Removal of Hydrogen Sulfide (H2S) Using MOFs: A Review of the Latest Developments

A. Georgiadis, N. Charisiou, I. Yentekakis, M. Goula
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引用次数: 3

Abstract

: Removal of hydrogen sulfide (H 2 S) from gas streams with varying overall pressure and H 2 S concentration is a long-standing challenge faced by the oil and gas industries. The present work focuses on H 2 S capture using metal-organic frameworks (MOFs), in an effort to shed light on their potential as adsorbents in the field of gas storage and separation. MOFs hold great promise as they make possible the design of structures from organic and inorganic units but also, they have provided an answer to a long-time challenging objective, i.e., how to design extended structures of materials. Moreover, the functionalization of the MOF’s surface can result in increased H 2 S uptake. For example, the insertion of 1% of a fluorinated linker in MIL-101(Cr)-4F(1%) allows for enhanced H 2 S capture. Although noticeable efforts have been made in studying the adsorption capacity of H 2 S using MOFs, there is a clear need for gaining a deeper understanding in terms of their thermal conductivities and specific heats in order to design more stable adsorption beds, experiencing high exothermicity. Simply put, the exothermic nature of adsorption means that sharp rises in temperature can negatively affect the bed stability in the absence of sufficient heat transfer. The work presented herein provides a detailed discussion, by thoroughly combining the existing literature, on new developments in MOFs for H 2 S removal, and tries to provide insight into new areas for further research.
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mof脱除硫化氢(H2S)的最新进展
从不同总压力和硫化氢浓度的气流中去除硫化氢(h2s)是石油和天然气行业长期面临的挑战。目前的工作重点是利用金属有机框架(MOFs)捕获h2 S,以阐明它们在气体储存和分离领域作为吸附剂的潜力。mof具有很大的前景,因为它们使有机和无机单元的结构设计成为可能,而且它们也为长期具有挑战性的目标提供了答案,即如何设计材料的扩展结构。此外,MOF表面的功能化可以增加h2s的吸收。例如,在MIL-101(Cr)-4F(1%)中插入1%的氟化连接体可以增强h2s捕获。尽管在研究mof对h2s的吸附能力方面已经做出了显著的努力,但为了设计出更稳定、具有高放热性能的吸附床,显然需要对其导热系数和比热有更深入的了解。简单地说,吸附的放热性质意味着在没有足够的传热的情况下,温度的急剧上升会对床层的稳定性产生负面影响。本文通过全面结合现有文献,对mof去除h2s的新进展进行了详细的讨论,并试图为进一步研究提供新的领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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