Wang Shu, Shuai Li, Saha Basudeb, Vlachos Dionisios G, Epps Thomas H
Department of Chemical & Biomolecular Engineering, University of Delaware, Newark, Delaware 19716, United States.
Center for Energy Innovation, University of Delaware, Newark, Delaware 19716, United States.
ACS Cent Sci. 2018 Jun 27;4(6):701-708. doi: 10.1021/acscentsci.8b00140. Epub 2018 May 15.
We report a new and robust strategy toward the development of high-performance pressure sensitive adhesives (PSAs) from chemicals directly obtained from raw biomass deconstruction. A particularly unique and translatable aspect of this work was the use of a monomer obtained from real biomass, as opposed to a model compound or lignin-mimic, to generate well-defined and nanostructure-forming polymers. Herein, poplar wood depolymerization followed by minimal purification steps (filtration and extraction) produced two aromatic compounds, 4-propylsyringol and 4-propylguaiacol, with high purity and yield. Efficient functionalization of those aromatic compounds with either acrylate or methacrylate groups generated monomers that could be easily polymerized by a scalable reversible addition-fragmentation chain-transfer (RAFT) process to yield polymeric materials with high glass transition temperatures and robust thermal stabilities, especially relative to other potentially biobased alternatives. These lignin-derived compounds were used as a major component in low-dispersity triblock polymers composed of 4-propylsyringyl acrylate and -butyl acrylate (also can be biobased). The resulting PSAs exhibited excellent adhesion to stainless steel without the addition of any tackifier or plasticizer. The 180° peel forces were up to 4 N cm, and tack forces were up to 2.5 N cm, competitive with commercial Fisherbrand labeling tape and Scotch Magic tape, demonstrating the practical significance of our biomass-derived materials.
我们报道了一种全新且可靠的策略,用于从直接通过生物质原料解构获得的化学品开发高性能压敏胶粘剂(PSA)。这项工作一个特别独特且具有可转化性的方面是使用从真实生物质中获得的单体,而非模型化合物或木质素模拟物,来生成结构明确且能形成纳米结构的聚合物。在此,杨木解聚后经过最少的纯化步骤(过滤和萃取),得到了两种高纯度、高收率的芳香族化合物,4 - 丙基丁香酚和4 - 丙基愈创木酚。这些芳香族化合物用丙烯酸酯或甲基丙烯酸酯基团进行高效官能化,生成的单体可通过可扩展的可逆加成 - 断裂链转移(RAFT)过程轻松聚合,从而得到具有高玻璃化转变温度和强大热稳定性的聚合物材料,特别是相对于其他潜在的生物基替代品而言。这些源自木质素的化合物被用作由丙烯酸4 - 丙基丁香酯和丙烯酸丁酯(也可以是生物基的)组成的低分散性三嵌段聚合物的主要成分。所得PSA在不添加任何增粘剂或增塑剂的情况下,对不锈钢表现出优异的粘附性。180°剥离力高达4 N/cm,粘性力高达2.5 N/cm,可与商业Fisherbrand标签胶带和思高神奇胶带相媲美,证明了我们源自生物质的材料的实际意义。