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AIR学术沙龙第36期|人工智能医疗保健和虚拟世界的可穿戴传感器和触觉技术
先立后破?实现双碳目标
迎接生物药制造的第四次浪潮-
支撑未来海量资源接入,电力系统通用信息模型(CIM)发展探讨
报告题目:
Chemoluminescent molecules to quantify bond breakage and investigate fracture of elastomers
 报告人:
Prof. Costantino Creton
Laboratory of Soft Matter Science and Engineering
ESPCI ParisTech-UPMC-CNRS, Paris,France
报告时间:
2016-01-18 10:00
报告地点:
化学老馆301会议室
主办单位:
化学系许华平课题组
  简介:
Chemoluminescent molecules to quantify bond breakage and investigate fracture of elastomers
 
Costantino Cretona, Etienne Ducrota, Markus Bultersb, Yulan Chenc and Rint P; Sijbesmac
 
a Laboratory of Soft Matter Science and Engineering, ESPCI ParisTech-UPMC-CNRS, Paris-F
bDSM Research, Geleen, The Netherlands
cInstitute for Complex Molecular Systems, Eindhoven - NL
University of Technology, Eindhoven - NL
costantino.creton@espci.fr
 
We have recently shown1 that very brittle and very elastic elastomers can be stiffened and toughened, while retaining elasticity and reversibility of the deformation, by using the interpenetrated networks concept developed for hydrogels2, 3. The elastomers are prepared by sequential swelling and polymerization steps resulting in highly entangled networks combining a high modulus (3 MPa), fully reversible deformation (<3% of residual strain) and ahigh toughness (5 kJ/m2)1.
The resulting materials have a population of elastic chains with a broad level of prestretching and hence failure strain. The main demonstrated toughening mechanism is the failure of the highly prestretched chains of the network polymerized first, which act as sacrificial bonds while the non prestretched network prevent macroscopic crack propagation.
We have developed a method, by incorporating chemoluminescent molecules4, to directly visualize how many and when bonds break. We will present quantitative analyses of the bond breakage during cycles in uniaxial extension and during crack propagation for simple networks, double networks and triple networks. The results will be used to gain insight on how soft elastic materials can be made tougher without being made viscoelastic.
References
1.     Ducrot, E.; Chen, Y.; Bulters, M.; Sijbesma, R. P.; Creton, C. Science 2014, 344, (6180), 186-189.
2.     Gong, J. P. Soft Matter 2010, 6, (12), 2583-2590.
3.     Webber, R. E.; Creton, C.; Brown, H. R.; Gong, J. P. Macromolecules 2007, 40, (8), 2919-2927.
4.     Chen, Y.; Spiering, A. J. H.; KarthikeyanS; Peters, G. W. M.; Meijer, E. W.; Sijbesma, R. P. Nat Chem 2012, 4, (7), 559-562.
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