Page 68 - 《精细化工》2023年第5期
P. 68
·988· 精细化工 FINE CHEMICALS 第 40 卷
alkenes[J]. ACS Catalysis, 2020, 10(20): 11963-11970. [75] HILL M S, LIPTROT D J, WEETMAN C. Alkaline earths as main
[63] ZAIDLEWICZ M, MELLER J. Syntheses with organoboranes. Ⅶ. group reagents in molecular catalysis[J]. Chemical Society Reviews,
Monohydroboration of conjugated dienes with catecholborane catalyzed 2016, 45(4): 972-988.
by complexes of nickel(Ⅱ) chloride and cobalt(Ⅱ) chloride with [76] CAO X, LI J, ZHU A Q, et al. Syntheses of asymmetrical
diphosphines[J]. Tetrahedron Letters, 1997, 38(41): 7279-7282. magnesium(Ⅰ) complexes and their catalytic application in epoxide
[64] OBLIGACION J V, CHIRIK P J. Bis(imino)pyridine cobalt-catalyzed hydroboration[J]. Organic Chemistry Frontiers, 2020, 7(22):
alkene isomerization-hydroboration: A strategy for remote 3625-3632.
hydrofunctionalization with terminal selectivity[J]. Journal of the [77] WANG W F, LUO M, LI J, et al. Low-valent magnesium(Ⅰ)-
American Chemical Society, 2013, 135(51): 19107-19110. catalyzed cyanosilylation of ketones[J]. Chemical Communications,
[65] ZHANG L, ZUO Z Q, LENG X B, et al. A cobalt-catalyzed alkene 2018, 54(24): 3042-3044.
hydroboration with pinacolborane[J]. Angewandte Chemie International [78] BARRETT A G, CRIMMIN M R, HILL M S, et al. Reactions of
Edition, 2014, 53(10): 2696-2700. β-diketiminate-stabilized calcium amides with 9-borabicyclo [3.3.1]
[66] RUDDY A J, SYDORA O L, SMALL B L, et al. (N-phosphinoamidinate) nonane (9-BBN)[J]. Organometallics, 2007, 26(16): 4076-4079.
cobalt-catalyzed hydroboration: Alkene isomerization affords [79] YANG Y, ANKER M D, FANG J, et al. Hydrodeoxygenation of
terminal selectivity[J]. Chemistry-A European Journal, 2014, 20(43): isocyanates: Snapshots of a magnesium-mediated C [double bond,
13918-13922. length as m-dash] O bond cleavage[J]. Chemical Science, 2017, 8(5):
[67] POITRAS A M, OLIEMULLER L K, HATZIS G P, et al. Highly 3529-3537.
selective hydroboration of terminal alkenes catalyzed by a cobalt [80] LI J, LUO M, SHENG X C, et al. Unsymmetrical β-diketiminate
pincer complex featuring a central reactive N-heterocyclic phosphido magnesium(Ⅰ) complexes: Syntheses and application in catalytic
fragment[J]. Organometallics, 2021, 40(8): 1025-1031. hydroboration of alkyne, nitrile and carbonyl compounds[J]. Organic
[68] PALMER W N, DIAO T N, PAPPAS I, et al. High-activity cobalt Chemistry Frontiers, 2018, 5(24): 3538-3547.
catalysts for alkene hydroboration with electronically responsive [81] MAGRE M, MAITY B, FALCONNET A, et al. Magnesium-
terpyridine and α-diimine ligands[J]. American Chemical Society catalyzed hydroboration of terminal and internal alkynes[J]. Angewandte
Catalysis, 2015, 5(2): 622-626. Chemie International Edition, 2019, 58(21): 7025-7029.
[69] PENG J Y, DOCHERTY J H, DOMINEY A P, et al. Cobalt-catalyzed [82] RAUCH M, RUCCOLO S, PARKIN G. Synthesis, structure, and
Markovnikov selective hydroboration of vinylarenes[J]. Chemical reactivity of a terminal magnesium hydride compound with a
Communications, 2017, 53(34): 4726-4729. carbatrane motif, [Tism Pr i Benz ] MgH: A multifunctional catalyst for
[70] ZHANG G Q, WU J, LI S H, et al. Markovnikov-selective hydrosilylation and hydroboration[J]. Journal of the American
hydroboration of vinylarenes catalyzed by a cobalt(Ⅱ) coordination Chemical Society, 2017, 139(38): 13264-13267.
polymer[J]. Organic Letters, 2018, 20(24): 7893-7897. [83] MAGRE M, SZEWCZYK M, RUEPING M. Magnesium complexes
[71] CHEN X, CHENG Z Y, LU Z. Cobalt-catalyzed asymmetric in hydroelementation and reduction catalysis: Opportunities and
Markovnikov hydroboration of styrenes[J]. ACS Catalysis, 2019, challenges[J]. Current Opinion in Green and Sustainable Chemistry,
9(5): 4025-4029. 2021, 32: 100526.
[72] SEMBA K, SHINOMIYA M, FUJIHARA T, et al. Highly selective [84] GUO X M, WANG T, ZHENG Y J, et al. Computational study of
copper-catalyzed hydroboration of allenes and 1,3-dienes[J]. regiodivergent pathways in the copper-catalyzed borocyanation of
Chemistry-A European Journal, 2013, 19(22): 7125-7132. 1,3-dienes: Mechanism and origin of regioselectivity[J]. Journal of
[73] LI C, YANG Z, WANG L, et al. Cobalt-catalyzed regio- and Organometallic Chemistry, 2019, 904: 121014.
stereoselective hydroboration of allenes[J]. Angewandte Chemie [85] FU Z X, GUO X M, LI Y P, et al. Computational study of
International Edition, 2020, 59(15): 6278-6283. catalyst-controlled regiodivergent pathways in hydroboration of
[74] SADOW A D. Early main group metal catalysis: Concepts and 1,3-dienes: Mechanism and origin of regioselectivity[J]. Organic
reactions[M]. New York: John Wiley & Sons, 2020. Chemistry Frontiers, 2020, 7(16): 2157-2167.
(上接第 940 页) adhesive, and antibacterial hydrogels based on lignin/cellulose for
rapid MRSA-infected wound repairing[J]. ACS Applied Materials &
[66] VIJAYAKUMAR R, SIVARAMAN Y, SIDDAPPA K M P, et al. Interfaces, 2021, 13(44): 52333-52345.
Synthesis of lignin nanoparticles employing acid precipitation [71] SHIKINAKA K, NAKAMURA M, NAVARRO R R, et al.
method and its application to enhance the mechanical, UV-barrier Plant-based antioxidant nanoparticles without biological toxicity[J].
and antioxidant properties of chitosan films[J]. Journal of Polymer Chemistry Open, 2018, 7(9): 709-712.
Analysis and Characterization, 2022, 27(2): 99-110. [72] XIA Y (夏悦). Study on antibacterialactivity of lignin and ways to
[67] BOARINO A, SCHREIER A, LETERRIER Y, et al. Uniformly improveit[D]. Tianjin: Tianjin University of Science & Technology
dispersed poly (lactic acid)-gafted lignin nanoparticles enhance (天津科技大学), 2020.
antioxidant activity and UV-barrier properties of poly (lactic acid) [73] YOU S H, XIE Y G, ZHUANG X S, et al. Effect of high antioxidant
packaging films[J]. ACS Applied Polymer Materials, 2022, 4(7): activity on bacteriostasis of lignin from sugarcane bagasse[J].
4808-4817. Biochemical Engineering Journal, 2022, 180: 108335.
[68] LIANG R M, YANG X C, YEW P Y M, et al. PLA-lignin nanofibers [74] VERRILLO M, SAVY D, CANGEMI S, et al. Valorization of
as antioxidant biomaterials for cartilage regeneration and osteoarthritis lignins from energy crops and agro-industrial byproducts as
treatment[J]. Journal of Nanobiotechnology, 2022, 20(1): 327. antioxidant and antibacterial materials[J]. Journal of the Science of
[69] PERIAKARUPPAN R, LI J J, MEI H L, et al. Agro-waste mediated Food and Agriculture, 2022, 102(7): 2885-2892.
biopolymer for production of biogenic nano iron oxide with [75] PAUL S, THAKUE N S, CHANDNA S, et al. Development of a
superparamagnetic power and antioxidant strength[J]. Journal of light activatable lignin nanosphere based spray coating for
Cleaner Production, 2021, 311: 127512. bioimaging and antimicrobial photodynamic therapy[J]. Journal of
[70] DENG P P, CHEN F X, ZHAN H D, et al. Conductive, self-healing, Materials Chemistry B, 2021, 9(6): 1592-1603.