Page 191 - 《精细化工》2020年第12期
P. 191
第 12 期 梁 博,等: 茶油微胶囊的制备及其缓释性能 ·2553·
229-236. [38] GE S S (葛双双), LI K (李坤), TU X H (涂行浩), et al. Preparation
[31] YI J H (易建华), CHENG J J (程菁菁), ZHU Z B (朱振宝), et al. and stability of phyllanthus emblica L. seed oil microcapsules[J].
Comparison of physical properties of WPI, SPI and CA[J]. Journal of Food Science (食品科学), 2018, 39(20): 253-259.
Shaanxi University of Science & Technology: Natural Science Edition [39] WANG Z F (王泽富), JIANG S Y (江盛宇), ZHANG W (章文), et al.
(陕西科技大学学报: 自然科学版), 2014, 32(3): 106-111. Rapid determination on relevant indexes of camellia oil by infrared
[32] YI J H (易建华), SUN Y F (孙艺飞), ZHU Z B (朱振宝). Study on spectroscopy[J]. Journal of the Chinese Cereals and Oils Association
the factors influencing the emulsifying properties of whey protein (中国粮油学报), 2018, 33(3): 119-125.
isolates[J]. Journal of Shaanxi University of Science & Technology: [40] WANG L H (王鲁慧), XU T C (徐同成), LIU L N (刘丽娜), et al.
Natural Science Edition (陕西科技大学学报: 自然科学版), 2017, Effect of sodium carboxymethyl cellulose on properties of coacervated
35(4): 112-116. lycopene microcapsules[J]. Food Science (食品科学), 2018, 39(1):
[33] CHEN C (陈冲),YU G P (于国萍). Effect of different factors on the 105-110.
properties of whey protein isolate emulsion gels[J]. Science and [41] WEI Y (魏尧). Study on the preparation, slow and controlled
Technology of Food Industry (食品工业科技), 2011, 32(11): 127-130. release of polymethylmethacrylate microcapsules[D]. Tianjin: Tianjin
[34] MA L K (马兰可). Preparation and characterization of melamine Polytechnic University (天津工业大学), 2017.
formaldehyde resin based isochloromethylamine microcapsule [42] JIANG H F (蒋海峰). Study on the preparation of gliclazide sustained-
suspension[D]. Changchun: Jilin Agricultural University (吉林农业 release microspheres[D]. Harbin: Heilongjiang University (黑龙江大
大学), 2016. 学), 2012.
[35] WANG W Q (王文琼), BAO Y H (包怡红), WANG F (王芳), et al. [43] LI M X (李孟轩), WANG R (王瑞), LIU X (刘星), et al. Preparation
Study on the microencapsulation of walnut oil[J]. Science and and slow release mechanism of geranium wilfordii maxim
Technology of Food Industry (食品工业科技), 2013, 34(3): 209-214. microcapsules loaded composite fabrics[J]. Journal of Textile Research
[36] LIAO X (廖霞), YANG X L (杨小兰), LI Y (李瑶), et al. Response (纺织学报), 2018, 39(2): 138-143.
surface optimization of preparation of microencapsulated quercetin [44] YANG G T (杨关天), QIAN K (钱坤), DING W W (丁威威), et al.
using complex coacervation and its physicochemical properties[J]. Preparation and performance characterization of tetramethrin
Food Science (食品科学), 2016, 37(22): 20-27. microcapsule[J]. Agrochemicals (农药), 2017, 56(9): 642-644.
[37] WANG D W (王大为), REN H H (任华华), YANG J D (杨嘉丹), [45] WAN Y L (万义玲), HONG P Z (洪鹏志), QIU C H (邱彩虹). Study
et al. Preparation and stability of microcapsules containing functional on fish oil microencapsulation preparation and optimum wall
lipids[J]. Food Science (食品科学), 2018, 39(6): 264-269. compositions[J]. Food Science (食品科学), 2007, 28(5): 120-125.
(上接第 2533 页) mixtures of organotin species for catalytic enantioselective ketone
[23] WYK A V, SMITH T, PARK J, et al. Charge-transfer within Zr-based allylation-A detective story[J]. Organic & Biomolecular Chemistry,
metal-organic framework: The role of polar node[J]. Journal of the 2004, 2(5): 741-748.
American Chemical Society, 2018, 140(8): 2756-2760. [32] YUAN Y, SHI X, LIU W. Transition-metal-free, chemoselective
[24] NODA K, NAKAGAWA A, ISHIKURA Y, et al. aerobic oxidations of sulfides and alcohols with potassium nitrate and
Phenylessigsaeureesterderivate: DE2658610(A1)[P]. 1977-07-07. pyridinium tribromide or bromine[J]. Synlett, 2011, 42(25): 559-564.
[25] YUAN S, QIN J S, ZOU L F, et al. Thermodynamically guided [33] LI P H, WANG Y Y, WANG X, et al. Selective oxidation of benzylic
synthesis of mixed-linker Zr-MOFs with enhanced tunability[J]. C—H bonds catalyzed by Cu(Ⅱ)/{PMo12}[J]. The Journal of
Journal of the American Chemical Society, 2016, 138(20): 6636-6642. Organic Chemistry, 2020, 85(5): 3101-3109.
[26] XU C Y, LIU H, LI D D, et al. Direct evidence of charge separation [34] SUBBARAYAN V, MUNEER A, PUNNIYAMURTHY T, et al.
in a metal-organic framework: Efficient and selective photocatalytic Novel polyaniline-supported molybdenum-catalyzed aerobic oxidation
oxidative coupling of amines via charge and energy transfer[J]. of alcohols to aldehydes and ketones[J]. Organic Letters, 2004,
Chemical Science, 2018, 9(12): 3152-3158. 6(26): 4821-4824
[27] XU H Q, HU J H, WANG D K, et al. Visible-light photoreduction of [35] ZHAO J, LAROCK R C. One-pot synthesis of xanthones and
CO 2 in a metal-organic framework: Boosting electron-hole separation thioxanthones by the tandem coupling-cyclization of arynes and
via electron trap states[J]. Journal of the American Chemical Society, salicylates[J]. Organic Letters, 2005, 7(19): 4273-4275.
2015, 137(42): 13440-13443. [36] DOHI T, TAKENAGA N, GOTO A, et al. Clean and efficient
[28] DAO F L, REN F S, YONG W C, et al. Selective adsorptive benzylic C—H oxidation in water using a hypervalent iodine reagent:
separation of CO 2/CH 4 and CO 2/N 2 by a water resistant zirconium- Activation of polymeric iodosobenzene with KBr in the presence of
porphyrin metal-organic framework[J]. Industrial & Engineering montmorillonite-K10[J]. Journal of Organic Chemistry, 2008, 73(18):
Chemistry Research, 2018, 57(36): 12215-12224. 7365-7368.
[29] DERIA P, BURY W, HUPP J T, et al. Versatile functionalization of [37] DAVOOD A, KAVEH K. Trans-3,5-dihydroperoxy-3,5-dimethyl-1,2-
the NU-1000 platform by solvent-assisted ligand incorporation[J]. dioxolane as a novel and efficient reagent for selective sulfoxidation
Chemical Communications, 2014, 50(16): 1965-1968. of sulfides under catalyst-free condition[J]. European Journal of
[30] DERIA P, LI S, ZHANG H D, et al. A MOF platform for Chemistry, 2010, 1(1): 15-19.
incorporation of complementary organic motifs for CO 2 binding[J]. [38] BAILEY L J, FOX B G. Crystallographic and catalytic studies of the
Chemical Communications, 2015, 51(62): 12478-12481. peroxide-shunt reaction in a diiron hydroxylase[J]. Biochemistry,
[31] CUNNUNGHAM A, MOKAL P V, WILSON C, et al. On the use of 2009, 48(38): 8932-8939.