[1] NASRIN J, ISLAM M S. Metallurgical and biological activity of peroxo complexes of molybdenum(VI)containing organic acid and amine bases[J]. Journal of Applied Sciences, 2007, 7(4): 597-603. DOI:10.3923/ jas.2007.597.603. [2] CAMELLTA F, KADER A, ALAM M, et al. Synthesis, characterization and antimicrobial investigation of three new Mo(VI)mixed ligand complexes[J]. Asian Journal of Chemical Sciences, 2018, 4(4): 1-5. DOI:10.9734/ AJOCS/2018/42722. [3] KIM G S, JUDD D A, HILL C L, et al. Synthesis, characterization, and biological activity of a new potent class of anti-HIV agents, the peroxoniobium-substituted heteropolytungstates[J]. Journal of Medicinal Chemistry, 1994, 37(6): 816-820. DOI:10.1021/ jm00032a016. [4] LASOCHA W, SZYMANSKA A, OSZAJCA M, et al. Polymolybdates and peroxomolybdates: candidates for catalysts in industry[J]. Acta Crystallographica Sect A, 2014, 70(a1): C589. DOI:10.1107/s2053273314094108. [5] 刘淑芝,邵姝媛,秦海涛,等.过氧杂多酸(盐)在催化有机反应中的应用[J].化学通报,2012,75(3):239-244. DOI:CNKI:SUN:HXTB.0.2012-03-006. [6] BAGHERZADEH M, AMINI M, PARASTAR H, et al. Synthesis, X-ray structure and oxidation catalysis of a oxido-peroxido molybdenum(VI)complex with a tridentate Schiff base ligand[J]. Inorganic Chemistry Communications, 2012, 20: 86-89. DOI:10.1016/ j.inoche.2012.02.023. [7] MAITI S K, ABDUL MALIK K M, BHATTACHARYYA R. Oxoperoxo-molybdenum and -tungsten(VI)complexes: their synthesis, structure and catalytic uses in the peroxidic oxidation of alcohols to aldehydes and ketones[J]. Inorganic Chemistry Communications, 2004, 7(7): 823-828. DOI:10.1016/ j.inoche.2004.04.020. [8] 尹盛,郭军祥,朱文帅,等.过氧钨、钼酸化合物催化氧化苯甲醇合成苯甲醛的研究[J].化学研究与应用,2010,22(10): 1255-1259. DOI:10.3969/ j.issn.1004-1656.2010.10.006. [9] SHI X Y, WEI J F. Preparation, characterization and catalytic oxidation properties of bis-quaternary ammonium peroxotungstates and peroxomolybdates complexes[J]. Applied Organometallic Chemistry, 2007, 21(3): 172-176. DOI:10.1002/ aoc.1196. [10] SŁAWIN'SKA A, SERDA P, PAMIN K, et al. Synthesis, crystal structure and selected properties of a group of new peroxomolybdates[J]. Polyhedron, 2017, 121: 191-198. DOI:10.1016/ j.poly.2016.09.062. [11] 刘雪梅,邵开文,邵润博.一个新的过氧钼酸盐(NH4)4(CH6N3)2[Mo7O23(O2)] ·3H2O的合成、晶体结构及催化性质[J].人工晶体学报, 2015, 44(5): 1409-1415. [12] ZHU W S, LI H M, HE X Y, et al. Synthesis of adipic acid catalyzed by surfactant-type peroxotungstates and peroxomolybdates[J]. Catalysis Communications, 2008, 9(4): 551-555. DOI:10.1016/ j.catcom.2007.07.038. [13] ZOU F, WU X Y, ZHU W S, et al. Oxidative desulfurization of fuel catalyzed by amphiphilic peroxomolybdate[J]. Petroleum Science and Technology, 2011, 29(11): 1113-1121. DOI:10.1080/ 10916460903530499. [14] ZHU W S, ZHU G P, LI H M, et al. Oxidative desulfurization of fuel catalyzed by metal-based surfactant-type ionic liquids[J]. Journal of Molecular Catalysis A: Chemical, 2011, 347(1-2): 8-14. DOI:10.1016/ j.molcata.2011.07.002. [15] ZHU W S, WU P W, CHAO Y H, et al. A novel reaction-controlled foam-type polyoxometalate catalyst for deep oxidative desulfurization of fuels[J]. Industrial & Engineering Chemistry Research, 2013, 52(49): 17399-17406. DOI:10.1021/ ie402513x. [16] DAI B L, WU P W, ZHU W S, et al. Heterogenization of homogenous oxidative desulfurization reaction on graphene-like boron nitride with a peroxomolybdate ionic liquid[J]. RSC Advances, 2016, 6(1): 140-147. DOI:10.1039/ c5ra23272d. [17] OLSON S, STOMBERG R. Studies on peroxomolybdates XX. Crystal structure of ammonium dodecaoxodiperoxotetramolybdate(VI)-water(1/2),(NH4)4[Mo4O12(O2)2] ·2H2O1[J]. Zeitschrift für Kristallographie-Crystalline Materials, 1996, 211(12): 895-899. DOI:10.1524/zkri.1996.211.12.895. [18] CHEN Q L, ZHANG R H, ZHOU Z H, et al. Formations of a nonanuclear peroxo molybdate and its heptanuclear precursor[J]. Inorganic Chemistry Communications, 2010, 13(11): 1366-1369. DOI:10.1016/ j.inoche.2010.07.038. [19] OLSON S, STOMBERG R. Studies on peroxomolybdates XXI Crystal structure of the ammonium peroxooctamolybdate(VI)(NH4)4[Mo8O24+x(O2)2-x(H2O)2] ·4H2O(x=0.8)[J]. Zeitschrift für Kristallographie - Crystalline Materials, 1997, 212(10): 699-703. DOI:10.1524/ zkri.1997.212.10.699. [20] TRYSBERG L, STOMBERG R, TRYSBERG L, et al. Studies on peroxomolybdates. X. the crystal structures of(NH4)4[Mo3O7(O2)4] ·2H2O, K5[Mo7O21(O2)2(OH)] ·6H2O and(NH4)4[Mo8O24(O2)2(H2O)2] ·4H2O. a preliminary report [J]. Acta Chemica Scandinavica, 1981, 35a: 823-825. DOI:10.3891/ acta.chem.scand.35a-0823. [21] STOMBERG R, OLSON S. Studies on peroxomolybdates. XIX. Crystal structure of potassium heptaoxotetraperoxotrim-olybdate(VI)-water(12)K4[Mo3O7(O2)4] ·2H2O[J]. Journal of Alloys and Compounds, 1996, 237(1-2): 39-44. DOI:10.1016/ 0925-8388(95)02183-3 [22] PERSDOTTER I, TRYSBERG L, STOMBERG R, et al. Studies on peroxomolybdates. XII. the crystal structure of ammonium dodecaperoxodecamolybdate(VI)-water(1/16),(NH4)8[Mo10O22(O2)12] ·16H2O[J]. Acta Chemica Scandinavica, 1986, 40a: 83-90. DOI:10.3891/ acta.chem.scand.40a-0083. [23] CHEN Q L, ZHOU Z H. Unusual formations of superoxo heptaoxomolybdates from peroxo molybdates[J]. Inorganic Chemistry Communications, 2016, 67: 95-98. DOI:10.1016/ j.inoche.2016.03.015. [24] DEVI T, LEE Y M, JUNG J, et al. A chromium(Ⅲ)-superoxo complex as a three-electron oxidant with a large tunneling effect in multi-electron oxidation of NADH analogues[J]. Angewandte Chemie International Edition, 2017, 56(13): 3510-3515. DOI:10.1002/ anie.201611709. [25] LIN Y H, CRAMER H H, VAN GASTEL M, et al. Mononuclear manganese(Ⅲ)superoxo complexes: synthesis, characterization, and reactivity[J]. Inorganic Chemistry, 2019, 58(15): 9756-9765. DOI:10.1021/ acs.inorgchem.9b00767. [26] ANNESER M R, HASLINGER S, PÖTHIG A, et al. Binding of molecular oxygen by an artificial heme analogue: investigation on the formation of an Fe-tetracarbene superoxo complex[J]. Dalton Transactions, 2016, 45(15): 6449-6455. DOI:10.1039/ c6dt00538a. [27] MCNEECE A J, JESSE K A, XIE J, et al. Generation and oxidative reactivity of a Ni(II)superoxo complex via ligand-based redox non-innocence[J]. Journal of the American Chemical Society, 2020, 142(24): 10824-10832. DOI:10.1021/ jacs.0c03244. [28] SHELDRICK G M. SHELX-97, program for X-ray crystal structure solution[M]. Germany: University of Göttingen, 1997. ( |