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Adsorption desulfurization

                   J Nat Gas Chem. 2012;21:421-425.                     doi: 10.1016/j.jcis.2006.04.028
                   doi: 10.1016/S1003-9953(11)60394-9               30.  Xing ZM, Gao YX, Shi LY, Liu XQ, Jiang Y, Sun LB.
                19.  Tian F, Shen Q, Fu Z, Wu Y, Jia C. Enhanced adsorption   Fabrication  of  gold  nanoparticles  in  confined  spaces
                   desulfurization performance over hierarchically structured   using solid-phase reduction: Significant enhancement of
                   zeolite Y. Fuel Process Technol. 2014;128:176-182.   dispersion degree and catalytic activity. Chem Eng Sci.
                   doi: 10.1016/j.fuproc.2014.05.019                    2017;158:216-226.
                20.  Lee  KX,  Valla  JA. Investigation  of metal-exchanged      doi: 10.1016/j.ces.2016.10.044
                   mesoporous Y zeolites for the adsorptive desulfurization   31.  Wang  W, Guo S, Lee  K,  et  al. Hydrous ruthenium
                   of liquid fuels. Appl Catal B. 2017;201:359-369.     oxide  nanoparticles  anchored  to  graphene  and  carbon
                   doi: 10.1016/j.apcatb.2016.07.028                    nanotube  hybrid foam for supercapacitors.  Sci
                21.  Kalita P, Gupta NM, Kumar R. Synergistic role of acid   Rep. 2014;4:4452-4460.
                   sites in the Ce-enhanced activity of mesoporous Ce-Al-     doi: 10.1038/srep04452
                   MCM-41  catalysts  in  alkylation  reactions:  FTIR  and   32.  Hwang JY, El-Kady MF, Wang Y, et al. Direct preparation
                   TPD-ammonia studies. J Catal. 2007;245:338-347.      and  processing  of  graphene/RuO nanocomposite
                                                                                                       2
                   doi: 10.1016/j.jcat.2006.11.004                      electrodes  for high-performance  capacitive  energy
                22.  Meng X, Qiu G,  Wang G, Cai Q,  Wang  Y. Durable   storage. Nano Energy. 2015;18:57-70.
                   and regenerable mesoporous adsorbent for deep        doi: 10.1016/j.nanoen.2015.06.011
                   desulfurization of model jet fuel. Fuel Process Technol.   33.  Qadir  K, Kim  SM, Seo  H,  et  al.  Deactivation  of  Ru
                   2013;111:78-85.                                      catalysts under catalytic CO oxidation by formation of
                   doi: 10.1016/j.fuproc.2013.03.009.                   bulk Ru oxide probed with ambient pressure XPS. J Phys
                23.  Shen  Y, Li P, Xu X, Liu H. Selective  adsorption for   Chem C. 2013;117:13108-13113.
                   removing sulfur: A potential ultra-deep desulfurization      doi: 10.1021/jp404548n
                   approach of jet fuels. RSC Adv. 2012;2:1700-1711.  34.  Lee  JD.  A  New Concise  Inorganic Chemistry. 3   ed.
                                                                                                                 rd
                   doi: 10.1039/C1RA00831A                              Japanese: Van Nostrand Reinhold; 1977. p. 323.
                24.  Danmaliki  GI,  Saleh  TA.  Influence  of  conversion   35.  Zhang Z, Ding L, Gu J, et al. 3D charged grid induces
                   parameters  of  waste  tires  to  activated  carbon  on   a  high  performance  catalyst:  Ruthenium  clusters
                   adsorption of dibenzothiophene from model fuels.     enclosed  in X-zeolite  for hydrogenation  of phenol  to
                   J Clean Prod. 2016;117:50-55.                        cyclohexanone. Catal Sci Technol. 2017;7:5953-5963.
                   doi: 10.1016/j.jclepro.2016.01.034                   doi: 10.1039/C7CY01424G
                25.  Vecchi PA, Ellern A, Angelici RJ. Synthetic, structural,   36.  Darwiche  A,  Bodenes  L,  Madec  L,  Monconduit  L,
                   and  kinetic  studies  of  [CpRu(CO) (µ -  η (S):µ -  Martinez  H. Impact  of the salts and solvents on the
                                                           1
                                                               6
                                                    2
                                                      2
                   DBT)  RuCp*][PF ] :  A  dibenzothiophene  bridge     SEI formation  in  Sb/Na batteries:  An XPS analysis.
                                   6 2
                   between  two  ruthenium  fragments.  Organometallics.   Electrochim Acta. 2016;207:284-292.
                   2005;24:3725-3730.                                   doi: 10.1016/j.electacta.2016.04.140
                   doi: 10.1021/om050312s                           37.  Thunyaratchatanon   C,   Luengnaruemitchai   A,
                26.  Stoffregen SA, Vecchi PA, Ellern A, Angelici RJ. A new   Chaisuwan  T,  Chollacoop  N,  Chen  SY,  Yoshimura  Y.
                   approach to the stabilization of dibenzothiophene (DBT)   Synthesis  and  characterization  of  Zr  incorporation
                   coordination  to metals:  Studies of (η -C H CH Ph)  into  highly  ordered  mesostructured  SBA-15  material
                                                     5
                                                             2
                                                        5
                                                          4
                   Ru(CO) (η (S)-DBT) .   Inorg    Chim     Acta.       and  its  performance  for  CO  adsorption.  Microporous
                                    +
                            1
                          2
                                                                                               2
                   2007;360:1711-1716.                                  Mesoporous Mater. 2017;253:18-28.
                   doi: 10.1016/j.ica.2006.11.022                       doi: 10.1016/j.micromeso.2017.05.012
                27.  Song  H,  Cui  X,  Song  H,  Gao  H,  Li  F.  Characteristic   38.  Xu L,  Yan P, Li H,  et al.  Metallic  Bi  self-doping
                   and  adsorption  desulfurization  performance  of  Ag-Ce   BiOCl   composites:   Synthesis   and   enhanced
                   bimetal  ion-exchanged  Y zeolite.  Ind Eng Chem Res.   photoelectrochemical  performance.  Mater  Lett.
                   2014;53:14552-14557.                                 2017;196:225-229.
                   doi: 10.1021/ie503774e                               doi: 10.1016/j.matlet.2017.02.025
                28.  Duan L, Gao X, Meng X, et al. Adsorption, co-adsorption,   39.  Zheng  HY,  Wang  JZ,  Li  Z,  Yan  LF,  Wen  JZ.
                   and reactions of sulfur compounds, aromatics,        Characterization  and assessment of an enhanced
                   olefins  over  Ce-exchanged Y  zeolite.  J  Phys Chem C.   CuY catalyst  for oxidative  carbonylation  of methanol
                   2012;116:25748-25756.                                prepared by consecutive liquid-phase ion exchange and
                   doi: 10.1021/jp308013m                               incipient wetness  impregnation. Fuel Process Technol.
                29.  Xue  M,  Chitrakar  R,  Sakane  K,  et  al. Preparation  of   2016;152:367-374.
                   cerium-loaded Y-zeolites for removal of organic sulfur      doi: 10.1016/j.fuproc.2016.01.023
                   compounds from hydrodesulfurizated  gasoline  and   40.  Tang  Q,  Wang  Y,  Zhang  Q,  Wan  H.  Preparation  of
                   diesel oil. J Colloid Interface Sci. 2006;298:535-542.  metallic  cobalt  inside  NaY  zeolite  with  high  catalytic


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