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·1916·                            精细化工   FINE CHEMICALS                                 第 39 卷

                 supplements[J]. Journal of  Agricultural and Food Chemistry, 2018,   [48]  MCCLEMENTS D J, DECKER E A, PARK Y.  Controlling lipid
                 66(41): 10816-10826.                              bioavailability through physicochemical and structural approaches[J].
            [42]  MUN S H, DECKER E  A, MCCLEMENTS D J. Influence of   Critical Reviews in Food Science and Nutrition, 2009, 49(1): 48-67.
                 emulsifier type on in vitro digestibility of lipid droplets by pancreatic   [49]  WANG Z J (王中江), ZHANG X Y (张潇元), CHE J L (车佳玲).
                 lipase[J]. Food Research International, 2007, 40(6): 770-781.   Investigation on digestion law and stability of peppermint oil
            [43]  SEK L, ORTER C J H, KAUKONEN A M. Evaluation of the in vitro   nanoemulsion[J]. Transactions of the Chinese Society for Agricultural
                 digestion profiles of long and medium chain glycerides and the phase   Machinery (农业机械学报), 2018, 49(10): 381-386, 426.
                 behaviour of their lipolytic products[J]. Journal of Pharmacy  and   [50]  OZTURK B, ARGIN S, OZILGEN M, et al. Nanoemulsion delivery
                 Pharmacology, 2001, 54: 29-41.                    systems for oil-soluble vitamins: Influence of carrier oil type on lipid
            [44]  LV M W, CAO Y, HO C T , et al. Development of organogel-derived   digestion and vitamin D 3 bioaccessibility[J]. Food Chemistry, 2015,
                 capsaicin nanoemulsion with improved bioaccessibility and reduced   187: 499-506.
                 gastric mucosa irritation[J]. Journal of Agricultural and Food Chemistry,   [51]  SALVIA-TRUJILLO L,  QIAN  C, MARTIN-BELLOSO O,  et al.
                 2016, 64(23): 4735-4741.                          Influence of  particle size on lipid digestion and  β-carotene
            [45]  HUO T Y, FERRUZZI M G, SCHWARTZ S J. Impact of fatty acyl   bioaccessibility in emulsions and nanoemulsions[J]. Food Chemistry,
                 composition and quantity of triglycerides on bioaccessibility of   2013, 141(2): 1472-1480.
                 dietary carotenoids[J]. Journal of Agricultural and Food Chemistry,   [52]  CHO H T, SALVIA-TRUJILLO L, KIM J,  et al. Droplet size and
                 2007, 55: 8950-8957.                              composition of nutraceutical nanoemulsions influences bioavailability
            [46]  THAKKAR S K,  MAZIYA-DIXON  B, DIXON  A G O,  et al.  β-   of long chain fatty acids and coenzyme Q10[J]. Food  Chemistry,
                 Carotene micellarization  during  in vitro digestion and uptake by   2014, 156: 117-122.
                 caco-2 cells is directly proportional to β-carotene content in different   [53]  SPERANZA A, CORRADINI M G, HARTMAN T G, et al. Influence
                 genotypes of cassava[J]. The Journal  of Nutrition, 2007, 137(10):   of emulsifier structure on lipid bioaccessibility  in oil-water
                 2229-2233.                                        nanoemulsions[J]. Journal of Agricultural and Food Chemistry, 2013,
            [47]  POUTON C W. Formulation of poorly water-soluble drugs for oral   61(26): 6505-6515.
                 administration: Physicochemical  and physiological issues and the   [54]  MCCLEMENTS D J. Food emulsions principles, practices,  and
                 lipid formulation  classification system[J]. European Journal of   techniques, 3rd[M]. Boca Raton, London, New  York: CRC Press,
                 Pharmaceutical Sciences, 2006, 29(3/4): 278-287.   2016.


            (上接第 1756 页)                                           Journal, 2021, 27, 9003-9010.
            [43]  TERASAWA N, MONOBE H, KIYOHARA K,  et al. Fluorination   [52]  KOUWER P H J, PICKEN S J, MEHL G H. Local lamellar
                 effect of the peripheral chains on the  mesomorphic properties in   organisation  of discoticmesogens carrying fluorinated tails[J].
                 discotic liquid crystals of hexasubstitutedtriphenylene[J]. Chemistry   Journal of Materials Chemistry, 2007, 17(39): 4196-4203.
                 Letters, 2003, 32(3): 214-215.                [53]  CIASTEK-ISKRZYCKA S, GERDING J, KASZYNSKI P,  et al.
            [44]  UMESH C P, MARCELIS A T M, ZUILHOF H. Fluorine-containing   Mesogenicbehaviour of isomeric bent-core 6-oxoverdazyls: 1, 3-vrs
                 triphenylenes. Liquid crystalline properties and surface ordering[J].   1, 5-substitution pattern[J]. Liquid Crystals, 2018, 45(9): 1366-1376.
                 Liquid Crystals, 2014, 41(12): 1911-1922.     [54] CIASTEK S, SZYMAŃSKA K, KASZYŃSKI P, et al. Smecticbehaviour
            [45]  UMESH C P, MARCELIS A T M, ZUILHOF H. Ordering properties   of methyl 4-alkoxybenzoates with a partially fluorinated alkyl
                 of columnar discotic triazines containing three pendant triphenylenes   chain[J]. Liquid Crystals, 2017, 45(1): 11-21.
                 with four or five fluorinated tails[J]. Liquid Crystals, 2015, 42(10):   [55]  PARK J, LEE C W, PARK J H, et al. Capacitive organic anode based
                 1450-1459.                                        on fluorinated-contorted hexabenzocoronene: Applicable to lithium-ion
            [46]  UMESH C P, GANGARAPU S, MARCELIS A T M, et al. Discotic   and sodium-ion storage cells[J]. Advanced Science, 2018, 5(12): 1801365.
                 liquid crystalline tris(hexahexyloxytriphenylene)triazines with separate   [56]  MUHAMMAD I, YOUNIS U, XIE  H,  et al. Triphenylene and
                 columns of triphenylene and triazine cores[J]. Liquid Crystals, 2014,   tetracene based porous  sheet:  Stability and electronic properties[J].
                 41(12): 1862-1872.                                Computational Materials Science, 2020, 176: 109529.
            [47]  SOSA-VARGAS L, NEKELSON F, OKUDA D,  et al. Liquid   [57]  DING K, WANG Y, SHAN T,  et al. Propeller-like acceptors with
                 crystalline and charge transport properties of novel non-peripherally   difluorideperylenediimides for organic solar cells[J]. Organic
                 octasubstituted  perfluoroalkylated phthalocyanines[J]. Journal  of   Electronics, 2020, 78: 105569.
                 Materials Chemistry C, 2015, 3(8): 1757-1765.     [58]  ZHOU Q, GAO Y, CAI C, et al. Dually-passivated perovskite solar
            [48]  BELVISO S, CAMMAROTA F, ROSSANO R,  et al. Effect of   cells with reduced voltage loss and increased super oxide resistance[J].
                 polyfluorination on self-assembling and electronic properties of   Angewandte Chemie International Edition, 2021, 60(15): 8303-8312.
                 thioalkyl-porphyrazines[J]. Journal of Porphyrins and Phthalocyanines,   [59]  CAO L Y, LI J J, ZHU Z Q, et al. Stable and efficient near-infrared
                 2015, 19: 1-11.                                   organic light-emitting diodes employing a platinum(Ⅱ) porphyrin
            [49]  HOUTEM M H C J V, BENASKAR F, FITIE C F C, et al. Helical   complex[J]. ACS  Applied Materials & Interfaces, 2021, 13(50):
                 self-assembly and co-assembly of fluorinated, preorganizeddiscotics   60261-60268.
                 [J]. Organic & Biomolecular Chemistry, 2012, 10(30): 5898-5908.     [60]  LI H F, CHEN J L, YI L F, et al. Easily synthesized pyrene-based
            [50]  QIAN K, QIAO R, CHEN S, et al. Enhanced permittivity in polymer   nonfullerene acceptors for efficient organic solar cells[J]. Synthetic
                 blends via tailoring the orderliness of semiconductive liquid crystalline   Metals, 2021: 116904.
                 polymers and intermolecular interactions[J]. Journal of Materials   [61]  KITAMURA T, OUYO T, HIRAI Y, et al. Organic electroluminescent
                 Chemistry C, 2020, 8(25): 8440-8450.              element,  compound and material for organic electroluminescent
            [51]  ANDRÉ  V, GILIANDRO F,  WALLISON C,  et al. Nematic   element capable of being used therefor, light emitting device, display
                 triphenyltriazine triesters and the induction of the columnar   device, and illumination device, each using the  element:
                 mesophase by fluorine substitution[J].  Chemistry — A European   US10903428B2[P]. 2021-01-26.
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