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A review on the role of hierarchical zeolites in the production of transportation fuels through catalytic fast pyrolysis of biomass

机译:通过生物质催化快速热解的分层沸石在运输燃料生产中的作用综述

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Design of highly active catalysts plays a critical role in catalytic fast pyrolysis (CFP) of lignocellulosic biomass. Advanced catalysts can improve the deoxygenation rate of pyrolysis vapors and boost the production of fuel precursors. Zeolites are suitable frameworks for catalyzing pyrolysis vapors into species of transportation fuel value. However, their nano-sized structure limits the diffusion of reactants into pores and over active sites. Consequently, the aggregation of large molecules outside micropores leads to a massive coke formation, blocking pore channels, and thus, preventing the accessibility to acid sites. This could cause quick deactivation and instability of the catalyst, necessitating frequent catalyst regeneration and replenishment. Hierarchical micro/mesopore-structured zeolites are promising candidates to cope with the mentioned challenges. In addition to their adjusted pore structure and increased accessibility of acid sites, the formation of mesoporosity in zeolites provides an adequate room for the deposition of additional active phases such as metal nanoparticles, further boosting the catalytic activity. Different strategies used for preparing hierarchical zeolites can tremendously alter their attributes, and consequently affect product selectivity during CFP of biomass. Focusing on the precursors of transportation fuels (i.e., aromatic hydrocarbons and olefins), the present paper critically reviews the impacts of methods used for synthesizing hierarchical zeolite, on CFP of bio-based feedstocks. Moreover, the role of metal addition to hierarchical zeolites in biomass catalytic pyrolysis is also discussed briefly. Among the different synthesis techniques, desilication treatment using alkaline solutions is the most promising owing to its simplicity, high productivity, and scalability. In terms of product selectivity, the addition of Ga species to hierarchical zeolites can increase aromatic hydrocarbons while Ce incorporation can increase the yield of valuable oxygenates such as furan. Despite the advantages of mono-metallic hierarchical zeolites in producing cherished chemicals, future studies should scrutinize the influence of bi-metallic hierarchical zeolites in bio-based CFP processes.
机译:高活性催化剂的设计在木质纤维素生物质的催化快速热解(CFP)中起重要作用。先进的催化剂可以改善热解蒸汽的脱氧速率,并提高燃料前体的产生。沸石是用于将热解蒸汽催化成运输燃料值的物种的合适框架。然而,它们的纳米结构将反应物的扩散限制为孔和活性位点。因此,微孔外部的大分子的聚集导致大量的焦炭形成,阻断孔通道,从而防止酸性位点的可接受性。这可能导致催化剂的快速失活和不稳定性,需要频繁的催化剂再生和补充。分层微/中孔结构沸石是承诺应对提到的挑战的候选人。除了调节的孔隙结构和酸性位点的可达性增加之外,沸石中凹凸的形成提供了沉积另外的活性相如金属纳米颗粒的足够空间,进一步提高催化活性。用于制备分层沸石的不同策略可以大量改变它们的属性,从而影响生物量的CFP期间的产品选择性。专注于运输燃料的前体(即,芳烃和烯烃),本文重视用于合成分层沸石的方法的影响,在生物基原料的CFP上。此外,还简要讨论了生物质催化热解中的金属加入与等级沸石的作用。在不同的合成技术中,由于其简单性,高生产率和可扩展性,使用碱性溶液的溶解处理是最有前途的。就产品选择性而言,向等级沸石添加GA物种可以增加芳烃,而CE掺入可以增加呋喃的有价值含氧化合物的产率。尽管单金属等级沸石在生产珍贵的化学物质方面存在优势,但是未来的研究应仔细审查基于生物的CFP过程中双金属等级沸石的影响。

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