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            [8]   CHEN X, ZHAO W, WANG F, et al. Preparation and characterization   of gases, with special reference to the evaluation of surface area and
                 of vanadium(Č)  oxide supported  on SBA-15 and its catalytic   pore size distribution (IUPAC Technical Report)[J]. Pure and Applied
                 performance in benzene hydroxylation to  phenol using  molecular   Chemistry, 2015, 87(9/10): 1051-1069.
                 oxygen[J]. Journal of Natural Gas Chemistry, 2012, 21(5): 481-487.   [24]  LI F D (ᱻࣾ䓫), LI H W (ᱻ㏏ь), JI D (႐͉), et al. Preparation of
            [9]   KHARAT  A  N, MOOSAVIKIA S, JAHROMI B  T,  et al. Liquid   low-loading Ru-W-B/NaY catalysts and their catalytic performance
                 phase hydroxylation of benzene to phenol over vanadium substituted   for hydrogenation of hydroquinone[J]. Fine Chemicals (㇫㏳ࡃጒ),
                 Keggin anion supported on amine functionalized SBA-15[J]. Journal   2019, 36(6): 1124-1131.
                 of Molecular Catalysis A: Chemical, 2011, 348(1/2): 14-19.   [25]  LI G X (ᱻ䉢䉑), LI  C Q (ᱻ᭒ᑧ), DONG P (㦐卼),  et al.
            [10]  DING G D, WANG W T, JIANG T, et al. Highly selective synthesis   Preparation of V 2O 5/HZSM-5 catalyst and its catalytic performance
                 of phenol from benzene over a vanadium-doped graphitic carbon   in hydroxylation of benzene to phenol[J]. Industrial Catalysis (ጒ͇
                 nitride catalyst[J]. ChemCatChem, 2013, 5(1): 192-200.   יࡃ), 2021, 29(3): 46-54.
            [11]  HU L Y, WANG C, YUE B, et al. Vanadium-containing mesoporous   [26]  GAO X H, LYU X C, XU J. Direct oxidation of benzene to phenol
                 carbon and mesoporous carbon nanoparticles as catalysts for benzene   by  dioxygen over nano-vanadium oxide[J].  Chinese Journal of
                 hydroxylation reaction[J]. Materials  Today Communications, 2017,   Chemistry, 2009, 27(11): 2155-2158.
                 11: 61-67.                                    [27]  SHI L L (ⴠⷷⷷ). Study on catalytic oxidation of benzene to phenol
            [12]  ZHU Y J, DONG Y L, ZHAO  L N,  et al. Preparation and   over vanadium based catalyst with molecular O 2[D]. Xi'an: Shaanxi
                 characterization of mesoporous VO x/SBA-16 and their application   University of Science and Technology (䮂㺬⻾ឭ๔႓), 2017.
                 for the direct catalytic hydroxylation of benzene to phenol[J]. Journal   [28]  WANG W T, LI N, SHI L L, et al. Vanadium-zirconium catalyst on
                 of Molecular Catalysis A: Chemical, 2010, 315(2): 205-212.   different support for hydroxylation of benzene to phenol with O 2 as
            [13]  LI G X (ᱻ䉢䉑), LI Y W (ᱻᐣь), LI H X (ᱻᮄᬚ), et al. Catalytic   the oxidant[J]. Applied Catalysis A: General, 2018, 553: 117-125.
                 hydroxylation of benzene to phenol with VO x/SiO 2-Al 2O 3 catalyst[J].   [29]  XU D, JIA L  H,  GUO X F. Direct  hydroxylation of benzene to
                 Journal of Molecular Catalysis (ܳၽיࡃ), 2021, 35(5): 440-448.   phenol over mixed-crystal particles of mesoporous VO x/TiO 2 catalyst
            [14]  MOLINARI R, ARGURIO P, POERIO T, et al. Vanadium (ĕ) and   mixed-crystal VO x/TiO 2 for benzene hydroxylation[J]. Catalysis Letters,
                 vanadium ( Ė ) catalysts in a membrane reactor for benzene   2012, 142(10): 1251-1261.
                 hydroxylation  to  phenol and  study of membrane material  resistance[J].   [30]  CHEN C H, XU J Q, JIN M M, et al. Direct synthesis of phenol from
                 Applied Catalysis A: General, 2012, 437/438: 131-138.   benzene on an activated carbon catalyst treated with nitric acid[J].
            [15]  YANG Y W, TANG R R. Direct hydroxylation of benzene to phenol   Chinese Journal of Chemical Physics, 2011, 24(3): 358-364.
                 by supported vanadium substitution polyoxometalates using H 2O 2 as   [31] ZHANG Q (ᑍ⌲) , YING C Y (Ꮑ䊲✂), YU K N (҆जཉ), et al.
                 oxidant[J]. Research on Chemical Intermediates, 2018, 44(10): 5911-5922.   Study on decomposition rate and stability of hydrogen peroxide[J].
            [16]  ZHANG Y Q, ZHANG J M, CHEN Y H, et al. Quality control of   Journal of Jiaxing University (ଶڡ႓䮏႓្), 2010, 22(3): 51-53.
                 1-alkyl-3-methylimidazolium ionic liquid precursors with HPLC[J].   [32]  WENG X L, XUE  Y  H, CHEN J K,  et al. Elimination  of
                 The Chinese Journal of Process Engineering, 2007, 7(6): 5.   chloroaromatic congeners on a commercial V 2O 5-WO 3/TiO 2 catalyst:
            [17]  COOPER E  R, ANDREWS  C D,  WHEATLEY P S,  et al. Ionic   The effect of heavy  metal Pb[J]. Journal of Hazardous Materials,
                 liquids and eutectic mixtures as solvent and template in synthesis of   2020, 387: 121705.
                 zeolite analogues [J]. Nature, 2004, 430: 1012-1016.   [33]  LIN C (᳄㖗). Syntheses, structure, and characterizations of  novel
            [18]  MAO L P (℈ͪ㤺), WANG P (↗㤺), LI G X (ᱻ䉢䉑),  et al.   aluminophosphates, aluminophosphite, and gallium phosphites templated
                 Preparation of CdMoP composite oxide catalysts by ionic liduid   by DMAP[D]. Chongqing: Chongqing University (䛺Ꮃ๔႓), 2018.
                 thermal synthesis and their catalytic performance[J]. Fine Chemicals   [34]  CHEN Q S (䭵Ⅿ㉏), YU H H (҆⊤⎃), HUANG J  S (叱䛾ᆞ),
                 (㇫㏳ࡃጒ), 2021, 38(10): 2096-2102.                  et al. Preparation and characterization  of vanadium oxide nanotubes[J].
            [19]  PEI R Y, WEI Y, LI K D, et al. Mixed template effect adjusted by   Journal of Wuhan Institute of Technology (ₓⅶጒ⼸๔႓႓្),
                 amine concentration in ionothermal synthesis of molecular sieves[J].   2009, 31(5): 54-56, 59.
                 Dalton Transactions, 2010, 6: 8.              [35]  LI C Q (ᱻ᭒ᑧ). Study on preparation and catalytic performance of
            [20]  ZHAO X H (䊢᫝㏏), GAO X P (倅ाᎠ), ZHAO J B (䊢↌∏), et al.   vanadium catalyst  with solid acid induced[D].  Lanzhou: Lanzhou
                 Highly efficient synthesis of LTA-type aluminophosphate molecular sieve   University of Technology (ڝጋ⤳ጒ๔႓), 2021.
                 by improved  ionothermal  method with low  dosage of  structure-   [36]  TANG D  Y, ZHU L F, HU C W. Elucidating active species and
                 directing agent[J].  Journal of Inorganic Materials (ᬍᱧᱽ᫆႓្),   mechanism of the direct oxidation  of benzene to phenol with
                 2016, 31(11): 1212.                               hydrogen peroxide catalyzed by vanadium-based catalysts using DFT
            [21]  ZHAO X T, YAN Y Y, MAO  L, et al. A relationship between the   calculations[J]. RSC Advances, 2012, 2(6): 23-29.
                    5+
                  4+
                 V /V  ratio and the surface dispersion, surface acidity, and redox   [37]  JIAN M, ZHU  L F,  WANG J Y,  et al. Sodium  metavanadate
                 performance of V 2O 5-WO 3/TiO 2  SCR catalysts[J]. RSC Advances,   catalyzed direct hydroxylation of benzene to phenol with hydrogen
                 2018, 8(54): 31081-31093.                         peroxide in acetonitrile medium[J]. Journal of Molecular Catalysis A:
            [22] GAO  Y  (倅䔉).  Vanadinm-based catalyst in the application of   Chemical, 2006, 253(1/2): 1-7.
                 hydroxylation of  benzene[D]. Dalian: Liaoning Normal University   [38]  HU L Y, WANG C, YE L, et al. Direct hydroxylation of benzene to
                 (䓪Ⴎጵ㠰๔႓), 2015.                                   phenol using H 2O 2 as an oxidant over vanadium-containing mesoporous
            [23]  THOMMES M, KANEKO K, NEIMARK A V, et al. Physisorption   carbon catalysts[J]. Applied Catalysis A: General, 2015, 504: 440-447.
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