Micronewton剪切流变仪使用2 mg样品

IF 3 2区 工程技术 Q2 MECHANICS
Weiwei Wu, Jintian Luo, Xikai Ouyang, Wangjing He, Kangle Bao, Hui Li, GengXin Liu (刘庚鑫)
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引用次数: 2

摘要

流变学测量通常至少需要20-50 mg样品。我们建立了一个小型化的滑板剪切流变仪(mgRheo),只需要2 mg样品或更少。我们设计了一种基于弯曲的力传感装置,可以测量从微牛顿到毫牛顿的力,例如40 μN–400 mN表示一个特定的弹簧常数。该装置由压电台进行应变控制,可以进行标准流变测试,如小振幅振荡剪切、阶跃应变和应力松弛。在聚二甲基硅氧烷粘弹性标准、纠缠的聚甲基丙烯酸己酯和聚苯乙烯上评估了准确性和稠度。所获得的相位角与商用流变仪的相位角在数量上一致。模量的精确值容易使样品过满。mgRheo的储存模量G′和损失模量G〃系统地高于商用流变仪的储存模量和损失模量(即,仔细修整后在5%以内,过度填充时在30%以内)。介于102和106之间 Pa、G′和G〃与市售流变仪符合较好。这种设置允许进行一般的流变表征,特别是在合成上难以大量获得的软物质上获得线性粘弹性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Micronewton shear rheometer performing SAOS using 2 mg of sample
Rheological measurements typically require at least 20–50 mg of sample. We set up a miniaturized sliding-plates shear rheometer (mgRheo) that requires only 2 mg sample or even less. We designed a flexure-based force-sensing device that could measure force ranging from the micronewton to millinewton scale, e.g., 40 μN–400 mN for one particular spring constant. The setup was strain-controlled by a piezostage and could perform standard rheological tests such as small amplitude oscillatory shear, step strain, and stress relaxation. The accuracy and consistencies were evaluated on polydimethylsiloxane viscoelastic standard, entangled poly(hexyl methacrylate), and polystyrene. The obtained phase angles quantitatively agreed with those from commercial rheometers. The exact values of the modulus are prone to the overfilling of the sample. The storage G′ and loss G″ moduli from the mgRheo were systematically higher than those from commercial rheometers (i.e., within 5% with careful trimming or 30% with excessive overfilling). Between 102 and 106 Pa, G′ and G″ were in good agreement with commercial rheometers. Such a setup allowed for general rheometric characterizations, especially obtaining linear viscoelasticity on soft matters that are synthetically difficult to obtain in a large quantity.
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来源期刊
Journal of Rheology
Journal of Rheology 物理-力学
CiteScore
6.60
自引率
12.10%
发文量
100
审稿时长
1 months
期刊介绍: The Journal of Rheology, formerly the Transactions of The Society of Rheology, is published six times per year by The Society of Rheology, a member society of the American Institute of Physics, through AIP Publishing. It provides in-depth interdisciplinary coverage of theoretical and experimental issues drawn from industry and academia. The Journal of Rheology is published for professionals and students in chemistry, physics, engineering, material science, and mathematics.
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