Preparation of palladium catalysts using the strong electrostatic adsorption technique for stearic acid conversion via the deoxygenation process

被引:0
|
作者
B. Kreatananchai
E. Somsook
T. Kiatsiriroat
K. Punyawudho
机构
[1] Chiang Mai University,Department of Mechanical Engineering, Faculty of Engineering
[2] Chiang Mai University,Graduate School
[3] Mahidol University,Department of Chemistry, Faculty of Science
来源
Applied Nanoscience | 2021年 / 11卷
关键词
Catalysts; Deoxygenation process; Strong electrostatic adsorption; Stearic acid; Palladium;
D O I
暂无
中图分类号
学科分类号
摘要
The strong electrostatic adsorption (SEA) technique was used to prepare palladium catalysts on a graphene support to convert stearic acid to diesel-like hydrocarbon via a deoxygenation process. The pH shifts of graphene were determined, and the point of zero charge (PZC) was obtained at pH = 4.6. With a moderately low PZC, the cation Pd precursor (i.e., [Pd(NH3)4]2+—palladium tetraammine—PdTA) was preferred. In the adsorbed conditions, PdTA and the graphene surface attained the strongest electrostatic adsorption at pH = 12 and had the maximum metal surface density around 0.6 μmol/m2. The Pd loading of 5 wt% catalysts was controlled by the initial concentration of PdTA. The Pd particle size distribution was considerably uniform and had a diameter around 2–3 nm according to transmission electron microscopy (TEM). The ring pattern from electron diffraction (ED) and the spectra from X-ray diffraction (XRD) verified that the Pd metal had a face-centered cubic (fcc) crystal structure. The deoxygenation reaction was carried out and reached 99% conversion of stearic acid using 5 wt% Pd/graphene catalysts with mass of 0.6 g. The main product was straight chain hydrocarbon called heptadecane (C17H36), suggesting a decarboxylation pathway. Moreover, the diesel-like hydrocarbon (C16–C21) attained a maximum selectivity at 85.4%.
引用
收藏
页码:2371 / 2381
页数:10
相关论文
共 44 条
  • [11] Preparation of highly loaded Pt/carbon xerogel catalysts for Proton Exchange Membrane fuel cells by the Strong Electrostatic Adsorption method
    Job, Nathalie
    Lambert, Stephanie
    Chatenet, Marian
    Gommes, Cedric J.
    Maillard, Frederic
    Berthon-Fabry, Sandrine
    Regalbuto, John R.
    Pirard, Jean-Paul
    CATALYSIS TODAY, 2010, 150 (1-2) : 119 - 127
  • [12] Preparation of Thiocyanate-Retaining Tannin Gel for Adsorption Recovery of Palladium from Strong Hydrochloric Acid Solutions
    Morisada, Shintaro
    Kim, Yoen-Ho
    Yakuwa, Shinpei
    Ogata, Takeshi
    Nakano, Yoshio
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2011, 50 (22) : 12366 - 12371
  • [13] Preparation of improved Ag-Pd/TiO2 catalysts using the combined strong electrostatic adsorption and electroless deposition methods for the selective hydrogenation of acetylene
    Riyapan, Sumonrat
    Zhang, Yunya
    Wongkaew, Akkarat
    Pongthawornsakun, Boontida
    Monnier, John R.
    Panpranot, Joongjai
    CATALYSIS SCIENCE & TECHNOLOGY, 2016, 6 (14) : 5608 - 5617
  • [14] Preparation of AgO hollow porous microsphere via the combination of hard templating, strong electrostatic adsorption and oxidation method and its bactericidal property
    Shen, Wen-Ning
    Qiu, Xin-Yu
    Ge, Yan-Feng
    Feng, La-Jun
    Feng, Hui
    Zhai, Zhe
    MATERIALS EXPRESS, 2022, 12 (05) : 683 - 690
  • [15] Selective Hydrogenation of Stearic Acid to 1-Octadecanol Using Bimetallic Palladium-Tin Supported on Carbon Catalysts at Mild Reaction Conditions
    Rodiansono, R.
    Hayati, Elisa
    Azzahra, Atina Sabila
    Astuti, Maria Dewi
    Mustikasari, Kamilia
    Husain, Sadang
    Sutomo, Sutomo
    BULLETIN OF CHEMICAL REACTION ENGINEERING AND CATALYSIS, 2021, 16 (04): : 888 - 903
  • [16] Xylose conversion to furfural via xylulose in aqueous media using Lewis and Bronsted acid catalysts
    Choudhary, Vinit
    Caratzoulas, Stavros
    Pinar, Ana B.
    Sandler, Stanley I.
    Vlachos, Dionisos G.
    Lobo, Raul F.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2012, 244
  • [17] Process Intensification of Nicotinic Acid Production via Enzymatic Conversion using Reactive Extraction
    Kumar, S.
    Babu, B. V.
    CHEMICAL AND BIOCHEMICAL ENGINEERING QUARTERLY, 2009, 23 (03) : 367 - 376
  • [18] Conversion of lignocellulosic biomass to fuels and chemicals by combined hydrothermal - catalytic process using solid acid catalysts
    Triantafyllidis, Konstantinos
    Pileidis, Filoklis
    Avramidou, Kalliopi
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 245
  • [19] Conversion of Methane to Value-Added Hydrocarbons via Modified Fischer–Tropsch Process Using Hybrid Catalysts
    Pooripong Somchuea
    Thitiwut Sukprom
    Sarannuch Sringam
    Santipab Ampansang
    Thongthai Witoon
    Metta Chareonpanich
    Kajornsak Faungnawakij
    Günther Rupprechter
    Anusorn Seubsai
    Topics in Catalysis, 2023, 66 : 1553 - 1568
  • [20] Lysozyme immobilization via adsorption process using sulphonic acid functionalized silane grafted copolymer
    Anirudhan, T. S.
    Rauf, Tharun A.
    COLLOIDS AND SURFACES B-BIOINTERFACES, 2013, 107 : 1 - 10