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·764·                             精细化工   FINE CHEMICALS                                 第 38 卷

                 light driven reduction  of CO 2 to methanol  over  CuO/TiO 2   [22]  YIN N, WANG K, WANG L Z, et al. Amino-functionalized MOFs
                 nanofibers[J]. Fine Chemicals (精细化工), 2019, 36(6): 1210-1216.   combining ceramic membrane ultrafiltration for Pb (Ⅱ) removal[J].
            [6]   HUANG Y B,  LIANG J, WANG X S,  et al. Multifunctional   Chemical Engineering Journal, 2016, 306: 619-628.
                 metal-organic framework catalysts: Synergistic catalysis and tandem   [23]  TANG Z, HUANG Z Y, QI J Q, et al. Synthesis and characterization
                 reactions[J]. Chemical Society Reviews, 2017, 46(1): 126-157.   of Gd 2Zr 2O 7 defect-fluorite oxide nanoparticles via a homogeneous
            [7]   WAN W C,  YU S, DONG F,  et al. Efficient C 3N 4/graphene oxide   precipitation-solvothermal  method[J]. Royal Society of  Chemistry
                 macroscopic aerogel visible-light photocatalyst[J]. Journal of Materials   Advances, 2017, 7(87): 54980-54985.
                 Chemistry A, 2016, 4(20): 7823-7829.          [24]  LONG J L,  WANG S B,  DING  Z  X,  et al. Amine-functionalized
            [8]   YU C L, LI G, KUMAR S, et al. Phase transformation synthesis of   zirconium metal-organic framework as efficient visible-light
                 novel Ag 2O/Ag 2CO 3 heterostructures with  high  visible light   photocatalyst for  aerobic organic transformations[J]. Chemical
                 efficiency in photocatalytic degradation of pollutants[J]. Advance   Communications, 2012, 48(95): 11656-11658.
                 Materials, 2014, 26(6): 892-898.              [25]  WANG K, GU J W, YIN N. Efficient removal of Pb(Ⅱ) and Cd(Ⅱ)
                                                  3+
            [9]   CHEN X Y, YE X Z, HE J X, et al. Preparation of Fe -doped TiO 2   using NH 2-functionalized Zr-MOFs  via rapid microwave-promoted
                 aerogels for photocatalytic reduction of CO 2 to methanol[J]. Journal   synthesis[J]. Industrial & Engineering Chemistry Research, 2017,
                 of Sol-Gel Science and Technology, 2020, 95(2): 353-359.   56(7): 1880-1887.
            [10]  LIU Q, LI S S,  YU H H, et al. Covalently crosslinked zirconium-   [26]  DONG S X, JI Q H, WANG Y L, et al. Enhanced phosphate removal
                 based metal-organic framework aerogel monolith with ultralow-density   using zirconium hydroxide encapsulated in quaternized cellulose[J].
                 and highly efficient Pb(Ⅱ) removal[J]. J Colloid Interface Science,   Journal of Environmental Sciences, 2020, 89: 102-112.
                 2020, 561: 211-219.                           [27]  PLOMP A J, SU  D S, JONG K P  D,  et al. On the  nature of
            [11]  LIU L P, ZHANG J Y, FANG H B, et al. Metal-organic gel material   oxygen-containing surface groups on carbon nanofibers and their role
                 based on UiO-66-NH 2 nanoparticles for improved adsorption and   for platinum deposition—An XPS and titration study[J]. The Journal
                 conversion of carbon dioxide[J]. Chemistry-An Asian Journal, 2016,   of Physical Chemistry C, 2009, 113(22): 9865-9869.
                 11(16): 2278-2283.                            [28]  CHIANG Y C, LIN W H, CHANG Y C. The influence of treatment
            [12]  CHEN B W (陈擘威), BI Y T (毕于铁), ZHANG L (张林).      duration on multi-walled carbon nanotubes functionalized by
                 Synthesis and characterization of cobalt-based aerogel[J]. Fine   H 2SO 4/HNO 3 oxidation[J]. Applied Surface Science, 2011, 257(6):
                 Chemicals (精细化工), 2013, 30(9): 985-988, 992.      2401-2410.
            [13]  YANG Q  Y, VAESEN S,  RAGON F,  et al. A  water stable   [29]  AZDAD Z, MAROT L, MOSER L, et al. Valence band behaviour of
                 metal-organic framework with  optimal features for CO 2 capture[J].   zirconium oxide, photoelectron and auger spectroscopy study[J].
                 Angewandte Chemie-International Edition, 2013, 52(39): 10316-10320.   Scientific Reports, 2018, 8(1): 16251-16256.
                                                                                                        2–
            [14]  GE J L, WU Z,  WANG Q Q,  et al. Postsynthesis of titanium   [30]  LI X C (黎先财), LI P (李萍), LI J (李静). Preparation of SO 4 /ZrO 2
                 incorporated with amino-functionalization UiO-66 for enhancing   catalyst through hydrothermal modification and its catalytic activity
                 CO 2 uptake[J]. Química Nova, 2018, 42(2): 1-6.   in esterification reaction[J]. Fine Chemicals (精细化工), 2006, 23(2):
            [15]  SHEARER G C, CHAVAN S, ETHIRAJ J, et al. Tuned to perfection:   133-135.
                 Ironing  out the defects in metal-organic framework UiO-66[J].   [31]  DING J,  GUO D,  DENG C J,  et al.  Low-temperature synthesis of
                 Chemistry of Materials, 2014, 26(14): 4068-4071.   nanocrystalline ZrC coatings  on flake graphite by molten salts[J].
            [16]  CHAVAN S M, SHEARER G  C, SVELLE S,  et al. Synthesis and   Applied Surface Science, 2017, 407: 315-321.
                 characterization of amine-functionalized mixed-ligand metal-organic   [32]  ANDERSON J  A,  FIERRO J  L G. Bulk and surface properties of
                 frameworks  of UiO-66  topology[J]. Inorganic Chemistry, 2014,   copper-containing  oxides of the general formula LaZr 1–xCu xO 3[J].
                 53(18): 9509-9515.                                Journal of Solid State Chemistry, 1994, 108(2): 305-313.
            [17]  RAGON F, HORCAJADA P,  CHEVREAU H,  et al. In situ   [33]  REN S, HU L, LI X  T,  et al. Preparation and characterization of
                 energy-dispersive  X-ray diffraction for the synthesis  optimization   organic-inorganic hybrid ZrOC/PF aerogel used as high-temperature
                 and scale-up of the porous zirconium terephthalate  UiO-66[J].   insulator[J]. Ceramics International, 2020, 46(5): 6326-6332.
                 Inorganic Chemistry, 2014, 53(5): 2491-2500.   [34]  ABID H  R, SHANG J, ANG H  M,  et al. Amino-functionalized
            [18]  VIDHYADEVI T, MURUGESAN  A, KALAIVANI  S S,  et al.   Zr-MOF nanoparticles for adsorption of CO 2 and CH 4[J]. International
                 Evaluation of equilibrium, kinetic, and thermodynamic  parameters   Journal of Smart and Nano Materials, 2013, 4(1): 72-82.
                              2+
                 for  adsorption of Cd  ion and methyl red dye onto  amorphous   [35]  SUBUDHI S, MANSINGH S, TRIPATHY S P, et al. The fabrication
                 poly(azomethinethioamide) resin[J]. Desalination and  Water   of Au/Pd plasmonic alloys on UiO-66-NH 2: An efficient visible
                 Treatment, 2014, 52(19/20/21): 3477-3488.         light-induced photocatalyst towards the Suzuki Miyaura coupling
            [19]  HE  Y P (何云鹏), GUO G J (郭改娟), WU S (吴双),  et al.   reaction under ambient conditions[J]. Catalysis Science & Technology,
                 Preparation and adsorption properties of H 6P 2W 18O 62/MIL-101   2019, 9(23): 6585-6597.
                 (Fe)[J]. Fine Chemicals (精细化工), 2019, 36(9): 1910-1915,1929.   [36]  SHEN  L J,  WU  W M, LIANG R  W,  et al. Highly  dispersed
            [20]  LI Y J, FU Y Z, ZHU M S. Green synthesis of 3D tripyramid TiO 2   palladium nanoparticles anchored on UiO-66(NH 2) metal-organic
                 architectures with assistance of aloe  extracts for highly efficient   framework as a reusable and  dual functional visible-light-driven
                 photocatalytic degradation of antibiotic ciprofloxacin[J]. Applied   photocatalyst[J]. Nanoscale, 2013, 5(19): 9374-9382.
                 Catalysis B: Environmental, 2020, 260: 118149-118157.   [37]  CAVKA J H, JAKOBSEN S, OLSBYE U, et al. A new zirconium
            [21]  YUAN G Y, TIAN Y, LIU J,  et al. Schiff base anchored  on   inorganic building brick forming metal organic frameworks with
                 metal-organic framework for Co ( Ⅱ ) removal from  aqueous   exceptional stability[J]. Journal of the American Chemical Society,
                 solution[J]. Chemical Engineering Journal, 2017, 326: 691-699.   2008, 130(42): 13850-13851.
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