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第 3 期 胡炜杰,等: 离子液体功能化 salen Mn 催化苯乙烯与 CO 2 一锅合成碳酸苯乙烯酯 ·639·
[19] CHEN Y J, TAN R, ZHANG Y Y, et al. Reusable chiral salen Mn(Ⅲ) [25] LUO R C, CHEN Y J, HE Q, et al. Metallosalen-based ionic porous
complexes with phase transfer capability efficiently catalyze the polymers as bifunctional catalysts for the conversion of CO 2 into
asymmetric epoxidation of unfunctionalized olefins with NaClO[J]. valuable chemicals[J]. ChemSusChem, 2017, 10(7): 1526-1533.
Applied Catalysis A: General, 2015, 491: 106-115. [26] CHEN Y J, LUO R C, XU Q H, et al. Metalloporphyrin polymers
[20] TAN R, YIN D H, YU N Y, et al. Ionic liquid-functionalized salen with intercalated ionic liquids for synergistic CO 2 fixation via cyclic
Mn(Ⅲ) complexes as tunable separation catalysts for enantioselective carbonate production[J]. ACS Sustainable Chemistry & Engineering,
epoxidation of styrene[J]. Journal of Catalysis, 2008, 255(2): 287-295. 2018, 6(1): 1074-1082.
[21] LUO R C, ZHOU X T, CHEN S Y, et al. Highly efficient synthesis of [27] KURESHY R I, KHAN N H, ABDI S H R, et al. Chiral Mn(Ⅲ) salen
cyclic carbonates from epoxides catalyzed by salen aluminum complexes complex-catalyzed enantioselective epoxidation of nonfunctionalized
with built-in "CO 2 capture" capability under mild conditions[J]. Green alkenes using urea-H 2O 2 adduct as oxidant[J]. Journal of Catalysis,
Chemistry, 2014, 16(3): 1496-1506. 2003, 219: 1-7.
[22] LUO R C, ZHANG W Y, YANG Z, et al. Synthesis of cyclic [28] REN W M, LIU Y, LU X B. Bifunctional aluminum catalyst for CO 2
carbonates from epoxides over bifunctional salen aluminum oligomers as fixation: Regioselective ring opening of three-membered heterocyclic
a CO 2-philic catalyst: Catalytic and kinetic investigation[J]. Journal compounds[J]. The Journal of Organic Chemistry, 2014, 79(20):
of CO 2 Utilization, 2017, 19: 257-265. 9771-9777.
[23] LUO R C, YANG Z, ZHANG W Y, et al. Recyclable bifunctional [29] RAMIDI P, FELTON C M, SUBEDI B P, et al. Synthesis and
aluminum salen catalyst for CO 2 fixation: The efficient formation of characterization of manganese(Ⅲ) and high-valent manganese-oxo
five-membered heterocyclic compounds[J]. Science China-Chemistry, complexes and their roles in conversion of alkenes to cyclic
2017, 60(7): 979-989. carbonates[J]. Journal of CO 2 Utilization, 2015, 9: 48-57.
[24] ZHANG W Y, LUO R C, XU Q H, et al. Transformation of carbon [30] CASTRO-GÓMEZ F, SALASSA G, KLEIJ A W, et al. A DFT study
dioxide into valuable chemicals over bifunctional metallosalen catalysts on the mechanism of the cycloaddition reaction of CO 2 to epoxides
bearing quaternary phosphonium salts[J]. Chinese Journal of Catalysis, catalyzed by Zn(salphen) complexes[J]. Chemistry-A European Journal,
2017, 38(4): 736-744. 2013, 19(20): 6289-6298.
(上接第 618 页) phytic acid modification[J]. Journal of Functional Polymers (功能高
分子学报), 2017, 30(3): 354-359.
[4] LI C L (李长龙), TANG L Y (汤立洋), WANG Z Q (王宗乾). [18] LIU X H, ZHANG Q Y, PENG B, et al. Flame retardant cellulosic
Solubility and spectral characteristic of feather and down in different fabrics via layer-by-layer self-assembly double coating with egg
dissolution systems[J]. Journal of Textile Research (纺织学报), white protein and phytic acid[J]. Journal of Cleaner Production,
2017, 38(4): 27-31. 2020, 243: 118641.
[5] STIBOROVA H, BRANSKA B, VESELA T, et al. Transformation of [19] ZHANG X, ZHOU X Y, CHENG X W, et al. Phytic acid as an
raw feather waste into digestible peptides and amino acids[J]. Journal eco-friendly flame retardant for silk/wool blend: A comparative study
of Chemical Technology & Biotechnology, 2016, 91(6): 1629-1637. with fluorotitanate and fluorozirconate[J]. Journal of Cleaner
[6] GUPTA D, CHAUDHARY H, GUPTA C. Sericin-based polyester Production, 2018, 198: 1044-1052.
textile for medical applications[J]. Journal of the Textile Institute, [20] LIU X H (刘新华), YANG X (杨旭), LI Y (李永), et al. Preparation
2015, 106(4): 366-376. of phytic acid modified terpolymer nanofiber membrane containing
[7] ESLAHI N, MOSHGGOO S, AZAR S K, et al. Application of epoxy groups[J]. Polymeric Materials Science and Engineering (高分
extracted feather protein to improve the shrink resistance of wool 子材料科学与工程), 2017, 33(6): 135-139.
fabric[J]. Journal of Industrial Textiles, 2015, 44(6): 835-848. [21] WANG X Y, LU C Q, CHEN C X. Effect of chicken-feather
[8] BELHAJ K I, LADHARI N, NEMESHWAREE B, et al. protein-based flame retardant on flame retarding performance of
Crosslinking of sericin on air atmospheric plasma treated polyester cotton fabric[J]. Journal of Applied Polymer Science, 2014, 131(15):
fabric[J]. Journal of the Textile Institute, 2017, 108(5): 840-845. 1-8.
[9] HE Y, ZHU R Y, ZHANG J F. Property and application of rabbit [22] LIU Z L, LI L Q, ZHAO Z Y, et al. Antistatic silk fabric through
protein powder[J]. Advanced Materials Research, 2011, 332: sericin swelling-fixing treatment with aminated carbon nanotubes[J].
1727-1730. Materials Science and Engineering: B, 2017, 226: 72-77.
[10] ZHENG J H (郑君红), LI L (李亮), LIU R T (刘让同), et al. [23] DAVE J, KUMAR R, SRIVASTAVA H C. Studies on modification of
Preparation of wool keratin and its modification to polyester fabrics[J]. polyester fabrics Ⅰ: Alkaline hydrolysis[J]. Journal of Applied
Journal of Textile Research (纺织学报), 2018, 39(3): 92-97. Polymer Science, 2010, 33(2): 455-477.
[11] GULRAJANI M L, BRAHMA K P, KUMAR P S, et al. Application [24] KAMEL M M, EL ZAWAHRY M M, HELMY H, et al.
of silk sericin to polyester fabric[J]. Journal of Applied Polymer Improvements in the dyeability of polyester fabrics by atmospheric
Science, 2008, 109(1): 314-321. pressure oxygen plasma treatment[J]. Journal of the Textile Institute,
[12] LEE S R, MIYAZAKI K, HISADA K, et al. Application of silk 2011, 102(3): 220-231.
sericin to finishing of synthetic fabrics[J]. Sen'i Gakkaishi, 2004, [25] CHENG C, LI Y Z, ZHAN R J. Surface modification of polymer
60(1): 9-15. fibre by the new atmospheric pressure cold plasma jet[J]. Surface and
[13] JIN P, IGARASHI T, HORI T. Application of silk sericin for Coatings Technology, 2006, 200(24): 6659-6665.
finishing of polyester and nylon fabrics[J]. Sen'i Kogyo Kenkyu [26] FERRERO F. Wettability measurements on plasma treated synthetic
Kyokai Hokoku, 1993, 3: 44-49. fabrics by capillary rise method[J]. Polymer Testing, 2003, 22(5):
[14] CHENG X W, GUAN J P, CHEN G, et al. Adsorption and flame 571-578.
retardant properties of bio-based phytic acid on wool fabric[J]. [27] WANG X Y, LIU Y J. The dyeing dynamics and structure of
Polymers, 2016, 8(4): 122-140. modified cotton fabric with cationic chicken feather keratin agent[J].
[15] ZHOU Y, DING C, QIAN X, et al. Further improvement of flame Textile Research Journal, 2014, 84(6): 561-571.
retardancy of polyaniline-deposited paper composite through using [28] RAJESH M, RAJ C J, KIM B C, et al. Supercapacitive studies on
phytic acid as dopant or co-dopant[J]. Carbohydrate Polymers, 2015, electropolymerized natural organic phosphate doped polypyrrole thin
115: 670-676. films[J]. Electrochimica Acta, 2016, 220: 373-383.
[16] CHENG X W, GUAN J P, TANG R C, et al. Phytic acid as a [29] KAN C W. Evaluating antistatic performance of plasma-treated
bio-based phosphorus flame retardant for poly(lactic acid) nonwoven polyester[J]. Fibers and Polymers, 2007, 8(6): 629-634.
fabric[J]. Journal of Cleaner Production, 2016, 124: 114-119. [30] PEI Y Q, WAN J W, YOU M, et al. Impact of whey protein
[17] LIU X H (刘新华), CHU Z Y (褚兆洋), LI Y (李永), et al. complexation with phytic acid on its emulsification and stabilization
Preparation and properties of feather adsorbent material based on properties[J]. Food Hydrocolloids, 2019, 87: 90-96.