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Using convective flow splitting for the direct printing of fine copper lines
被引:82
作者
:
机构
:
[1]
Department of Electrical Engineering, Princeton University, Princeton
[2]
Interfacial Science Laboratory, Department of Chemical Engineering, Princeton University, Princeton
[3]
Department of Electrical Engineering, Ctr. Photonics Opto-Electron. Mat., Princeton University, Princeton
来源
:
|
2000年
/ American Institute of Physics Inc.卷
/ 77期
关键词
:
D O I
:
10.1063/1.1311954
中图分类号
:
学科分类号
:
摘要
:
Liquid ribbons of solutions of copper hexanoate in a volatile solvent were drawn on a glass slide using either fine glass capillaries or an ink jet printer. After solvent evaporation, the solute was observed to segregate into multiple pairs of stripes much narrower than the initial ribbon diameter. These stripes were then converted to pure copper by annealing. Surface profiles indicate that the thickness, width, and number of lines formed are strongly dependent on the solution viscosity and volume per unit length deposited. From flow visualization studies and surface profiling, we have found that evaporative cooling produces Bénard-Marangoni convection patterns which accrete the solute along two key boundaries of the flow, namely the three phase contact line and the outer edge of a stagnant region about the ribbon apex. These findings suggest that optimization of the deposition and evaporation process can be used to write" fine metallic lines from a wider liquid precursor. © 2000 American Institute of Physics."
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页码:2063 / 2065
页数:2
相关论文
共 24 条
[21]
Zhang N., Yang W.J., Trans. ASME, 104, (1982)
[22]
Zhang N., Wang W.J., Exp. Fluids, 1, (1983)
[23]
Zhang N., Wang W.J., Trans. ASME, 106, (1984)
[24]
Faber T.E., Fluid Dynamics for Physicists, (1995)
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共 24 条
[21]
Zhang N., Yang W.J., Trans. ASME, 104, (1982)
[22]
Zhang N., Wang W.J., Exp. Fluids, 1, (1983)
[23]
Zhang N., Wang W.J., Trans. ASME, 106, (1984)
[24]
Faber T.E., Fluid Dynamics for Physicists, (1995)
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