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                 Science & Engineering, 2013, 7(3): 435-441.       performance of La@ZIF-8 composite metal-organic frameworks[J].
            [14]  WANG W J, ZHANG H P, ZHANG L, et al. Adsorptive removal of   RSC Advances, 2020, 10: 3380-33909.
                 phosphate by  magnetic Fe 3O 4@C@ZrO 2[J]. Colloids and Surfaces   [32]  ZHANG L,  ZHOU Q, LIU J Y,  et al. Phosphate adsorption on
                 A-Physicochemical and Engineering Aspects, 2015, 469: 100-106.   lanthanum hydroxide-doped activated carbon  fiber[J]. Chemical
            [15]  SONG B J (宋冰洁),ZHAO Y (赵英), CHI Y J (迟玉杰). Adsorption   Engineering Journal, 2012, 185/186: 160-167.
                 properties of magnetic lanthanum modified eggshell for phosphate in   [33]  WANG T  Z (王同洲), WANG H  (王鸿). Research  progress  on
                 water[J]. Fine Chemicals (精细化工), 2020, 37(9): 1918-1925.   porous carbon materials[J]. Scientia Sinica Chimica (中国科学:  化
            [16]  LIU R T, CHI L, WANG X Z, et al. Review of metal (hydr)oxide and   学), 2019, 49(5): 729-740.
                 other adsorptive materials for phosphate removal from  water[J].   [34]  YANG  Y  J,  WANG  J  G,  QIAN  X  Q,  et  al.
                 Journal  of Environmental Chemical  Engineering, 2018, 6: 5269-   Aminopropyl-functionalized mesoporous carbon (APTMS-CMK-3)
                 5286.                                             as effective phosphate adsorbent[J]. Applied Surface Science, 2018,
            [17]  CHUBAR N I, KANIBOLOTSKYY  V A, STRELKO  V  V,  et al.   428: 206-214.
                 Adsorption of phosphate ions on novel inorganic ion exchangers[J].   [35]  JU X Q, HOU J F, TANG Y Q, et al. ZrO 2 nanoparticles confined in
                 Colloids and Surfaces A-Physicochemical and Engineering Aspects,   CMK-3 as highly effective sorbent for phosphate adsorption[J].
                 2005, 255: 55-63.                                 Microporous Mesoporous Mater, 2016, 230: 188-195.
            [18]  CHITRAKAR R, TEZUKA S, SONODA A,  et al. Selective   [36]  JU X Q, CUI H, LIU T,  et al. Confined La 2O 3 particles in
                 adsorption of phosphate from seawater and wastewater by amorphous   mesoporous carbon  material for enhanced phosphate adsorption[J].
                 zirconium hydroxide[J]. Journal of Colloid and Interface Science,   Royal Society Open Science, 2021, 8: 210428.
                 2006, 297: 426-433.                           [37]  FENG J K (冯健康).  The synthesis of zirconia/lanthana-modified
            [19]  TOKUNAGA S,  YOKOYAMA S,  WASAY S A. Removal of   porous carbon-based materials and their application on  phosphate
                 arsenic( Ⅲ ) and arsenic( Ⅴ ) ions from aqueous solutions with   removal[D]. Nanjing: Nanjing University (南京大学), 2019.
                 lanthanum(Ⅲ) salt and comparison with aluminum(Ⅲ), calcium(Ⅱ),   [38]  BACELO H, PINTOR A M A, SANTOS S C R, et al. Performance
                 and iron( Ⅲ ) salts[J].  Water Environment Research,  1999, 71:   and prospects of different adsorbents for phosphorus uptake and
                 299-306.                                          recovery from  water[J]. Chemical Engineering Journal, 2020, 381:
            [20]  SHIN E W, KARTHIKEYAN K  G, TSHABALALA M A.      122566.
                 Orthophosphate sorption  onto lanthanum-treated lignocellulosic   [39]  TALAVERA-PECH W A, ÁVILA-ORTEGA A, PACHECO-
                 sorbents[J]. Environmental Science  and Technology, 2005, 39:   CATALÁN D,  et al. Effect of functionalization synthesis type of
                 6273-6279.                                        amino-MCM-41 mesoporous silica nanoparticles on its RB5 adsorption
            [21]  HE Q Q, ZHAO  H J, TENG Z  D,  et al. Phosphate removal and   capacity and kinetics[J]. Silicon, 2019, 11: 1547-1555.
                 recovery by lanthanum-based adsorbents: A review for current   [40]  LIU T, JU X Q, HU Z X, et al. Cobalt oxide confined in mesoporous
                 advances[J]. Chemosphere, 2022, 303: 134987.      SiO 2  as effective  catalyst for  CO oxidation[J].  Microporous and
            [22]  LIU T, FENG J K, WAN Y Q, et al. ZrO 2 nanoparticles confined in   Mesoporous Materials, 2022, 333: 111733.
                 metal organic frameworks for highly effective adsorption of   [41]  NING X,  LU  Y  Y, FU H Y,  et al. Template-mediated Ni(Ⅱ)
                 phosphate[J]. Chemosphere, 2018, 210: 907-916.    dispersion in mesoporous SiO 2 for preparation of highly dispersed Ni
            [23]  ZHANG Y Y, PAN B  C, SHAN C,  et al. Enhanced phosphate   catalysts: Influence of template type[J]. ACS Applied Materials &
                 removal by nanosized hydrated La(Ⅲ) oxide confined in cross-linked   Interfaces, 2017, 9: 19335-19344.
                 polystyrene networks[J]. Environmental Science  and Technology,   [42]  LE H T T, DANG T D, CHU N T H, et al. Synthesis of nitrogen-
                 2016, 50: 1447-1454.                              doped ordered mesoporous carbon with enhanced lithium storage
            [24]  LEE J, KIM J, HYEON T. Recent progress in the synthesis of porous   performance from natural kaolin clay[J]. Electrochimica Acta, 2020,
                 carbon materials[J]. Advanced Materials, 2006, 18: 2073-2094.     332: 135399.
            [25]  SUN  M H, HUANG  S Z, CHEN L H,  et al. Applications of   [43]  SHIN E  W, HAN  J S, JANG M,  et al. Phosphate adsorption on
                 hierarchically structured porous materials from energy storage and   aluminum-impregnated mesoporous  silicates: Surface structure and
                 conversion, catalysis, photocatalysis, adsorption, separation, and   behavior of adsorbents[J]. Environmental Science and Technology,
                 sensing to biomedicine[J]. Chemical  Society Reviews,  2016, 45:   2004, 38(3): 912-917.
                 3479.                                         [44]  DELANEY P, MCMANAMON C, HANRAHAN J P,  et al.
            [26]  ZHANG J D (张鉴达). The synthesis of modified MCM-41 for   Development of chemically engineered porous metal oxides  for
                 phosphate removal[D]. Shanghai: Shanghai Jiao Tong University (上  phosphate removal[J]. Journal of Hazardous Materials, 2011, 185:
                 海交通大学), 2010.                                     382-391.
            [27]  YANG  Y, ZHU H Q, XU X H,  et al. Construction of a novel   [45]  TANG Y Q, ZONG E M, WAN H Q, et al. Zirconia functionalized
                 lanthanum carbonate-grafted ZSM-5  zeolite for effective highly   SBA-15 as effective adsorbent for phosphate removal[J]. Microporous
                 selective phosphate removal from wastewater[J]. Microporous and   and Mesoporous Materials, 2012, 155: 192-200.
                 Mesoporous Materials, 2021, 324: 111289.      [46]  YANG J, ZHOU  L, ZHAO  L  Z,  et al. A designed nanoporous
            [28]  HAMOUDI S, BELKACEMI K. Adsorption of nitrate and phosphate   material for phosphate removal with  high efficiency[J].  Journal of
                 ions from aqueous solutions  using organically-functionalized silica   Materials Chemistry, 2011, 21: 2489.
                 materials: Kinetic modeling[J]. Fuel, 2013, 110: 107-113.   [47]  HUANG W Y, LI D, YANG J,  et al. One-pot synthesis  of
            [29]  NEHRA M, DILBAGHI N, SINGHAL N K,  et al. Metal organic   Fe(Ⅲ)-coordinated diamino-functionalized mesoporous silica: Effect
                 frameworks MIL-100(Fe) as an efficient adsorptive material for   of functionalization degrees on structures and phosphate adsorption[J].
                 phosphate management[J]. Environmental Research, 2019, 169:   Microporous and Mesoporous Materials, 2013, 170: 200-210.
                 229-236.                                      [48]  ZHANG J D, SHEN Z M, SHAN W P, et al. Adsorption behavior of
            [30]  ZHANG S P, DING J, TIAN D Y. Incorporation of MIL-101 (Fe or   phosphate on lanthanum(Ⅲ) doped mesoporous silicates material[J].
                 Al)  into chitosan hydrogel  adsorbent for phosphate removal:   Journal of Environmental Sciences, 2010, 22(4): 507-511.
                 Performance  and mechanism[J]. Journal of Solid State  Chemistry,   [49]  OU E C, ZHOU J J, MAO S C, et al. Highly efficient removal of
                 2022, 306: 122709.                                phosphate by lanthanum-doped mesoporous SiO 2[J]. Colloids and
            [31]  LI J Q, CHANG  H Z,  LI Y H,  et al. Synthesis and adsorption   Surfaces A-Physicochemical and Engineering Aspects, 2007, 308:
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