Cailong Zhou
South China University of Technology
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Publication
Featured researches published by Cailong Zhou.
ACS Nano | 2017
Xinjuan Zeng; Long Qian; Xianxia Yuan; Cailong Zhou; Zhaowen Li; Jiang Cheng; Shouping Xu; Shuangfeng Wang; Pihui Pi; Xiufang Wen
Inspired by the water-collecting mechanism of the Stenocara beetles back structure, we prepared a superhydrophilic bumps-superhydrophobic/superoleophilic stainless steel mesh (SBS-SSM) filter via a facile and environmentally friendly method. Specifically, hydrophilic silica microparticles are assembled on the as-cleaned stainless steel mesh surface, followed by further spin-coating with a fluoropolymer/SiO2 nanoparticle solution. On the special surface of SBS-SSM, attributed to the steep surface energy gradient, the superhydrophilic bumps (hydrophilic silica microparticles) are able to capture emulsified water droplets and collect water from the emulsion even when their size is smaller than the pore size of the stainless steel mesh. The oil portion of the water-in-oil emulsion therefore permeates through pores of the superhydrophobic/superoleophilic mesh coating freely and gets purified. We demonstrated an oil recovery purity up to 99.95 wt % for surfactant-stabilized water-in-oil emulsions on the biomimetic SBS-SSM filter, which is superior to that of the traditional superhydrophobic/superoleophilic stainless steel mesh (S-SSM) filter lacking the superhydrophilic bump structure. Together with a facile and environmentally friendly coating strategy, this tool shows great application potential for water-in-oil emulsion separation and oil purification.
ACS Applied Materials & Interfaces | 2018
Jing Lin; Xiaoyu Chen; ChunYan Chen; JieTao Hu; Cailong Zhou; XianFang Cai; Wei Wang; Cheng Zheng; PeiPei Zhang; Jiang Cheng; Zhanhu Guo; Hu Liu
Considerable attention has been devoted to producing antibacterial fabrics due to their very wide applications in medicine, hygiene, hospital, etc. However, the poor antibacterial durability and bad bacterial antiadhesion capacity of most existing antibacterial fabrics limit their applications. In this work, a series of antibacterial and polymeric quaternary ammonium monomers with different alkyl chain length were successfully synthesized to copolymerize with fluorine-containing and other acrylic monomers to generate cationic fluorinated polymer emulsions and durably antibacterial and bacterially antiadhesive cotton fabrics. The relation between antibacterial constituent and its antibacterial activity was investigated. The study indicated that the alkyl chain length and contents of the antibacterial monomers, as well as the add-on percentage of polymer greatly influenced the antibacterial activities of the fabrics. In addition, it was found that incorporation of fluorine component into the polymer greatly enhanced the antibacterial activity and bacterial antiadhesion of the treated fabrics due to the low surface energy induced hydrophobicity. Finally, antibacterial and antiadhesive models of action of the obtained fabrics were illustrated.
ACS Applied Materials & Interfaces | 2017
Cailong Zhou; Zhaodan Chen; Hao Yang; Kun Hou; Xinjuan Zeng; Yanfen Zheng; Jiang Cheng
Phytic acid, which is a naturally occurring component that is widely found in many plants, can strongly bond toxic mineral elements in the human body, because of its six phosphate groups. Some of the metal ions present the property of bonding with phytic acid to form insoluble coordination complexes aggregations, even at room temperature. Herein, a superhydrophobic cotton fabric was prepared using a novel and facile nature-inspired strategy that introduced phytic acid metal complex aggregations to generate rough hierarchical structures on a fabric surface, followed by PDMS modification. This superhydrophobic surface can be constructed not only on cotton fabric, but also on filter paper, polyethylene terephthalate (PET) fabric, and sponge. AgI, FeIII, CeIII, ZrIV, and SnIV are very commendatory ions in our study. Taking phytic acid-FeIII-based superhydrophobic fabric as an example, it showed excellent resistance to ultraviolet (UV) irradiation, high temperature, and organic solvent immersion, and it has good resistance to mechanical wear and abrasion. The superhydrophobic/superoleophilic fabric was successfully used to separate oil/water mixtures with separation efficiencies as high as 99.5%. We envision that these superantiwetting fabrics, modified with phytic acid-metal complexes and PDMS, are environmentally friendly, low cost, sustainable, and easy to scale up, and thereby exhibit great potentials in practical applications.
Langmuir | 2017
Yanfen Zheng; Jiang Cheng; Cailong Zhou; Haiting Xing; Xiufang Wen; Pihui Pi; Shouping Xu
We demonstrate a facile method to induce water droplet motion on an wedge-shaped superhydrophobic copper surface combining with a poly(dimethylsiloxane) (PDMS) oil layer on it. The unbalanced interfacial tension from the shape gradient offers the actuating force. The superhydrophobicity critically eliminates the droplet contact line pinning and the slippery PDMS oil layer lubricates the droplet motion, which makes the droplet move easily. The maximum velocity and furthest position of droplet motion were recorded and found to be influenced by the gradient angle. The mechanism of droplet motion on the shape gradient surface is systematically discussed, and the theoretical model analysis is well matched with the experimental results.
Journal of Sol-Gel Science and Technology | 2018
Zhaodan Chen; Cailong Zhou; Jing Lin; Zhengting Zhu; Jinxin Feng; Liguo Fang; Jiang Cheng
Underwater superoleophobic mesh has been broadly investigated but its mechanical durability was seldom mentioned. Thus, in this work a ZrO2-coated stainless steel mesh was prepared for durable oil/water separation by an electrophoretic deposition method using ZrO2 sol as electrolyte. The ZrO2 coating is of hierarchical structure, making the Z-SSM superhydrophilic in air and superoleophobic underwater. The mesh exhibited outstanding separation efficiency of above 97.5% for various oil/water mixtures. The separation efficiency of n-hexane/water mixture maintained over 98% after 50 times of recycle separation. Moreover, the coated mesh maintained high separation efficiency after 30 cycles of abrasion, showing good stability.Graphical abstract
Chemical Engineering Journal | 2016
Cailong Zhou; Jiang Cheng; Kun Hou; An Zhao; Pihui Pi; Xiufang Wen; Shouping Xu
Chemical Engineering Journal | 2017
Shuang Song; Hao Yang; Cailong Zhou; Jiang Cheng; Zhibin Jiang; Zhong Lu; Jing Miao
Chemical Engineering Journal | 2017
Cailong Zhou; Jiang Cheng; Kun Hou; Zhengting Zhu; Yanfen Zheng
Applied Surface Science | 2017
Pihui Pi; Kun Hou; Cailong Zhou; Guidong Li; Xiufang Wen; Shouping Xu; Jiang Cheng; Shuangfeng Wang
Materials Letters | 2016
Pihui Pi; Kun Hou; Cailong Zhou; Xiufang Wen; Shouping Xu; Jiang Cheng; Shuangfeng Wang