Division of Biomedical Engineering, School of Engineering, University of Glasgow, Rankine Building, Glasgow G12 8LT, UK.
Soft Matter. 2018 Nov 7;14(43):8821-8827. doi: 10.1039/c8sm01682h.
Gelation processes grant access to a wealth of soft materials with tailorable properties, in applications as diverse as environmental remediation, biomedicine and electronics. Several classes of self-assembling gelators have been studied and employ non-covalent bonds to direct assembly, but recently attention has come to focus on how the overall shape of the gelator molecule impacts its gelation. Here we study a new sub-family of low molecular weight organogelators and explore how steric rearrangement influences their gelation. The gels produced are characterised with X-ray diffraction and small-angle neutron scattering (SANS) to probe their ex situ and in situ gelation mechanisms. The best examples were then tested for environmental remediation applications, gelling petrol and oils in the presence of water and salts.
凝胶过程为具有可定制性质的软材料提供了丰富的选择,应用范围广泛,包括环境修复、生物医学和电子学等领域。已经研究了几类自组装凝胶剂,并利用非共价键来指导组装,但最近人们开始关注凝胶剂分子的整体形状如何影响其凝胶化。在这里,我们研究了一种新的低分子量有机凝胶剂亚家族,并探索了空间位阻重排如何影响其凝胶化。通过 X 射线衍射和小角中子散射(SANS)对所产生的凝胶进行了表征,以探测其体外和原位凝胶化机制。然后,对最好的例子进行了环境修复应用测试,在水和盐存在的情况下使汽油和油发生凝胶化。