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具有强耐水性的介孔氢氧化锆的二氧化碳吸附-解吸性能

CO2 adsorption-desorption performance of mesoporous zirconium hydroxide with robust water durability.

作者信息

Kamimura Y, Endo A

机构信息

National Institute of Advanced Industrial Science and Technology (AIST), AIST Central 5-2, 1-1-1 Higashi, Tsukuba, Ibaraki 305-8565, Japan.

出版信息

Phys Chem Chem Phys. 2016 Jan 28;18(4):2699-709. doi: 10.1039/c5cp05211d.

Abstract

The present study demonstrates for the first time, the development of mesoporous zirconium hydroxide with high CO2 capacity and sustainable adsorption-desorption performance within a broad range of pressures (100-3000 kPa). Mesoporous zirconium hydroxide with a high surface area of ∼400 m(2) g(-1) was prepared by a simple and easy-to-handle precipitation route. The prepared high surface area mesoporous zirconium hydroxide exhibited significantly higher CO2 adsorption uptake and working adsorption capacity on a volumetric basis within a wide range of operating pressures of 100-3000 kPa than commercially available zeolite 13X. Reversible CO2 desorption was easily achieved by a pressure swing at moderate temperatures (298.15 K). Additionally, the prepared mesoporous zirconium hydroxide was adequately stable and strong to effectuate CO2 capture over multiple adsorption-desorption cycles without major reductions in its CO2 adsorption capacity. Furthermore, the effect of co-adsorbed water on the CO2 adsorption properties of mesoporous zirconium hydroxide was investigated. In the presence of co-adsorbed water, mesoporous zirconium hydroxide displayed reversible CO2 adsorption-desorption behavior in contrast to zeolite 13X that exhibited negligible CO2 adsorption within the wide range of pressures examined. The present study demonstrates the potential of high surface area mesoporous zirconium hydroxide toward efficient CO2 capturing processes.

摘要

本研究首次展示了具有高二氧化碳吸附量以及在宽压力范围(100 - 3000 kPa)内可持续吸附 - 解吸性能的介孔氢氧化锆的研发情况。通过一种简单且易于操作的沉淀路线制备了具有约400 m² g⁻¹高比表面积的介孔氢氧化锆。所制备的高比表面积介孔氢氧化锆在100 - 3000 kPa的宽操作压力范围内,基于体积的二氧化碳吸附量和工作吸附容量显著高于市售的13X沸石。通过在中等温度(298.15 K)下变压可轻松实现可逆的二氧化碳解吸。此外,所制备的介孔氢氧化锆足够稳定且坚固,能够在多个吸附 - 解吸循环中实现二氧化碳捕获,而其二氧化碳吸附容量不会大幅降低。此外,还研究了共吸附水对介孔氢氧化锆二氧化碳吸附性能的影响。在存在共吸附水的情况下,介孔氢氧化锆表现出可逆的二氧化碳吸附 - 解吸行为,与之形成对比的是,13X沸石在所研究的宽压力范围内二氧化碳吸附可忽略不计。本研究证明了高比表面积介孔氢氧化锆在高效二氧化碳捕获过程中的潜力。

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