Carbon and Composites Group, Materials Science and Technology Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831, USA.
ACS Appl Mater Interfaces. 2013 Jun 26;5(12):5868-74. doi: 10.1021/am401661f. Epub 2013 Jun 17.
Here, we report the synthesis of surfactant-templated mesoporous carbons from lignin, which is a biomass-derived polymeric precursor, and their potential use as a controlled-release medium for functional molecules such as pharmaceuticals. To the best of our knowledge, this is the first report on the use of lignin for chemical-activation-free synthesis of functional mesoporous carbon. The synthesized carbons possess the pore widths within the range of 2.5-12.0 nm. In this series of mesoporous carbons, our best result demonstrates a Brunauer-Emmett-Teller (BET) surface area of 418 m(2)/g and a mesopore volume of 0.34 cm(3)/g, which is twice the micropore volume in this carbon. Because of the dominant mesoporosity, this engineered carbon demonstrates adsorption and controlled release of a representative pharmaceutical drug, captopril, in simulated gastric fluid. Large-scale utilization of these sustainable mesoporous carbons in applications involving adsorption, transport, and controlled release of functional molecules is desired for industrial processes that yield lignin as a coproduct.
在这里,我们报告了从木质素(一种生物质衍生的聚合物前体)合成表面活性剂模板的中孔碳,并探讨了其作为药物等功能分子的控释介质的潜在用途。据我们所知,这是首次报道将木质素用于无化学活化的功能中孔碳的合成。所合成的碳具有 2.5-12.0nm 范围内的孔径。在这一系列的中孔碳中,我们的最佳结果显示出 Brunauer-Emmett-Teller(BET)比表面积为 418m2/g,中孔体积为 0.34cm3/g,这是该碳中微孔体积的两倍。由于中孔占主导地位,这种工程碳在模拟胃液中表现出对代表性药物卡托普利的吸附和控释。这些可持续的中孔碳在涉及吸附、传输和功能分子控释的应用中的大规模利用,对于作为副产物产生木质素的工业过程是可取的。