Page 165 - 《精细化工》2023年第2期
P. 165

第 2 期                    张   凯,等:  铈氮改性水热炭活化过硫酸钾降解盐酸四环素                                  ·387·


                 matrix[J]. Journal of Molecular Liquids, 2017, 241: 704-714.   [30]  SCHIMMELPFENNIG S, GLASER  B. One step forward toward
            [10]  SOLTANI T, TAYYEBI A, LEE B K. Photolysis and photocatalysis   characterization:  Some important material properties to  distinguish
                 of tetracycline by  sonochemically heterojunctioned BiVO 4/reduced   biochars[J]. Journal of Environment Quality, 2012, 41(4): 1001.
                 graphene oxide under visible-light irradiation[J]. Journal of Environmental   [31]  BASAR I A, LIU H, CARRERE H, et al. A review on key design
                 Management, 2019, 232: 713-721.                   and  operational parameters to optimize  and  develop hydrothermal
            [11]  HU P D, LONG M. Cobalt-catalyzed sulfate radical-based advanced   liquefaction  of  biomass for biorefinery applications[J]. Green
                 oxidation: A review on heterogeneous catalysts and applications[J].   Chemistry, 2021, 23: 1404-1446.
                 Applied Catalysis B: Environmental, 2016, 181: 103-117.   [32]  HAN L F (韩兰芳), SUN K (孙可), KANG M J (康明洁),  et al.
            [12]  ZHU R, ZHU Y, XIAN  H,  et al. CNTs/ferrihydrite as a highly   Influence of functional groups and pore characteristics of organic
                 efficient heterogeneous Fenton catalyst for the degradation of   matter on the sorption  of hydrophobic organic pollutants[J].
                 bisphenol A:  The important role of CNTs in accelerating   Environmental Chemistry (环境化学), 2014, (11): 1811-1820.
                 Fe(Ⅲ)/Fe(Ⅱ) cycling[J]. Applied Catalysis B: Environmental, 2020,   [33]  PETERSON A A, LACHANCE R P, TESTER J W. Kinetic evidence
                 270: 118891.                                      of the maillard reaction in hydrothermal biomass processing:  Glucose-
            [13]  WU S K, YANG D X, ZHOU Y Y, et al. Simultaneous degradation of   glycine interactions in high-temperature, high-pressure water[J].
                 p-arsanilic acid and inorganic arsenic removal using M-rGO/PS   Industrial & Engineering Chemistry Research, 2010, 49(5): 2107-2117.
                 Fenton-like system under neutral conditions[J]. Journal of Hazardous   [34]  DAI H, SUN T, HAN T, et al. Interactions between cerium dioxide
                 Materials, 2020, 399: 123032.                     nanoparticles and  humic acid: Influence of light intensities and
            [14]  ZHANG K (张凯), WEI  X L  (韦秀丽), WANG B  (王冰),  et al.   molecular weight fractions[J]. Environmental Research, 2021, 195(1):
                 Degradation  of Rhodamine B by sodium persulfate activated with   110861.
                 Fe 3O 4  modified hydrochar[J]. Chemical Industry and Engineering   [35]  CAREGNATO P, JIMÉNEZ K R E, VILLABRILLE P I. Ce-doped
                 Progress (化工进展), 2020, 39(7): 2867-2875.          ZnO as photocatalyst  for carbamazepine degradation[J]. Catalysis
            [15]  LIANG C, ZHAO W, SONG Z D, et al. Influence of precursor pH on   Today, 2020, 372: 183-190.
                 the structure and photo-Fenton performance of Fe/hydrochar[J]. RSC   [36]  JIANG F, WANG S, LIU B, et al. Insights into the influence of CeO 2
                 Advances, 2017, 7(56): 35257-35264.               crystal facet on CO 2 hydrogenation  to methanol over  Pd/CeO 2
            [16]  DENG J Q, LI X D, WEI X, et al. Sulfamic acid modified hydrochar   catalysts[J]. ACS Catalysis, 2020, 10(19): 11493-11509.
                 derived from sawdust for removal of benzotriazole and Cu(Ⅱ) from   [37]  WANG  C,  ZHANG C, HUA W, et al. Catalytic oxidation of vinyl
                 aqueous  solution: Adsorption  behavior and mechanism[J]. Bioresource   chloride emissions over Co-Ce composite oxide catalysts[J].
                 Technology, 2019, 290: 121765.                    Chemical Engineering Journal, 2017, 315: 392-402.
            [17]  GHANIM B, O'DWYER T F, LEAHY J J, et al. Application of KOH   [38]  LI  H, WANG  S, XU W,  et al.  Comparative study of Co/TiO 2,
                 modified seaweed  hydrochar as a biosorbent of vanadium from   Co-Mn/ TiO 2 and Co-Mn/Ti-Ce catalysts for oxidation of elemental
                 aqueous solution: Characterisations, mechanisms  and  regeneration   mercury in flue gas[J]. Chemical Papers, 2017, 71(9): 1-10.
                 capacity[J]. Journal of Environmental Chemical Engineering, 2020,   [39]  CHONG S, ZHANG G , ZHANG N, et al. Preparation of FeCeO x by
                 8(5): 104176.                                     ultrasonic impregnation method for heterogeneous Fenton degradation
            [18]  SHI J M (施洁梅), WANG Y  (王耀),  ZHU L Y  (朱丽云),  et al.   of diclofenac[J]. Ultrasonics Sonochemistry, 2016, 32: 231-240.
                             2+
                 Preparation and Cd  adsorption properties of manganese ferrite/   [40]  XU J, LU G , GUO Y, et al. A highly effective catalyst of Co-CeO 2
                 biochar composite[J]. Fine Chemicals(精细化工), 2019, 36(10):   for the oxidation of diesel soot: The excellent NO oxidation activity
                 2128-2135.                                        and NO x storage capacity[J]. Applied Catalysis A: General, 2017,
            [19]  HU  C G ,  DAI  L M. Doping of carbon materials for  metal-free   535: 1-8.
                 electrocatalysis[J]. Advanced Materials, 2019, 31(7): 1804672.   [41]  YANG  L,  LIU B, QIN W,  et al. Three-dimensionally  ordered
            [20]  DUAN  X, AO Z, SUN H,  et al.  Nitrogen-doped graphene for   macroporous Au/CeO 2-Co 3O 4 catalysts with mesoporous  walls for
                 generation and evolution of reactive radicals by  metal-free   enhanced CO preferential oxidation in H 2-rich  gases[J]. Journal of
                 catalysis[J]. ACS Applied Materials & Interfaces, 2015, 7(7): 4169.   Catalysis, 2012, 296:65-76.
            [21]  HU X W, YU L, MENG Y, et al. Two-dimensional covalent organic   [42]  XI M, CUI K, CUI M, et al. Enhanced norfloxacin degradation by
                 frameworks  as self-template derived nitrogen-doped  carbon nanosheets   iron and nitrogen co-doped biochar: Revealing the radical and
                 for eco-friendly metal-free catalysis[J]. Applied Catalysis B,   nonradical co-dominant mechanism  of persulfate activation[J].
                 Environmental, 2019, 244: 25-35.                  Chemical Engineering Journal, 2021, 420: 129902.
            [22]  YU J N, ZHU Z  L, ZHANG H,  et al. Persistent free radicals on   [43]  SHENG Z H, SHAO L, CHEN J J, et al. Catalyst-free synthesis of
                 N-doped hydrochar for degradation of endocrine disrupting   nitrogen-doped graphene via thermal annealing graphite oxide with
                 compounds[J]. Chemical Engineering Journal, 2020, 398: 125538.   melamine and its excellent electrocatalysis[J]. ACS Nano, 2011, 5(6):
            [23]  LEI Y Q, SU H Q, TIAN F L. A novel nitrogen enriched hydrochar   4350-4358.
                 adsorbents derived from salix biomass for Cr (Ⅵ) adsorption[J].   [44]  LI X, LU X, MENG Y, et al. Facile synthesis and catalytic oxidation
                 Scientific Reports, 2018, 8(1): 4040.             property of palygorskite/mesocrystalline Ce 1–xMn xO 2 nanocomposites[J].
            [24]  BHUVANENDRAN N, RAVICHANDRAN S, KANDASAMY S, et   Journal of Alloys & Compounds, 2013, 562: 56-63.
                 al. Spindle- shaped CeO 2/biochar carbon with oxygen-vacancy as an   [45]  LI X, HE E, ZHANG M,  et al. Interactions of CeO 2 nanoparticles
                 effective and highly durable electrocatalyst for oxygen reduction   with natural colloids and electrolytes impact their aggregation
                 reaction[J]. International Journal of Hydrogen Energy, 2020, 46(2):   kinetics and colloidal stability[J]. Journal of Hazardous  Materials,
                 2128-2142.                                        2019, 386: 121973.
            [25]  JIN Y (晋勇), SUN X S (孙小松), XUE Q (薛屺). X-ray diffraction   [46]  KAMMER F, OTTOFUELLING S,  HOFMANN  T.  Assessment of
                 analysis technology[M]. Beijing:National Defense Industry Press (国  the physico- chemical behavior of titanium dioxide nanoparticles in
                 防工业出版社), 2008.                                    aquatic environments using multi-dimensional  parameter testing[J].
            [26]  XIE Y, WU J F, JING G J, et al. Structural origin of high catalytic   Environmental Pollution, 2010, 158(12): 3472-3481.
                 activity for preferential CO oxidation over CuO/CeO 2 nanocatalysts   [47]  XWA C, TSA C, HUI Z, et al. Roles of pH, cation valence, and ionic
                 with different shapes[J]. Applied Catalysis B: Environmental, 2018,   strength in the stability and aggregation behavior of zinc oxide
                 239: 665-676.                                     nanoparticles[J]. Journal of Environmental Management, 2020, 267:
            [27]  SONG Z G, LIAN F, YU Z H, et al. Synthesis and characterization   110656.
                 of a novel MnO x-loaded biochar and its adsorption properties for   [48]  DEVAIAH D, SMIRNIOTIS P G. Effects of the Ce and Cr contents
                  2+
                 Cu  in aqueous  solution[J]. Chemical Engineering Journal, 2014,   in Fe-Ce-Cr ferrite spinels on the high-temperature water-gas shift
                 242: 36-42.
            [28]  YANG  H,  ZHOU J, YANG E,  et al. Magnetic Fe 3O 4-N-doped   reaction[J]. Industrial & Engineering Chemistry Research, 2017,
                 carbon sphere composite for tetracycline degradation by enhancing   56(7): 1772-1781.
                 catalytic  activity for peroxymonosulfate:  A dominant  non-radical   [49]  LENG Y, GUO  W, SHI X,  et al. Polyhydroquinone-coated Fe 3O 4
                 mechanism[J]. Chemosphere, 2020, 263: 128011.     nanocatalyst for  degradation of Rhodamine B based on  sulfate
            [29]  SPOKA S, KURT A. Review of  the stability of biochar in soils:   radicals[J]. Industrial &  Engineering Chemistry Research, 2013,
                 Predictability of O∶C  molar ratios[J]. Carbon Management, 2010,   52(38): 13607-13612.
                 1(2): 289-303.                                                               (下转第 397 页)
   160   161   162   163   164   165   166   167   168   169   170