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通过可切换亲水性叔脒涂层开发气凝胶表面以提高采油率。

Developing aerogel surfaces via switchable-hydrophilicity tertiary amidine coating for improved oil recovery.

机构信息

Department of Chemical and Environmental Engineering, Mason Laboratory, Yale University, New Haven, CT 06511, USA.

Aerogel Technologies, LLC, Boston, MA 02127, USA.

出版信息

Sci Total Environ. 2023 Jul 1;880:163062. doi: 10.1016/j.scitotenv.2023.163062. Epub 2023 Mar 24.

Abstract

Blanket aerogels (i.e., Cabot™ Thermal Wrap® (TW) and Aspen™ Spaceloft® (SL)) with surfaces that have controllable wettability are promising advanced materials for oil recovery applications, where high oil uptake during deployment could be coupled with high oil release to enable reusability of recovered oil. The study presented here details the preparation of CO-switchable aerogel surfaces through the application of switchable tertiary amidine (i.e., tributylpentanamidine (TBPA)) onto aerogel surfaces using drop casting, dip coating, and physical vapor deposition techniques. TBPA is synthesized via two step processes: (1) synthesis of N, N-dibutylpentanamide, (2) synthesis of N, N-tributylpentanamidine. The deposition of TBPA is confirmed by X-ray photoelectron spectroscopy. Our experiments revealed that surface coating of TBPA onto aerogel blankets was partially successful within limited set of process conditions (e.g., 290 ppm CO and 5500 ppm humidity for PVD, 106 ppm CO and 700 ppm humidity for drop casting and dip coating), but that the post-aerogel modification strategies yielded poor, heterogeneous reproducibility. Overall, more than 40 samples were tested for their switchability in the presence of CO and water vapor, respectively, and the success rate was 6.25 %, 11.7 % and 18 % for PVD, drop casting, and dip coating, respectively. The most likely reasons for unsuccessful coating onto aerogel surfaces are: (1) the heterogeneous fiber structure of the aerogel blankets, (2) poor distribution of the TBPA over the aerogel blanket surface.

摘要

具有可控润湿性的 blanket aerogels(即 Cabot™ Thermal Wrap®(TW)和 Aspen™ Spaceloft®(SL))是具有前景的用于采油应用的先进材料,在部署过程中可以高吸收油,同时可以高释放油,从而实现回收油的可重复使用。本研究详细介绍了通过使用可切换叔脒(即三丁基戊脒(TBPA))在空气凝胶表面上使用滴铸、浸涂和物理气相沉积技术来制备 CO 可切换空气凝胶表面的方法。TBPA 通过两步法合成:(1)N,N-二丁基戊酰胺的合成,(2)N,N-三丁基戊脒的合成。X 射线光电子能谱证实了 TBPA 的沉积。我们的实验表明,在有限的工艺条件下(例如,PVD 为 290 ppm CO 和 5500 ppm 湿度,滴铸和浸涂为 106 ppm CO 和 700 ppm 湿度),TBPA 对空气凝胶毯的表面涂层部分成功,但空气凝胶后修饰策略的重现性较差,不均匀。总体而言,分别在 CO 和水蒸气存在下对超过 40 个样品进行了切换性测试,PVD、滴铸和浸涂的成功率分别为 6.25%、11.7%和 18%。在空气凝胶表面上涂层不成功的最可能原因是:(1)空气凝胶毯的纤维结构不均匀,(2)TBPA 在空气凝胶毯表面上的分布不佳。

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