Page 238 - 《精细化工》2023年第12期
P. 238

·2780·                            精细化工   FINE CHEMICALS                                 第 40 卷

                 solubilizing bacteria strain JP233 and its effects on soil phosphorus   [23]  ZHAO X, TANG D, JIANG Y. Effect of the reduction-mineralization
                 leaching loss and crop growth[J]. Front Microbiol, 2022, 13: 892533.   synergistic mechanism of bacillus on the remediation of hexavalent
            [7]   ZHANG K, TENG Z, SHAO W, et al. Effective passivation of lead   chromium[J]. Science of the Total Environment, 2021, 777: 146190.
                 by phosphate solubilizing  bacteria capsules containing tricalcium   [24]  LIAO Y,  WANG  M, CHEN D. Electrosorption of uranium(Ⅵ) by
                 phosphate[J]. J Hazard Mater, 2020, 397: 122754.   highly porous  phosphate-functionalized graphene hydrogel[J].
            [8]   CLEARY A, LLOYD J R, NEWSOME L, et al. Bioremediation of   Applied Surface Science, 2019, 484: 83-96.
                 strontium and technetium contaminated groundwater using glycerol   [25]  ZHOU Y, ZHAO X, JIANG Y, et al. Synergistic remediation of lead
                 phosphate[J]. Chemical Geology, 2019, 9: 213-222.   pollution by biochar combined with phosphate solubilizing
            [9]   NETHERWAY P, GASCÓ G, MÉNDEZ A, et al. Using phosphorus-   bacteria[J]. Sci Total Environ, 2022: 160649.
                 rich biochars to remediate lead-contaminated soil: Influence on soil   [26]  HE S, ZHONG L, DUAN J, et al. Bioremediation of wastewater by
                 enzymes and extractable p[J]. Agronomy, 2020, 10(4): 454.   iron oxide-biochar nanocomposites  loaded with photosynthetic
            [10]  WU C, ZHI D, YAO B, et al. Immobilization of microbes on biochar   bacteria[J]. Front Microbiol, 2017, 8: 823.
                 for water and soil remediation: A review[J]. Environ Res, 2022,   [27]  MUKOME FND, SIX J, PARIKH S J. The effects of walnut shell
                 212(Part B): 113226.                              and wood  feedstock biochar amendments on greenhouse gas
            [11]  TENG Z, SHAO W, ZHANG K, et al. Enhanced passivation of lead   emissions from a fertile soil[J]. Geoderma, 2013, 200/201: 90-98.
                 with immobilized phosphate solubilizing bacteria beads loaded with   [28]  TENG  Z, ZHAO  X, YUAN J, et al. Phosphate functionalized iron
                 biochar/nanoscale zero valent  iron composite[J]. J Hazard Mater,   based nanomaterials coupled with phosphate solubilizing bacteria as
                 2020, 384: 121505.                                an efficient remediation system to enhance lead passivation in soil[J].
            [12]  JI X, WAN J, WANG X, et al. Mixed bacteria-loaded biochar for the   J Hazard Mater, 2021, 419: 126433.
                 immobilization of arsenic, lead, and  cadmium in a polluted soil   [29]  LI Z, SU M, DUAN X, et al. Induced biotransformation of lead (Ⅱ)
                 system: Effects and mechanisms[J]. Sci Total Environ, 2022, 811: 152112.   by Enterobacter sp. in SO 4-PO 4-Cl solution[J]. J Hazard Mater, 2018,
            [13]  ZHONG J, HU X, LIU  X, et al. Isolation and identification of   357: 491-497.
                 uranium tolerant  phosphate-solubilizing  Bacillus  spp. and their   [30]  AHMAD S Z N,  WAN SALLEH  W N, ISMAIL A F, et  al.
                 synergistic strategies to U( Ⅵ ) immobilization[J]. Frontiers in   Adsorptive removal of  heavy metal ions using  graphene-based
                 Microbiology, 2021, 12: 676391.                   nanomaterials: Toxicity, roles of functional groups and mechanisms[J].
            [14]  CHEN H, TANG  L, WANG  Z,  et al. Evaluating the protection of   Chemosphere, 2020, 248: 126008.
                 bacteria from extreme Cd (Ⅱ) stress by P-enriched biochar[J].   [31]  WAN Z, XU Z, SUN Y, et al. Critical impact of nitrogen vacancies
                 Environ Pollut, 2020, 263(Part A): 114483.        in nonradical carbocatalysis on nitrogen-doped graphitic biochar[J].
            [15]  CHEN H M (陈颢明), HU Y S (胡亦舒), LI Z (李真). Adsorption   Environ Sci Technol, 2021, 55(10): 7004-7014.
                 mechanism of  heavy metals  by phosphate-solubilizing microorganism   [32]  ZHENG C, WU Q, HU X, et al. Adsorption behavior of heavy metal
                 modified biochar[J]. China Environmental Science (中国环境科学),   ions on a polymer-immobilized amphoteric biosorbent: Surface
                 2021, 41(2): 684-692.                             interaction assessment[J]. J Hazard Mater, 2021, 403: 123801.
            [16]  CHEN H, ZHANG J, TANG L, et al. Enhanced pb immobilization   [33]  MA Z W, LIU H Q, LYU Q F. Porous biochar derived from tea saponin
                 via the combination of biochar  and phosphate solubilizing   for supercapacitor electrode: Effect of preparation technique[J].
                 bacteria[J]. Environment International, 2019, 127: 395-401.   Journal of Energy Storage, 2021, 40: 102773.
            [17]  MORRISON K D, ZAVARIN M, KERSTING A B, et al. Influence   [34]  LIU Y, LI K, LIU Y, et al. The high-performance and mechanism of
                 of uranium concentration and pH on U-phosphate biomineralization   P-doped activated carbon as a catalyst for air-cathode microbial fuel
                 by caulobacter OR37[J]. Environ Sci Technol, 2021, 55(3): 1626-1636.   cells[J]. Journal of Materials Chemistry A, 2015, 3(42): 21149-21158.
            [18]  LUO C, LU F, SHAO L, et al. Application of eco-compatible biochar   [35]  LUO Y, LI Z, XU H, et al. Development of phosphorus composite
                 in anaerobic digestion to relieve acid stress and promote the selective   biochar for simultaneous enhanced carbon sink and heavy  metal
                 colonization of functional microbes[J]. Water Res, 2015, 68: 710-718.   immobilization in soil[J]. Sci Total Environ, 2022, 831: 154845.
            [19]  QUILLIAM R S, GLANVILLE H C, WADE S C, et al. Life in the   [36]  LI L, MA R, WEN T, et al. Functionalization of carbon nanomaterials by
                 ‘charosphere’-Does biochar in agricultural soil provide a significant   means of phytic acid for uranium enrichment[J]. Sci Total Environ,
                 habitat for microorganisms?[J]. Soil Biology and Biochemistry, 2013,   2019, 694: 133697.
                 65: 287-293.                                  [37]  WANG X, FENG  J, CAI  Y,  et al. Porous  biochar modified with
            [20]  KAZY S K, D'SOUZA S F, SAR P. Uranium and thorium sequestration   polyethyleneimine  (PEI) for effective enrichment of U( Ⅵ ) in
                 by a Pseudomonas sp.: Mechanism and chemical characterization[J].   aqueous  solution[J]. Sci  Total Environ, 2020, S0048-9697(19):
                 J Hazard Mater, 2009, 163(1): 65-72.              34566-34568.
            [21]  TU  H, YUAN  G, ZHAO C,  et al. U-phosphate biomineralization   [38]  JIANG L, LIU X, YIN H, et al. The utilization of biomineralization
                 induced by  Bacillus  sp. Dw-2 in the presence of  organic acids[J].   technique based on microbial induced phosphate precipitation in
                 Nuclear Engineering and Technology, 2019, 51(5): 1322-1332.   remediation of potentially toxic ions contaminated soil: A  mini
            [22]  ZHENG X, HU P,  YAO R,  et al. Enhancement of  uranium(Ⅵ)   review[J]. Ecotoxicol Environ Saf, 2020, 191: 110009.
                 biomineralization  by saccharomyces cerevisiae through addition of   [39]  JIANG W, CAI Q, XU W, et al. Cr(Ⅵ) adsorption and reduction by
                 inorganic phosphorus[J]. Journal of Radioanalytical and Nuclear   humic acid coated on magnetite[J].  Environ  Sci Technol, 2014,
                 Chemistry, 2022, 331(5): 2217-2226.               48(14): 8078-8085.
   233   234   235   236   237   238   239   240   241   242   243