Suppression of the coffee-ring effect by sugar-assisted depinning of contact line

被引:0
作者
Shunsuke F. Shimobayashi
Mikiko Tsudome
Tomo Kurimura
机构
[1] Japan Agency for Marine-Earth Science and Technology (JAMSTEC),Department of Mathematical Science and Advanced Technology
[2] Japan Agency for Marine-Earth Science and Technology (JAMSTEC),Research and Development Center for Marine Biosciences
[3] Tokyo Institute of Technology,Institute of Innovative Research
来源
Scientific Reports | / 8卷
关键词
Contact Line; Coffee Drop; Ring-like Deposit; Evaporative Deposition; Droplet Edge;
D O I
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中图分类号
学科分类号
摘要
Inkjet printing is of growing interest due to the attractive technologies for surface patterning. During the printing process, the solutes are transported to the droplet periphery and form a ring-like deposit, which disturbs the fabrication of high-resolution patterns. Thus, controlling the uniformity of particle coating is crucial in the advanced and extensive applications. Here, we find that sweet coffee drops above a threshold sugar concentration leave uniform rather than the ring-like pattern. The evaporative deposit changes from a ring-like pattern to a uniform pattern with an increase in sugar concentration. We moreover observe the particle movements near the contact line during the evaporation, suggesting that the sugar is precipitated from the droplet edge because of the highest evaporation and it causes the depinning of the contact line. By analyzing the following dynamics of the depinning contact line and flow fields and observing the internal structure of the deposit with a FIB-SEM system, we conclude that the depinned contact line recedes due to the solidification of sugar solution without any slip motion while suppressing the capillary flow and homogeneously fixing suspended particles, leading to the uniform coating. Our findings show that suppressing the coffee-ring effect by adding sugar is a cost-effective, easy and nontoxic strategy for improving the pattern resolution.
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[1]  
Mampallil D(2018)A review on suppression and utilization of the coffee-ring effect Adv. Colloid Interface Sci. 252 38-54
[2]  
Eral HB(1997)Capillary flow as the causes of ring stains from dried liquid drops Nat. 389 827-829
[3]  
Deegan RD(2000)Contact line deposits in an evaporating drop Phys. Rev. E 62 756-765
[4]  
Deegan RD(2017)In Retrospect: Twenty years of drying droplets Nat. 550 466-467
[5]  
Larson RG(2006)Control of colloidal particle deposit patterns within picoliter droplets ejected by ink-jet printing Langmuir 22 3506-3513
[6]  
Park J(2011)Inkjet printing of single-crystal films Nat. 475 364-367
[7]  
Moon J(2015)Printing patterned fine 3D structures by manipulating the three phase contact line Adv. Funct. Mater. 25 2237-2242
[8]  
Minemawari H(2005)Droplet evaporation study applied to DNA chip manufacturing Langmuir 21 9130-9136
[9]  
Wu L(2012)Control of evaporating complex fluids through electrowetting Soft Matter 8 10614-311
[10]  
Dugas V(2017)Fabrication of Gold Microwires by Drying Gold Nanorods Suspensions Adv. Mater. Interfaces 4 1601125-8