参考文献/References:
[1]ZHANG J, GRZELCZAK M, HOU Y, et al. Photocatalytic oxidation of water by polymeric carbon nitride nanohybrids made of sustainable elements [J]. Chemical Science, 2012, 3: 443-443.
[2]SU F, MATHEW S C, M HLMANN L, et al. Aerobic oxidative coupling of amines by carbon nitride photocatalysis with visible light [J]. Angewandte Chemie International Edition, 2011, 50: 657-660.
[3]SU F, MATHEW S C, LIPNER G, et al. mpg-C3N4-Catalyzed selective oxidation of alcohols using O2 and visible light [J]. Journal of the American Chemical Society, 2010, 132: 16299-16301.
[4]ANSARI M B, MIN B-H, MO Y-H, et al. CO2 activation and promotional effect in the oxidation of cyclic olefins over mesoporous carbon nitrides [J]. Green Chemistry, 2011, 13: 1416-1421.
[5]GOETTMANN F, FISCHER A, ANTONIETTI M, et al. Chemical synthesis of mesoporous carbon nitrides using hard templates and their use as a metal-free catalyst for Friedel-Crafts reaction of benzene [J]. Angewandte Chemie International Edition, 2006, 45: 4467-4471.
[6]XU J, CHEN T, JIANG Q, et al. Utilization of environmentally benign dicyandiamide as a precursor for the synthesis of ordered mesoporous carbon nitride and its application in base-catalyzed reactions [J]. Chemistry-An Asian Journal, 2014, 9: 3269-3277.
[7]LIU G, TANG R, WANG Z. Metal-free allylic oxidation with molecular oxygen catalyzed by g-C3N4 and N-hydroxyphthalimide [J]. Catalysis Letters, 2014, 144: 717-722.
[8]ZHENG Y, LIU J, LIANG J, et al. Graphitic carbon nitride materials: controllable synthesis and applications in fuel cells and photocatalysis [J]. Energy & Environmental Science, 2012, 5: 6717-6731.
[9]LAKHI K S, CHA W S, JOSEPH S, et al. Cage type mesoporous carbon nitride with large mesopores for CO2 capture [J]. Catalysis Today, 2015, 243: 209-217.
[10]LI Q, YANG J, FENG D, et al. Facile synthesis of porous carbon nitride spheres with hierarchical three-dimensional mesostructures for CO2 capture [J]. Nano Research, 2010, 3: 632-642.
[11]JIN X, BALASUBRAMANIAN V V, SELVAN S T, et al. Highly ordered mesoporous carbon nitride nanoparticles with high nitrogen content: a metal-free basic catalyst [J]. Angewandte Chemie International Edition, 2009, 48: 7884-7887.
[12]XU J, WU H-T, WANG X, et al. A new and environmentally benign precursor for the synthesis of mesoporous g-C3N4 with tunable surface area [J]. Physical Chemistry Chemical Physics, 2013, 15: 4510-4517.
[13]THOMAS A, FISCHER A, GOETTMANN F, et al. Graphitic carbon nitride materials: variation of structure and morphology and their use as metal-free catalysts [J]. Journal of Materials Chemistry, 2008, 18: 4893-4908.
[14]XU J, SHEN K, XUE B, et al. Synthesis of three-dimensional mesostructured graphitic carbon nitride materials and their application as heterogeneous catalysts for Knoevenagel condensation reactions [J]. Catalysis Letters, 2013, 143: 600-609.
[15]KROKE E, SCHWARZ M. Novel group 14 nitrides [J]. Coordination Chemistry Reviews, 2004, 248: 493-532.
[16]SU Q, SUN J, WANG J, et al. Urea-derived graphitic carbon nitride as an efficient heterogeneous catalyst for CO2 conversion into cyclic carbonates [J]. Catalysis Science & Technology, 2014, 4: 1556-1562.
[17]XU J, WU F, JIANG Q, et al. Metal halides supported on mesoporous carbon nitride as efficient heterogeneous catalysts for the cycloaddition of CO2 [J]. Journal Of Molecular Catalysis A: Chemical, 2015, 403: 77-83.
[18]XU J, WU F, WU H-T, et al. Three-dimensional ordered mesoporous carbon nitride with large mesopores: synthesis and application towards base catalysis [J]. Microporous & Mesoporous Materials, 2014, 198: 223-229.
[19]ZHANG L, WANG H, QIN Z, et al. Synthesis of two-dimensional mesoporous carbon nitride under different carbonization temperatures and investigation of its catalytic properties in Knoevenagel condensations [J]. RSC Advances, 2015, 5: 22838-22846.
[20]TALAPANENI S N, ANANDAN S, MANE G P, et al. Facile synthesis and basic catalytic application of 3D mesoporous carbon nitride with a controllable bimodal distribution [J]. Journal of Materials Chemistry, 2012, 22: 9831-9840.
[21]DATTA K K R, REDDY B V S, ARIGA K, et al. Gold nanoparticles embedded in a mesoporous carbon nitride stabilizer for highly efficient three-component coupling reaction [J]. Angewandte Chemie International Edition, 2010, 49: 5961-5965.
[22]LI Y, XU X, ZHANG P, et al. Highly selective Pd@mpg-C3N4 catalyst for phenol hydrogenation in aqueous phase [J]. RSC Advances, 2013, 3: 10973-10982.
[23]GONG Y, ZHANG P, XU X, et al. A novel catalyst Pd@ompg-C3N4 for highly chemoselective hydrogenation of quinoline under mild conditions [J]. Journal of Catalysis, 2013, 297: 272-280.
[24]XU J, JIANG Q, CHEN T, et al. Vanadia supported on mesoporous carbon nitride as a highly efficient catalyst for hydroxylation of benzene to phenol [J]. Catalysis Science & Technology, 2015, 5: 1504-1513.
[25]ZHAO D, SUN J, LI Q, et al. Morphological control of highly ordered mesoporous silica SBA-15 [J]. Chemistry of Materials, 2000, 12: 275-279.
[26]PARAKNOWITSCH J P, THOMAS A, ANTONIETTI M. A detailed view on the polycondensation of ionic liquid monomers towards nitrogen doped carbon materials [J]. Journal of Materials Chemistry, 2010, 20: 6746-6758.
[27]FRANK B, DINSE A, OVSITSER O, et al. Mass and heat transfer effects on the oxidative dehydrogenation of propane(ODP)over a low loaded VOx/Al2O3 catalyst [J]. Applied Catalysis A: General, 2007, 323: 66-76.
[28]BOJDYS M J, M LLER J-O, ANTONIETTI M, et al. Ionothermal synthesis of crystalline, condensed, graphitic carbon nitride [J]. Chemistry-A European Journal, 2008, 14: 8177-8182.
[29]KRISTENSEN S B, KUNOV-KRUSE A J, RIISAGER A, et al. High performance vanadia-anatase nanoparticle catalysts for the selective catalytic reduction of NO by ammonia [J]. Journal of Catalysis, 2011, 284: 60-67.
[30]XU J, CHEN M, LIU Y-M, et al. Vanadia supported on H2O2-detemplated mesoporous SBA-15 as new effective catalysts for the oxidative dehydrogenation of propane [J]. Microporous and Mesoporous Materials, 2009, 118: 354-360.
[31]KANG L, XIE L, CHEN Z, et al. Asymmetrically modulating the insulator-metal transition of thermochromic VO2 films upon heating and cooling by mild surface-etching [J]. Applied Surface Science, 2014, 311: 676-683.
[32]CAVANI F, TRIFIRO F. Some aspects that affect the selective oxidation of paraffins [J]. Catalysis Today, 1997, 36: 431-439.
[33]SUN Z, LI G, ZHANG Y, et al. Ag-Cu-BTC prepared by postsynthetic exchange as effective catalyst for selective oxidation of toluene to benzaldehyde [J]. Catalysis Communications, 2015, 59: 92-96.
[34]WANG T, SHOU H, KOU Y, et al. Base-free aqueous-phase oxidation of non-activated alcohols with molecular oxygen on soluble Pt nanoparticles [J]. Green Chemistry, 2009, 11:562-568.
[35]BESSON M, GALLEZOT P. Selective oxidation of alcohols and aldehydes on metal catalysts [J]. Catalysis Today, 2000, 57: 127-141.
[36]ZHU Y, DONG Y, ZHAO L, et al. Preparation and characterization of mesoporous VOx/SBA-16 and their application for the direct catalytic hydroxylation of benzene to phenol [J]. Journal of Molecular Catalysis A: Chemical, 2010, 315: 205-212.
[37]VELUSAMY S, PUNNIYAMURTHY T. Novel vanadium-catalyzed oxidation of alcohols to aldehydes and ketones under atmospheric oxygen [J]. Organic Letters, 2004, 6: 217-219.
[38]FENG T, VOHS J M. Temperature-programmed desorption study of the selective oxidation of alcohols on silica-supported vanadium oxide [J]. Journal of Physical Chemistry B, 2005, 109: 2120-2127.
[39]XU J, LIU Y-M, XUE B, et al. A hybrid sol-gel synthesis of mesostructured SiC with tunable porosity and its application as a support for propane oxidative dehydrogenation [J]. Physical Chemistry Chemical Physics, 2011, 13: 10111-10118.
[40]GRZYBOWSKA-WIERKOSZ B. Vanadia-titania catalysts for oxidation of o-xylene and other hydrocarbons [J]. Applied Catalysis A: General, 1997, 157: 263-310.
[41]HU L, WANG C, YE L, et al. Direct hydroxylation of benzene to phenol using H2O2 as an oxidant over vanadium-containing mesoporous carbon catalysts [J]. Applied Catalysis A: General, 2015, 504: 440-447.
[42]QUARANTA N E, SORIA J, CORBER N V C, et al. Selective oxidation of ethanol to acetaldehyde on V2O5/TiO2/SiO2catalysts [J]. Journal of Catalysis, 1997, 171: 1-13.
[43]LONG B, DING Z, WANG X. Carbon nitride for the selective oxidation of aromatic alcohols in water under visible light [J]. ChemSusChem, 2013, 6: 2074-2078.
[44]CHEN Y, ZHANG J, ZHANG M, et al. Molecular and textural engineering of conjugated carbon nitride catalysts for selective oxidation of alcohols with visible light [J]. Chemical Science, 2013, 4: 3244-3248.