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聚合物包覆的金属有机骨架纳米颗粒在多孔介质中的传输。

Transport of polymer-coated metal-organic framework nanoparticles in porous media.

作者信息

Nune Satish K, Miller Quin R S, Schaef H Todd, Jian Tengyue, Song Miao, Li Dongsheng, Shuttanandan Vaithiyalingam, McGrail B Peter

机构信息

Energy and Environment Directorate, Pacific Northwest National Laboratory, Richland, WA, 99354, USA.

Physical and Computational Sciences Directorate, Pacific Northwest National Laboratory, Richland, WA, 99354, USA.

出版信息

Sci Rep. 2022 Aug 17;12(1):13962. doi: 10.1038/s41598-022-18264-y.

Abstract

Injecting fluids into deep underground geologic structures is a critical component to development of long-term strategies for managing greenhouse gas emissions and facilitating energy extraction operations. Recently, we reported that metal-organic frameworks are low-frequency, absorptive-acoustic metamaterial that may be injected into the subsurface to enhance geophysical monitoring tools used to track fluids and map complex structures. A key requirement for this nanotechnology deployment is transportability through porous geologic media without being retained by mineral-fluid interfaces. We used flow-through column studies to estimate transport and retention properties of five different polymer-coated MIL-101(Cr) nanoparticles (NP) in siliceous porous media. When negatively charged polystyrene sulfonate coated nanoparticles (NP-PSS-70K) were transported in 1 M NaCl, only about 8.4% of nanoparticles were retained in the column. Nanoparticles coated with polyethylenimine (NP-PD1) exhibited significant retention (> 50%), emphasizing the importance of complex nanoparticle-fluid-rock interactions for successful use of nanofluid technologies in the subsurface. Nanoparticle transport experiments revealed that nanoparticle surface characteristics play a critical role in nanoparticle colloidal stability and as well the transport.

摘要

向深层地下地质结构中注入流体是制定温室气体排放管理和促进能源开采作业长期战略的关键组成部分。最近,我们报道了金属有机框架是低频、吸收性声学超材料,可注入地下以增强用于追踪流体和绘制复杂结构的地球物理监测工具。这种纳米技术应用的一个关键要求是能够通过多孔地质介质传输,而不被矿物 - 流体界面截留。我们通过流通柱研究来估计五种不同聚合物包覆的MIL - 101(Cr)纳米颗粒(NP)在硅质多孔介质中的传输和保留特性。当带负电荷的聚苯乙烯磺酸盐包覆纳米颗粒(NP - PSS - 70K)在1 M NaCl中传输时,只有约8.4%的纳米颗粒保留在柱中。聚乙烯亚胺包覆的纳米颗粒(NP - PD1)表现出显著的保留(>50%),这强调了纳米颗粒 - 流体 - 岩石复杂相互作用对于在地下成功应用纳米流体技术的重要性。纳米颗粒传输实验表明,纳米颗粒表面特性在纳米颗粒胶体稳定性以及传输中起着关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/58c4/9385709/c752c9d9ebfe/41598_2022_18264_Fig1_HTML.jpg

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