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Insight into catalyst deactivation mechanism and suppression techniques in thermocatalytic deoxygenation of bio-oil over zeolites

机译:沸石对生物油进行热催化脱氧时的催化剂失活机理和抑制技术的见解

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摘要

The economic viability of the thermocatalytic upgrade of biomass-derived oxygenates is facing the challenge of low-quality products. This is because of leaching of active species, coking, and concomitant catalyst deactivation. These cumulate into the loss of catalytic activity with time on stream (TOS), which causes low degree of deoxygenation. Thus, this article reviews recent advances aimed at alleviating these setbacks to make the process viable for industrial scale-up. To understand the concept of catalyst deactivation and to offer solutions, the review scrutinized the deactivation mechanism diligently. The review also analyzes deactivation-suppression techniques such as nanocrystal zeolite cracking, hydrogen spilt-over (HSO) species, and composite catalysts (hybrid, hierarchical mesoporous zeolite, modified zeolites, and catalytic cracking deposition of silane). Interestingly, these deactivation-suppression techniques enhance catalytic properties mostly by reducing the signal strength of strong acid sites and increasing hydrothermal stability. Further, the approaches improve catalytic activity, selectivity, and TOS stability because of the lower formation of coke precursors such as polynuclear aromatics. However, despite these many advances, the need for further investigations to achieve excellent catalytic activity for industrial scaleup persists.
机译:生物质衍生的含氧化合物的热催化升级的经济可行性正面临着低质量产品的挑战。这是由于活性物质的浸出,焦化和伴随的催化剂失活。随着时间的流逝(TOS),这些累积导致催化活性的损失,这导致低的脱氧度。因此,本文回顾了旨在减轻这些挫折的最新进展,以使该方法可用于工业规模放大。为了了解催化剂失活的概念并提供解决方案,本综述认真研究了失活机理。该评论还分析了失活抑制技术,例如纳米晶体沸石裂化,氢溢流(HSO)物种和复合催化剂(混合,分级介孔沸石,改性沸石和催化裂化硅烷沉积)。有趣的是,这些失活-抑制技术主要通过降低强酸位点的信号强度和增加水热稳定性来增强催化性能。此外,由于焦炭前体如多核芳烃的形成较少,因此这些方法改善了催化活性,选择性和TOS稳定性。然而,尽管取得了许多进步,但仍需要进一步研究以实现用于工业规模生产的优异催化活性。

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