Catalysis Center for Energy Innovation, University of Delaware, Newark, Delaware 19716; email:
Department of Chemical and Biomolecular Engineering, University of Delaware, Newark, Delaware 19716.
Annu Rev Chem Biomol Eng. 2017 Jun 7;8:115-137. doi: 10.1146/annurev-chembioeng-060816-101303. Epub 2017 Mar 15.
With technological advancement of thermocatalytic processes for valorizing renewable biomass carbon, development of effective separation technologies for selective recovery of bioproducts from complex reaction media and their purification becomes essential. The high thermal sensitivity of biomass intermediates and their low volatility and high reactivity, along with the use of dilute solutions, make the bioproducts separations energy intensive and expensive. Novel separation techniques, including solvent extraction in biphasic systems and reactive adsorption using zeolite and carbon sorbents, membranes, and chromatography, have been developed. In parallel with experimental efforts, multiscale simulations have been reported for predicting solvent selection and adsorption separation. We discuss various separations that are potentially valuable to future biorefineries and the factors controlling separation performance. Particular emphasis is given to current gaps and opportunities for future development.
随着热催化工艺在可再生生物质碳增值方面的技术进步,开发有效的分离技术以从复杂反应介质中选择性回收生物产物并对其进行纯化变得至关重要。生物质中间体的高热敏性、低挥发性和高反应性,以及稀溶液的使用,使得生物产物的分离过程耗能且昂贵。已经开发出了新型分离技术,包括两相体系中的溶剂萃取和沸石及碳吸附剂、膜和色谱中的反应吸附。除了实验努力之外,还报道了多尺度模拟以预测溶剂选择和吸附分离。我们讨论了对未来生物精炼厂具有潜在价值的各种分离方法以及控制分离性能的因素。特别强调了未来发展的当前差距和机遇。