Page 230 - 《精细化工》2021年第7期
P. 230

·1512·                            精细化工   FINE CHEMICALS                                 第 38 卷

                 Catalytic hydrogenation of dimethyl terephthalate to dimethyl   pores for double-layer capacitors: A case study  for  pseudocapacitance
                 1,4-cyclohexanedicarboxylate over  modified skeletal nicke[J].   detection[J]. Energy & Environmental Science, 2013, 6(8): 2465-2476.
                 Fine Chemicals (精细化工), 2010, 27(12): 1239-1243.     [19]  HAN B, LEE E J, CHOI W H, et al. Three-dimensionally ordered
            [11]  WANG X H (王晓会),XIN J N (辛俊娜),MA Y H (马永欢), et al.   mesoporous  carbons activated by  hot ammonia treatment  as
                 Synthesis of dimethyl 1,4-cyclohexanedicarboxylateby low pressure   high-performance  anode  materials in lithium-ion batteries[J].
                 hydrogenation of dimethyl terephthalate[J]. Petrochemical  Technology   New Journal of Chemistry, 2015, 39(8): 6178-6185.
                 (石油化工), 2007, 36(5): 433-436.                 [20]  XU X, LI Y, GONG Y  T,  et al. Synthesis  of palladium  nanoparticles
            [12]  WILLIAM  L F,  PENNS  G. Process for preparing  dimethyl   supported on  mesoporous N-doped carbon  and their catalytic
                 1,4-cyclohexanedicarboylate: US3027398[P]. 1962-03-27.     ability for biofuel upgrade[J]. Journal of the American Chemical
            [13]  YANG W,  FELLINGER T P, ANTONIETTI  M. Efficient  metal-free   Society, 2012, 134(41): 16987-16990.
                 oxygen reduction in  alkaline  medium on high-surface-area   [21]  WEI F, HE X J, ZHANG H F, et al. Crumpled carbon nanonets
                 mesoporous nitrogen-doped carbons made from ionic liquids and   derived from  anthracene oil for high  energy density supercapacitor[J].
                 nucleobases[J]. Journal of the American Chemical Society, 2011,   Journal of Power Sources, 2019, 428: 8-12.
                 133(2): 206-209.                              [22]  WANG C, LI B D, LIN H Q, et al. Carbon nanotube-supported
            [14]  GUO L, JIANG W J, ZHANG Y, et al. Embedding Pt nanocrystals   Pt-Co bimetallic catalysts for preferential oxidation of  CO in  a
                 in N-doped porous carbon/carbon nanotubes toward highly stable   H 2-rich stream  with CO 2  and H 2O vapor[J].  Journal of  Power
                 electrocatalysts for the oxygen reduction reaction[J]. ACS Catalysis,   Sources, 2012, 202(1): 200-208.
                 2015, 5(5): 2903-2909.                        [23]  JIA L  J, BULUSHEV D  A,  PODYACHEVA O Y,  et al. Pt
            [15]  JIANG Z L, LAN G J, LIU X Y, et al. Solid state synthesis of   nanoclusters stabilized by  N-doped  carbon nanofibers for  hydrogen
                 Ru-MC with highly dispersed semi-embedded ruthenium nanoparticles   production from formic acid[J]. Journal of Catalysis, 2013, 307:
                 in a porous carbon framework for benzoic acid hydrogenation[J].   94-102.
                 Catalysis Science & Technology, 2016, 6: 7259-7266.     [24]  CAO Y H, YU H, TAN J, et al. Nitrogen-, phosphorous- and boron-doped
            [16]  TANG M H, MAO S J, LI M M, et al. RuPd alloy nanoparticles   carbon nanotubes as  catalysts for the  aerobic oxidation of
                 supported on N-doped carbon as an efficient and stable catalyst   cyclohexane[J]. Carbon, 2013, 57: 433-442.
                 for benzoic  acid  hydrogenation[J].  ACS Catalysis, 2015, 5(5):   [25]  LAI L F, POTTS J R, ZHAN D, et al. Exploration of the active
                 3100-3107.                                        center structure of nitrogen-doped graphene-based  catalysts for
            [17]  CHOI W H, CHOI M J, BANG J H. Nitrogen-doped carbon nanocoil   oxygen reduction reaction[J]. Energy & Environmental Science,
                 array integrated on carbon nanofiber paper for supercapacitor   2012, 5: 7936-7942.
                 electrodes[J]. ACS Appl Mater Interfaces, 2015, 7(34): 19370-19381.     [26]  AUER E, FREUND A, PIETSCH J, et al. Carbons as supports for
            [18]  GU W T, SEVILLA M, MAGASINSKI A, et al. Sulfur-containing   industrial precious metal catalysts[J]. Applied Catalysis A: General,
                 activated  carbons  with greatly reduced  content of bottle neck   1998, 173(2): 259-271.

            (上接第 1422 页)                                       [17]  XIE L Y, LEE S G,  VANCE  T  M,  et al. Bioavailability of
            [7]   ZHANG X (张馨), YANG Y F (杨豫斐), TAN M N (谭孟娜), et al.   anthocyanins and colonic polyphenol metabolites following consumption
                 Optimization of processing conditions of black beans carrot juice tofu   of aronia berry extract[J]. Food Chemistry, 2016, 211: 860-868.
                 by orthogonal experiment[J]. Science and Technology of Cereals, Oils   [18]  YANG W, KORTESNIEMI M,  YANG B R,  et al. Enzymatic
                 and Foods (粮油食品科技), 2017, 25(5): 14-18.           acylation  of anthocyanins  isolated from alpine bearberry
            [8]   ZHANG Y (张杨), XIE B J (谢笔钧), SUN Z D (孙智达).      (Arctostaphylos alpina) and lipophilic properties, thermostability, and
                 Composition analysis of anthocyanidins in  blueberry wine lees,   antioxidant capacity of the derivatives[J]. Journal of Agricultural and
                 blueberries and  blueberry wine and comparison  of antioxidant   Food Chemistry, 2018, 66(11): 2909-2916.
                 activity of anthocyanidins in blueberries and wine lees[J]. Food   [19]  ZHOU P (周萍), ZHENG J (郑洁). Modification of anthocyanins for
                 Science (食品科学), 2016, 37(2): 165-171.             the enhancement of application: A review[J]. Food Science (食品科
            [9]   XUE H K (薛宏坤), TAN J Q (谭佳琪), LIU C (刘钗),  et al.   学), 2021, 42(3): 346-354.
                 Optimization of extraction process of anthocyanins  from  blueberry   [20]  YANG W, KORTESNIEMI M, MA X Y, et al. Enzymatic acylation
                 pomace and its antitumor activity[J]. Fine Chemicals (精细化工),   of blackcurrant  (Ribes nigrum)  anthocyanins  and evaluation of
                 2019, 36(9): 1881-1890.                           lipophilic  properties and antioxidant  capacity of derivatives[J]. Food
            [10]  LOPEZ-BARRIOS L, ANTUNES-RICARDO M, GUTIERREZ-URIBE   Chemistry, 2019, 281: 189-196.
                 J A. Changes in antioxidant and antiinflammatory activity of black   [21]  CRUZ  L, FERNANDES I, GUIMARAES M,  et al. Enzymatic
                 bean (Phaseolus vulgaris L.) protein isolates due to germination and   synthesis, structural characterization and antioxidant capacity assessment
                 enzymatic digestion[J]. Food Chemistry, 2016, 203: 417-424.   of a new lipophilic  malvidin-3-glucoside-oleic acid conjugate[J].
            [11]  LI S (李舒). Effects of caynidin-3-O-glucoside on cardiac protection[D].   Food and Function, 2016, 7(6): 2754-2762.
                 Jinan: Shandong Normal University (山东师范大学), 2016.   [22]  ZHOU P (周萍), WU Z J (吴仲君), HUANG C H (黄才欢), et al.
            [12]  MIYAKE S, TAKAHASHI N, SASAKI M, et al. Vision preservation   Research progress of extraction and purification of anthocyanins[J].
                 during retinal inflammation by anthocyanin-rich bilberry extract:   Fine Chemicals (精细化工), 2020, 37(8): 1513-1523.
                 Cellular and molecular mechanism[J]. Laboratory Investigation,  2012,   [23]  GUIMARÃES M, MATEUS N, DE FREITAS V, et al. Improvement
                 92(1): 102-109.                                   of the color stability of cyanidin-3-glucoside by fatty acid enzymatic
            [13]  KIM J M, KIM K M, PARK E H, et al. Anthocyanins from black   acylation[J]. Journal of Agricultural and Food Chemistry, 2018,
                 soybean inhibit Helicobacter pylori-induced inflammation in human   66(38): 10003-10010.
                 gastric epithelial AGS cells[J]. Microbiology and Immunology, 2013,   [24]  CRUZ L, BENOHOUD M, RAYNER C  M,  et al. Selective
                 57(5): 366-373.                                   enzymatic lipophilization  of anthocyanin glucosides  from blackcurrant
            [14]  ALI  T, KIM M J, REHMAN S  U,  et al. Anthocyanin-loaded   (Ribes nigrum L.) skin extract and characterization of esterified
                 PEG-gold nanoparticles enhanced the neuroprotection of anthocyanins in   anthocyanins[J]. Food Chemistry, 2018, 266: 415-419.
                 an Aβ 1-42  mouse model of Alzheimer's disease[J]. Molecular   [25]  POTIER P, BOUCHU A, DESCOTES G,  et al. Proteinase
                 neurobiology, 2017, 54(8): 6490-6506.             N-catalysed transesterifications in DMSO-water and DMF-water:
            [15]  PUTTA S, YARLA N S, KUMAR K E,  et al. Preventive and   Preparation of sucrose monomethacrylate[J].  Tetrahedron Letters,
                 therapeutic potentials of anthocyanins in  diabetes and  associated   2000, 41(19): 3597-3600.
                 complications[J]. Current Medicinal Chemistry, 2018, 25(39): 5347-5371.   [26]  WANG  Q X (王青霞), LI J Y (李建颖), CHENG  Y (程瑶), et al.
            [16]  SIGURDSON G T, TANG P P, GIUSTI M M. Annual review of   High-efficiency solvent extraction of anthocyanins  from  Lycium
                 food  science and  technology[M].  PALO ALTO: Doyle M  P,   ruthenicum Murr and its color stability[J]. Natural Product Research
                 Klaenhammer T R, 2017: 261-280.                   and Development (天然产物研究与开发), 2020, 32(1): 103-109, 135.
   225   226   227   228   229   230   231   232   233   234   235