Picker Andreas, Nicoleau Luc, Burghard Zaklina, Bill Joachim, Zlotnikov Igor, Labbez Christophe, Nonat André, Cölfen Helmut
Physical Chemistry, University of Konstanz, Universitätsstraße 10, 78457 Konstanz, Germany.
BASF Construction Solutions GmbH, Advanced Materials and Systems Research, Albert Frank Straße 32, 83304 Trostberg, Germany.
Sci Adv. 2017 Nov 29;3(11):e1701216. doi: 10.1126/sciadv.1701216. eCollection 2017 Nov.
Calcium silicate hydrate (C-S-H) is the binder in concrete, the most used synthetic material in the world. The main weakness of concrete is the lack of elasticity and poor flexural strength considerably limiting its potential, making reinforcing steel constructions necessary. Although the properties of C-S-H could be significantly improved in organic hybrids, the full potential of this approach could not be reached because of the random C-S-H nanoplatelet structure. Taking inspiration from a sea urchin spine with highly ordered nanoparticles in the biomineral mesocrystal, we report a bioinspired route toward a C-S-H mesocrystal with highly aligned C-S-H nanoplatelets interspaced with a polymeric binder. A material with a bending strength similar to nacre is obtained, outperforming all C-S-H-based materials known to date. This strategy could greatly benefit future construction processes because fracture toughness and elasticity of brittle cementitious materials can be largely enhanced on the nanoscale.
水化硅酸钙(C-S-H)是混凝土中的粘结剂,混凝土是世界上使用最广泛的合成材料。混凝土的主要缺点是缺乏弹性且抗弯强度较差,这极大地限制了其潜力,因此需要钢筋结构。尽管在有机杂化材料中C-S-H的性能可以得到显著改善,但由于C-S-H纳米片层结构的随机性,这种方法的全部潜力尚未实现。受生物矿物介晶中具有高度有序纳米颗粒的海胆刺的启发,我们报道了一种仿生路线,可制备出具有高度排列的C-S-H纳米片层且间隔有聚合物粘结剂的C-S-H介晶。由此获得了一种抗弯强度与珍珠母相似的材料,其性能优于迄今为止所有已知的基于C-S-H的材料。这种策略可能会极大地造福未来的建筑工艺,因为脆性胶凝材料的断裂韧性和弹性可以在纳米尺度上得到很大提高。