206-220
[3]   Wetting of inclined nano-textured surfaces by self-healing agents [J].
An, Seongpil ;
Kim, Yong Il ;
Yoon, Joshua Y. ;
Yarin, Alexander L. ;
Yoon, Sam S. .
APPLIED PHYSICS LETTERS, 2017, 111 (23)
[4]   Wetting and Coalescence of Drops of Self-Healing Agents on Electrospun Nanofiber Mats [J].
An, Seongpil ;
Kim, Yong Il ;
Lee, Min Wook ;
Yarin, Alexander L. ;
Yoon, Sam S. .
LANGMUIR, 2017, 33 (40) :10663-10672
[5]   Highly flexible transparent self-healing composite based on electrospun core-shell nanofibers produced by coaxial electrospinning for anti-corrosion and electrical insulation [J].
An, Seongpil ;
Liou, Minho ;
Song, Kyo Yong ;
Jo, Hong Seok ;
Lee, Min Wook ;
Al-Deyab, Salem S. ;
Yarin, Alexander L. ;
Yoon, Sam S. .
NANOSCALE, 2015, 7 (42) :17778-17785
[6]  
Binder WH, 2013, SELF-HEALING POLYMERS: FROM PRINCIPLES TO APPLICATIONS, P1, DOI 10.1002/9783527670185
[7]   Simultaneous spreading and imbibition of blood droplets over porous substrates in the case of partial wetting [J].
Chao, Tzu Chieh ;
Arjmandi-Tash, Omid ;
Das, Diganta B. ;
Starov, Victor M. .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2016, 505 :9-17
[8]   A Self-Healing Nanofiber-Based Self-Responsive Time-Temperature Indicator for Securing a Cold-Supply Chain [J].
Choi, Sejin ;
Eom, Youngho ;
Kim, Seon-Mi ;
Jeong, Da-Woon ;
Han, Jongmin ;
Koo, Jun Mo ;
Hwang, Sung Yeon ;
Park, Jeyoung ;
Oh, Dongyeop X. .
ADVANCED MATERIALS, 2020, 32 (11)
[9]   Selection of healing agents for a vascular self-healing application [J].
Cuvellier, A. ;
Torre-Muruzabal, A. ;
Van Assche, G. ;
De Clerck, K. ;
Rahier, H. .
POLYMER TESTING, 2017, 62 :302-310
[10]   Coaxial electrospinning of epoxy and amine monomers in a pullulan shell for self-healing nanovascular systems [J].
Cuvellier, Audrey ;
Torre-Muruzabal, Ana ;
Kizildag, Nuray ;
Daelemans, Lode ;
Ba, Yannick ;
De Clerck, Karen ;
Rahier, Hubert .
POLYMER TESTING, 2018, 69 :146-156