Enhanced Gas Adsorption on Cu3(BTC)2 Metal-Organic Framework by Post-Synthetic Cation Exchange and Computational Analysis

被引:5
|
作者
Veleta, Jose M. [1 ]
Arrieta, Roy A. [1 ]
Wu, Yanyu [1 ]
Baeza, Miguel A. [1 ]
Castaneda, Karen [1 ]
Villagran, Dino [1 ]
机构
[1] Univ Texas El Paso, Dept Chem & Biochem, El Paso, TX 79968 USA
关键词
CARBON CAPTURE; BASIS-SETS; CO2; MOFS; CU; THERMOCHEMISTRY; HYDROPHILICITY; ACTIVATION; HYDROGEN; HKUST-1;
D O I
10.1021/acs.langmuir.3c00455
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Increased gas adsorption in a series of post-syntheticallymodifiedmetal-organic frameworks (MOFs) of the type HKUST-1 was achievedby the partial cation exchange process. Manipulation of post-syntheticconditions demonstrates high tunability in the site substitution andgas adsorption properties during the dynamic equilibrium process.In this work, post-synthetic modification of Cu-3(BTC)(2) is carried on by exposure to TM2+ solutions (TM= Mn, Fe, Co, Ni) at different time intervals. The crystal structure,composition, and morphology were studied by powder X-ray diffraction,Fourier-transform infrared spectroscopy, inductively coupled plasmaoptical emission spectroscopy, and scanning electron microscopy. Structuralanalysis supports the retention of the crystal structure and partialsubstitution of the Cu metal nodes within the framework. A linearincrease in the transmetalation process is observed with Fe and Cowith a maximum percentage of 39 and 18%, respectively. Conversely,relatively low cation exchange is observed with Mn having a maximumpercentage of 2.40% and Ni with only 2.02%. Gas adsorption measurementsand surface area analysis were determined for each species. Interestingly,(Cu/Mn)(3)(BTC)(2) revealed the highest CO2 adsorption capacity of 5.47 mmol/g, compared to 3.08 mmol/g forCu(3)(BTC)(2). The overall increased gas adsorptioncan be attributed to the formation of defects in the crystal structureduring the cation exchange process. These results demonstrate theoutstanding potential of post-synthetic ion exchange as a generalapproach to fine-tuning the physical properties of existing MOF architectures.
引用
收藏
页码:8091 / 8099
页数:9
相关论文
共 50 条
  • [41] CW and pulsed ESR Spectroscopy of cupric ions in the metal-organic framework compound Cu3(BTC)2
    Poeppl, Andreas
    Kunz, Sebastian
    Himsl, Dieter
    Hartmann, Martin
    JOURNAL OF PHYSICAL CHEMISTRY C, 2008, 112 (07): : 2678 - 2684
  • [42] Preparation of amino-functionalized metal-organic frameworks Cu3(BTC)2 for CO2 adsorption
    Lu, Xueting
    Wang, Feng
    Xiao, FuKui
    Li, Lei
    Zhao, Ning
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 258
  • [43] Facile Syntheses of Metal-organic Framework Cu3(BTC)2(H2O)3 under Ultrasound
    Khan, Nazmul Abedin
    Jhung, Sung Hwa
    BULLETIN OF THE KOREAN CHEMICAL SOCIETY, 2009, 30 (12): : 2921 - 2926
  • [44] Methane Adsorption on Cu-BTC110 Metal-Organic Framework
    M. K. Knyazeva
    O. V. Solovtsova
    A. Yu. Tsivadze
    A. A. Fomkin
    A. V. Shkolin
    I. E. Men’shchikov
    A. L. Pulin
    A. A. Shiryaev
    V. V. Vysotskii
    M. R. Kiselev
    Russian Journal of Inorganic Chemistry, 2019, 64 : 1507 - 1512
  • [45] Methane Adsorption on Cu-BTC110 Metal-Organic Framework
    Knyazeva, M. K.
    Solovtsova, O. V.
    Tsivadze, A. Yu.
    Fomkin, A. A.
    Shkolin, A. V.
    Men'shchikov, I. E.
    Pulin, A. L.
    Shiryaev, A. A.
    Vysotskii, V. V.
    Kiselev, M. R.
    RUSSIAN JOURNAL OF INORGANIC CHEMISTRY, 2019, 64 (12) : 1507 - 1512
  • [46] Effect of Keggin polyoxometalate on Cu(II) speciation and its role in the assembly of Cu3(BTC)2 metal-organic framework
    Bajpe, Sneha R.
    Breynaert, Eric
    Mustafa, Danilo
    Jobbagy, Matias
    Maes, Andre
    Martens, Johan A.
    Kirschhock, Christine E. A.
    JOURNAL OF MATERIALS CHEMISTRY, 2011, 21 (26) : 9768 - 9771
  • [47] A post-synthetic approach triggers selective and reversible sulphur dioxide adsorption on a metal-organic framework
    Mon, Marta
    Tiburcio, Estefania
    Ferrando-Soria, Jesus
    Gil San Millan, Rodrigo
    Navarro, Jorge A. R.
    Armentano, Donatella
    Pardo, Emilio
    CHEMICAL COMMUNICATIONS, 2018, 54 (65) : 9063 - 9066
  • [48] Porous graphene based electrochemical immunosensor using Cu3(BTC)2 metal-organic framework as nonenzymatic label
    Liu, Xiaobang
    Yue, Ting
    Qi, Kai
    Qiu, Yubing
    Guo, Xingpeng
    TALANTA, 2020, 217
  • [49] Adsorption of Small Molecules on Cu3(btc)2 and Cu3-xZnx(btc)2 Metal-Organic Frameworks (MOF) As Studied by Solid-State NMR
    Gul-E-Noor, Farhana
    Mendt, Matthias
    Michel, Dieter
    Poeppl, Andreas
    Krautscheid, Harald
    Haase, Juergen
    Bertmer, Marko
    JOURNAL OF PHYSICAL CHEMISTRY C, 2013, 117 (15): : 7703 - 7712
  • [50] Probing the Lewis acidity and catalytic activity of the metal-organic framework [Cu3(btc)2] (BTC = benzene-1,3,5-tricarboxylate)
    Alaerts, Luc
    Seguin, Etienne
    Poelman, Hilde
    Thibault-Starzyk, Frederic
    Jacobs, Pierre A.
    De Vos, Dirk E.
    CHEMISTRY-A EUROPEAN JOURNAL, 2006, 12 (28) : 7353 - 7363