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致密纳米颗粒层的微转移图案化:流变学、粘附力和断裂在转移动力学中的作用

Micro-transfer patterning of dense nanoparticle layers: roles of rheology, adhesion and fracture in transfer dynamics.

作者信息

Kusaka Yasuyuki, Takei Atsushi, Koutake Masayoshi, Fukasawa Tomonori, Ishigami Toru, Fukuda Nobuko

机构信息

Sensing System Research Center, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba Central 5, 1-1-1 Higashi, Tsukuba, Ibaraki 305-8565, Japan.

Graduate School of Engineering, Hiroshima University, 1-4-1, Kagamiyama, Higashi-Hiroshima, Hiroshima 739-8527, Japan.

出版信息

Soft Matter. 2020 Apr 1;16(13):3276-3284. doi: 10.1039/d0sm00139b.

Abstract

Liquid inks deposited on substrates undergo spreading, coalescence, dewetting and subsequent drying kinetics, which limit the controllability of the cross-sectional shape and resolution of the printed patterns. By contrast, when the ink layers are previously semidried (highly-concentrated) and patterned on a polydimethylsiloxane sheet, single-micrometer features are resolved. Here we present the rheological, fracture and adhesive properties of semidried nanoparticle dispersion ink layers, which optimize the patterning of reverse offset printing with 5 μm spatial resolution. Under the appropriate patterning conditions, when the volume fraction φ of the particles in the semidried layers was approximately 46 v/v%, the layer elasticity was dominant in the linear viscoelastic region and a Burgers-type creeping property appeared. Under tensile strain, the semidried layers suddenly fractured at the sites of patterns with sharply defined sidewalls. In the semidried thin layers dominated by viscosity (lower φ), the pattern edges were degraded owing to local transfer instability and possible subsequent spreading. Over-drying reduced the adhesiveness of the ink layers, implying an upper limit of φ for successful patterning. The characteristics of semidried inks contribute to establishing a versatile ink-formulation scheme of various functional nanomaterials for high-resolution printed applications.

摘要

沉积在基底上的液体油墨会经历铺展、聚结、去湿以及随后的干燥动力学过程,这些过程限制了印刷图案横截面形状的可控性和分辨率。相比之下,当油墨层预先半干燥(高浓度)并在聚二甲基硅氧烷片材上进行图案化时,能够分辨出单微米级别的特征。在此,我们展示了半干燥纳米颗粒分散油墨层的流变学、断裂和粘附特性,这些特性优化了具有5μm空间分辨率的反向胶版印刷图案化过程。在适当的图案化条件下,当半干燥层中颗粒的体积分数φ约为46 v/v%时,层弹性在线性粘弹性区域占主导地位,并出现了Burgers型蠕变特性。在拉伸应变下,半干燥层在具有清晰界定侧壁的图案部位突然断裂。在以粘度为主导的半干燥薄层中(较低的φ),图案边缘由于局部转移不稳定性和可能随后的铺展而退化。过度干燥会降低油墨层的粘附性,这意味着成功图案化的φ存在上限。半干燥油墨的特性有助于建立一种适用于各种功能性纳米材料的通用油墨配方方案,用于高分辨率印刷应用。

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