UTSA-16 Growth within 3D-Printed Co-Kaolin Monoliths with High Selectivity for CO2/CH4, CO2/N2, and CO2/H2 Separation

被引:98
作者
Lawson, Shane [1 ]
Al-Naddaf, Qasim [1 ]
Krishnamurthy, Anirduh [1 ]
Amour, Marc St. [1 ]
Griffin, Connor [1 ]
Rownaghi, Ali A. [1 ]
Knox, James C. [2 ]
Rezaei, Fateme [1 ]
机构
[1] Missouri Univ Sci & Technol, Dept Chem & Biochem Engn, Rolla, MO 65409 USA
[2] NASA, George C Marshall Space Flight Ctr, Huntsville, AL 35812 USA
关键词
3D printing; honeycomb monolith; MOF growth; UTSA-16; adsorption; METAL-ORGANIC FRAMEWORKS; ADSORPTION; ADSORBENTS; MOF-74; COMPOSITES; CAPTURE; SURFACE; N-2; CH4;
D O I
10.1021/acsami.8b05192
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Honeycomb monoliths loaded with metal-organic frameworks (MOFs) are highly desirable adsorption contactors because of their low-pressure drop, rapid mass-transfer kinetics, and high-adsorption capacity. Moreover, three-dimensional (3D)-printing technology renders direct material modification a realistic and economic prospect. In this study, 3D printing was utilized to impregnate kaolin-based monolith with UTSA-16 metal formation precursor (Co), whereupon an internal growth was facilitated via a solvothermal synthesis approach. The cobalt weight loading in the kaolin support was varied systematically to optimize the MOF growth while retaining monolith mechanical integrity. The obtained UTSA-16 monolith with 90 wt % loading exhibited similar textural features and adsorption characteristics to its powder analogue while improving upon structural integrity. In comparison to previously developed 3D-printed UTSA-16 monoliths, the UTSA-16-kaolin monolith not only showed higher MOF loading but also higher compression stress, indicative of its robust structure. Furthermore, the 3D-printed UTSA-16-kaolin monolith displayed a comparable CO2 adsorption capacity to the UTSA-16 powder (3.1 vs 3.5 mmol/g at 25 degrees C and 1 bar), which was proportional to its loading. Selectivity values of 49, 238, and 3725 were obtained for CO2/CH4, CO2/N-2, and CO2/H-2, respectively, demonstrating good separation potential of the 3D-printed MOF monolith for various gas mixtures, as determined by both equilibrium and dynamic adsorption measurements. Overall, this study provides a novel route for the fabrication of UTSA-16-loaded monoliths, which demonstrate both high MOF loading and mechanical integrity that could be readily applied to various CO2 capture applications.
引用
收藏
页码:19076 / 19086
页数:11
相关论文
共 37 条
[21]   New insights into UTSA-16 [J].
Masala, Alessi ;
Vitillo, Jenny G. ;
Bonino, Francesca ;
Manzoli, Maela ;
Grande, Carlos A. ;
Bordiga, Silvia .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2016, 18 (01) :220-227
[22]   Synthesis of Water-Sensitive Metal-Organic Frameworks within Fiber Sorbent Modules [J].
Pimentel, Brian R. ;
Fultz, Adam W. ;
Presnell, Kristin V. ;
Lively, Ryan P. .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2017, 56 (17) :5070-5077
[23]   MOFs meet monoliths: Hierarchical structuring metal organic framework catalysts [J].
Ramos-Fernandez, Enrique V. ;
Garcia-Domingos, Mariana ;
Juan-Alcaniz, Jana ;
Gascon, Jorge ;
Kapteijn, Freek .
APPLIED CATALYSIS A-GENERAL, 2011, 391 (1-2) :261-267
[24]   Microporous Metal Organic Framework Membrane on Porous Support Using the Seeded Growth Method [J].
Ranjan, Rajiv ;
Tsapatsis, Michael .
CHEMISTRY OF MATERIALS, 2009, 21 (20) :4920-4924
[25]   Structured adsorbents in gas separation processes [J].
Rezaei, F. ;
Webley, P. .
SEPARATION AND PURIFICATION TECHNOLOGY, 2010, 70 (03) :243-256
[26]   MOF-74 and UTSA-16 film growth on monolithic structures and their CO2 adsorption performance [J].
Rezaei, Fateme ;
Lawson, Shane ;
Hosseini, Hooman ;
Thakkar, Harshul ;
Hajari, Amit ;
Monjezi, Samati ;
Rownaghi, Ali A. .
CHEMICAL ENGINEERING JOURNAL, 2017, 313 :1346-1353
[27]   Cobalt-citrate framework armored with graphene oxide exhibiting improved thermal stability and selectivity for biogas decarburization [J].
Shen, Yangcan ;
Li, Ziyin ;
Wang, Lihua ;
Ye, Yingxiang ;
Liu, Qing ;
Ma, Xiuling ;
Chen, Qianhuo ;
Zhang, Zhangjing ;
Xiang, Shengchang .
JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (02) :593-599
[28]   3D-Printed Metal-Organic Framework Monoliths for Gas Adsorption Processes [J].
Thakkar, Harshul ;
Eastman, Stephen ;
Al-Naddaf, Qasim ;
Rownaghi, Ali A. ;
Rezaei, Fateme .
ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (41) :35908-35916
[29]   Formulation of Aminosilica Adsorbents into 3D-Printed Monoliths and Evaluation of Their CO2 Capture Performance [J].
Thakkar, Harshul ;
Eastman, Stephen ;
Al-Mamoori, Ahmed ;
Hajari, Amit ;
Rownaghi, Ali A. ;
Rezaei, Fateme .
ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (08) :7489-7498
[30]   3D-Printed Zeolite Monoliths for CO2 Removal from Enclosed Environments [J].
Thakkar, Harshul ;
Eastman, Stephen ;
Hajari, Amit ;
Rownaghi, Ali A. ;
Knox, James C. ;
Rezaei, Fateme .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (41) :27753-27761