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Tailorable low modulus, reversibly deformable elastomeric thiol-ene materials for microfluidic applications

机译:适用于微流体应用的可定制的低模量,可逆变形的弹性体硫醇-乙烯材料

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The ability to form low-moduli materials with sensitive modulus control over a wide range is advantageous for a variety of applications, including membranes and valves for microfluidic devices. This paper examines the impact of monomer functionality and stoichiometry on the network properties of thiol-vinyl systems from both experimental and theoretical perspectives. Agreement is observed between the model predictions, based on the probability of forming finite polymer network chains, and the measured Young's modulus values for polymer networks ranging in moduli from 1 to 10 MPa. The highest modulus is obtained for polymers containing tetrathiol, and lower-modulus polymers were obtained by copolymerizing monothiol or dithiol monomers. These novel elastomeric systems are also shown to have strain-at-break values of over 1000%. To illustrate one application of these low-modulus materials, the contact liquid photolithographic polymerization (CLiPP) method was used to fabricate thiol-ene valves in a polymeric microdevice. For an applied pressure of 5 psi, the maximum deflection of the valve was varied from 100 to 320 μm simply by tailoring the modulus of the thiol-ene membrane.
机译:具有在宽范围内进行灵敏模量控制的低模量材料的形成能力对于包括微流体装置的膜和阀在内的多种应用是有利的。本文从实验和理论角度考察了单体官能度和化学计量对硫醇-乙烯基系统网络性质的影响。基于形成有限的聚合物网络链的概率,模型预测值与测得的聚合物网络的杨氏模量值之间的一致性达到了模数范围为1至10 MPa。对于含有四硫醇的聚合物,可获得最高模量,而通过使单硫醇或二硫醇单体共聚可获得较低模量的聚合物。这些新颖的弹性体体系还显示出超过1000%的断裂应变值。为了说明这些低模量材料的一种应用,使用了接触液体光刻聚合(CLiPP)方法在聚合物微器件中制造硫醇-乙烯阀。对于5 psi的施加压力,只需调整硫醇-乙烯膜​​的模量,即可将阀门的最大挠度从100更改为320μm。

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