Stability of potassium-promoted hydrotalcites for CO2 capture over numerous repetitive adsorption and desorption cycles

Kun Xin, J. Boon, H. A. J. van Dijk, M. van Sint Annaland
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Abstract

Hydrotalcite-based adsorbents have demonstrated their potential for CO2 capture, particularly in the sorption-enhanced water-gas shift (SEWGS) process. This study aims to investigate the long-term stability of a potassium-promoted hydrotalcite-based adsorbent (KMG30) over many repetitive cycles under various operating conditions. The stability of the adsorbent, both in terms of its structure and sorption capacity, is examined through multiple consecutive adsorption and desorption cycles. However, it is observed that the capacity for CO2 adsorption decreases when subjected to many repeated cycles of CO2 adsorption followed by N2 flushing, or to many repeated cycles of H2O adsorption followed by N2 flushing. In-depth investigations employing various techniques such as thermogravimetric experiments, XRD, BET, and SEM-EDX analyses were conducted to elucidate the underlying phenomena that can explain this observed behavior. The former can be attributed to aggregation of K2CO3 from the sorbent during the CO2 adsorption and N2 flushing cycles (which can be reversed by re-dispersing the K2CO3 either by exposure to air or by processing the sorbent with cycles of CO2/H2O adsorption followed by N2 flushing), whereas the latter is ascribed to the only partial regeneration of the reactive site (referred to site C in earlier work), most likely associated with K2CO3 modification on MG30. In this case, morphological changes were found to be insignificant. Remarkable stability of KMG30, as known from SEWGS process studies, was confirmed during cycles of CO2 adsorption/steam purge. These findings significantly enhance our understanding of the stability of potassium-promoted hydrotalcite-based adsorbents and provide valuable insights for the design of diverse sorption processes.
用于捕获二氧化碳的钾促进氢铝酸盐在多次重复吸附和解吸循环中的稳定性
基于氢滑石的吸附剂已证明其具有捕获二氧化碳的潜力,特别是在吸附增强水气变换(SEWGS)工艺中。本研究旨在调查钾促进氢铝土基吸附剂(KMG30)在各种操作条件下多次重复循环的长期稳定性。通过多个连续的吸附和解吸循环,考察了吸附剂在结构和吸附容量方面的稳定性。然而,在多次重复进行二氧化碳吸附后再进行 N2 冲洗,或多次重复进行 H2O 吸附后再进行 N2 冲洗的情况下,二氧化碳的吸附能力会下降。我们采用热重实验、XRD、BET 和 SEM-EDX 分析等多种技术进行了深入研究,以阐明能够解释这种观察到的行为的基本现象。前者可归因于在 CO2 吸附和 N2 冲洗循环过程中 K2CO3 从吸附剂中聚集(可通过将 K2CO3 暴露在空气中或通过 CO2/H2O 吸附后 N2 冲洗循环处理吸附剂来逆转),而后者可归因于反应位点(在以前的工作中称为位点 C)的部分再生,这很可能与 K2CO3 在 MG30 上的改性有关。在这种情况下,形态变化并不明显。根据 SEWGS 工艺研究,KMG30 在二氧化碳吸附/蒸汽吹扫循环期间具有显著的稳定性。这些发现极大地增强了我们对钾促进氢铝土基吸附剂稳定性的理解,并为各种吸附工艺的设计提供了宝贵的见解。
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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