Page 215 - 《精细化工》2020年第6期
P. 215

第 6 期                           朱炯霖,等:  棉织物的纳米银多功能整理                                    ·1281·


                 科技), 2014, 42(5): 45-49.                      [17]  LI  J  (李静).  Immobilization  and  properties  of  Mg(OH) 2  on  cotton
            [9]   CHEN X Q (陈学情), JIANG J X (蒋家璇), REN Z H (任志鸿), et al.   fabric  based  on  Ionic  liquids[D].  Liaoning:  Dalian  Polytechnic
                 Antibacterial properties of silver nanoparticles and their antibacterial   University (大连工业大学), 2017.
                 effects  against  multi-drug  resistant  strains[J].  Acta  Microbiologica   [18]  ZHOU T T (周婷婷). Preparation of nanometer silver and antibacterial
                 Sinica (微生物学报), 2017, 57(4): 539-549.             finishing of polyester fabric[D]. Jiangsu:Suzhou University (苏州大
            [10]  DU H (杜蕙). Preparation, characterization and antibacterial properties   学), 2012.
                 of  silver  nanoparticles  and  their  composites[D].  Shandong:  Ocean   [19]  Standardization Administration of the People's Republic of China.
                 University of China (中国海洋大学), 2014.               Hygienic standards for disposable sanitary products: GB 15979—
            [11]  ZHOU H R (周洪荣). Extraction of aloe and honeysuckle antibacterial   1995[S].  Beijing:  China  Standard  Press  (中国标准出版社),
                 ingredients  and  finishing  of  cotton  fabrics[D].  Jiangsu:  Suzhou   2002: 3-5.
                 University (苏州大学), 2008.                      [20]  XU R (徐锐). Research on functional modification of cotton fabric
            [12]  HABIB  U  M,  KIM  I,  CHANG-SIK  H.  Preparation  and  optical   with  cactus/nanometer  silver[D].  Jiangsu:  Suzhou  University  (苏州
                                                          +
                 properties  of  colloidal  silver  nanoparticles  at  a  high  Ag    大学), 2011.
                 concentration[J]. Materials Letters, 2006, 60(12):1496-1501   [21]  SUN D H (孙道华), LIU Z Y (刘兆岩), XIAO Z L (肖正梨), et al.
            [13]  ZHANG X Z (张霞忠), ZOU R Y (邹润英), DENG J Y (邓家英), et al.   Preparation of silver nanoparticles based on plant material reduction
                 Advances in the application of glycerol as a green solvent in organic   and  its  application  in  fabric  antibacterial  finishing[J].  Journal  of
                 synthesis[J]. Organic Chemistry (有机化学), 2015, 35(6): 1238-1249.   Chemical Industry (化工学报), 2015, 66(9): 3678-3684.
            [14]  Standardization Administration of the People's Republic of China.   [22]  HONG J H (洪剑寒), WANG H B (王鸿博). Electrical conductivity
                 Textiles-evaluation  for  antibacterial  activity-part  3:  shake  flask   and  uv  resistance  of  nonwoven  magnetron  sputtering  silver  plating
                 method: GB/T 20944.3—2008[S]. Beijing: China Standard Press   [J]. Dyeing (印染), 2008, 34(6):10-11, 35.
                 (中国标准出版社), 2008: 4-29.                        [23]  Standardization Administration of the People's Republic of China.
            [15]  RAO B (饶波). Preparation of loquat leaf/nuclear nanometer silver   Textiles-evaluation  for  solar  ultraviolet  radiation  protective
                 and its application in chitosan nonwoven fabrics[D]. Jiangsu: Suzhou   properties:  GB/T 18830—2002[S].  Beijing:  China Standard Press
                 University (苏州大学), 2016.                          (中国标准出版社), 2002: 5-9.
            [16]  XU B S (徐滨士), OU Z W (欧忠文), MA S N (马世宁), et al. Nano   [24]  AN Q F (安秋凤), WANG Y (王雁), LU D D (路德待), et al. Advances
                 surface engineering[J]. China Mechanical Engineering (中国机械工  in research on uv resistant finishing agents for fabrics[J]. Advances in
                 程), 2000,11(6):707-712.                           Chemical Engineering (化工进展), 2007, 26(6): 819-824, 829.


            (上接第 1252 页)                                       [8]   BAURAIN R, MASQUELIER M, DEPREZ-DE CAMPENEERE D,
                                                                   et al.  Amino  acid  and  dipeptide  derivatives  of  daunorubicin.  2.
            参考文献:
                                                                   Cellular  pharmacology  and  antitumor  activity  of  L1210  leukemic
            [1]   MIYAHIRA  A  K,  DEN  R  B,  CARLO  M  I,  et al.  Tumor  cell   cells in vitro and in vivo[J]. Journal of Medicinal Chemistry, 1980,
                 heterogeneity  and  resistance;  Report  from  the  2018  Coffey-Holden   23(11): 1171-1174.
                 Prostate Cancer Academy Meeting[J]. Prostate, 2019, 79(3): 244-258.   [9]   RIEDL S , RINNER B , SCHAIDER H , et al. In vitro and in vivo
            [2]   NING L H, WANG W, LIANG Y J, et al. Synthesis and cytotoxicity   cytotoxic  activity  of  human  lactoferricin  derived  antitumor  peptide
                 of O,O′-dialkyl{[2-(substituted   phenoxy)   acetamido](substituted   R-DIM-P-LF11-334 on human malignant melanoma[J]. Oncotarget,
                 phenyl)  methyl}phosphonates[J].  European  Journal  of  Medicinal   2017, 8(42): 71817-71832.
                 Chemistry. 2012, 48: 379-384.                 [10]  ALBERICI L, ROTH L, SUGAHARA K N, et al. De novo design of
            [3]   YANG J  Q (杨家强), CHE W  L (车万莉), CHEN L (陈磊), et al.   a tumor-penetrating peptide[J]. Cancer Research, 2013, 73(2): 804-812.
                 Synthesis and antitumor activity of glycoside derivatives containing
                                                               [11]  HU  L  (胡磊),  CHEN  X  M  (陈小敏),  TONG  Y  (童洋),  et al.
                 phosphonate  moiety[J].  Fine  Chemicals  (精细化工),  2018,  35(12):
                                                                   Synthesis  and  anti-tumor  activities  of  L-phenylalanine  dipeptide
                 113-116, 123.
                                                                   derivatives[J].  Chinese  Pharmaceutical  Journal  (中国药学杂志),
            [4]   BARTEE D, SANDERS S, PHILLIPS P D, et al. Enamide prodrugs
                                                                   2016, 51(21): 1831-1838.
                 of acetyl phosphonate DXP synthase inhibitors as potent antibacterial
                                                               [12]  ZOU  Q,  ABBAS  M,  ZHAO  L,  et al.  Biological  photothermal
                 agents[J]. ACS Infectious Diseases, 2019, 5(3): 406-417.
                                                                   nanodots based on self-assembly of peptide-porphyrin conjugates for
            [5]   YANG J Q,  SONG B A,  BHADURY  P  S,  et al.  Synthesis  and
                                                                   antitumor  therapy[J].  Journal  of  the  American  Chemical  Society,
                 antiviral   bioactivities   of   2-cyano-3-substituted-amino(phenyl)
                                                                   2017, 139(5): 1921-1927.
                 methylphosphonylacrylates(acrylamides)  containing  alkoxyethyl
                                                               [13]  YANG J Q (杨家强), GU Q (谷晴), SHU B (束波), et al. Synthesis
                 moieties[J]. Journal of Agricultural and Food Chemistry, 2009, 58(5):
                 2730-2735.                                        and   antitumor   activity   of O,O′-dialkyl-α-pheny-α-(substituted
            [6]   YANG J Q (杨家强), ZENG F K (曾发奎), YANG X (杨璇), et al.   benzoylanoxy)-methylphosphonate[J].  Chinese  Journal  of  Organic
                 Synthesis and antitumor activity of phosphonate derivatives containing   Chemistry (有机化学), 2013, 33 (5): 1113-1118.
                 amino acid[J]. Acta Pharmaceutica Sinica (药学学报), 2016, 51(7):   [14]  LEI M (雷萌), SHAO J (邵杰). The experimental teaching research
                 1105-1109.                                        of  synthesizing  dipeptide  Pro-PheOH[J].  Chemical  Industry  Times
            [7]   YANG J Q (杨家强), YANG X (杨璇), ZHANG D H (张德华), et al.   (化工时刊), 2010, 24(9): 32-36.
                 Synthesis and antitumor activity of amino acid derivatives containing   [15]  MOSMANN  T.  Rapid  colorimetric  assay  for  cellular  growth  and
                 phosphonate backbones[J]. Fine Chemicals (精细化工), 2016, 33(5):   survival:  Application  to  proliferation  and  cytotoxicity  assays[J].
                 564-567.                                          Journal of Immunological Methods, 1983, 65(1/2): 55-63.
   210   211   212   213   214   215   216   217   218   219   220