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从生物聚合物水凝胶的热激活断裂到粘度控制断裂

From thermally activated to viscosity controlled fracture of biopolymer hydrogels.

作者信息

Baumberger T, Ronsin O

机构信息

INSP, UPMC Univ Paris 06, CNRS UMR 7588, 140 rue de Lourmel, 75015 Paris, France.

出版信息

J Chem Phys. 2009 Feb 14;130(6):061102. doi: 10.1063/1.3078267.

Abstract

We report on rate-dependent fracture energy measurements over three decades of steady crack velocities in alginate and gelatin hydrogels. We evidence that irrespective of gel thermoreversibility, thermally activated "unzipping" of the noncovalent cross-link zones results in slow crack propagation, prevailing against the toughening effect of viscous solvent drag during chain pull-out, which becomes efficient above a few mm s(-1). We extend a previous model [T. Baumberger et al., Nat. Mater. 5, 552 (2006)] to account for both mechanisms and estimate the microscopic unzipping rates.

摘要

我们报告了在藻酸盐和明胶水凝胶中,长达三十年的稳定裂纹速度下与速率相关的断裂能测量结果。我们证明,无论凝胶的热可逆性如何,非共价交联区的热激活“解链”都会导致裂纹缓慢扩展,这在链拔出过程中克服了粘性溶剂阻力的增韧作用,而粘性溶剂阻力在速度高于几毫米每秒时才变得有效。我们扩展了先前的一个模型 [T. 鲍姆贝格尔等人,《自然·材料》5, 552 (2006)],以考虑这两种机制并估算微观解链速率。

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