[1] Tong H,Ouyang S X,Bi Y P,et al. Nano-photocatalytic materials possibilities and challenge[J]. Advanced Material,2012,24(2):229-251.[2] Yu C L,Yang K,Xie Y,et al. Novel hollow Pt-ZnO nano-composite microspheres with hierarchical structure and enhanced photocatalytic activity and stability[J]. Nanoscale,2013,5:2142-2151.[3] 余长林,杨凯. 异质结构的复合光催化材料的研究新进展[J]. 有色金属科学与工程,2010,1(2):16-21.[4] Yu H G,Irie H,Hashimoto K. Conduction band energy level control of titanium dioxide toward an efficient visible-light-sensitive photocatalyst[J]. Journal of the American Chemical Society,2010,132:6898-6899.[5] Wang G M,Yang X Y,Qian F,et al. Double-sided CdS and CdSe quantum dot co-sensitized ZnO nanowire arrays for photoelectrochemical hydrogen generation[J]. Nano Letters,2010,10:1088-1092.[6] 王欢,崔文权,韩炳旭,等. Ag/AgX(X=Cl,Br,I)等离子共振光催化剂的研究进展[J]. 化工进展,2013,32(2):346-351.[7] Yu C L,Wei L F,Li X,et al. Synthesis and characterization of Ag/TiO2-B nanosquares with high photocatalytic activity under visible light irradiation[J]. Materials Science and Engineering:B,2013,178:344-348.[8] 王跃. 银基微纳米半导体光催化应用研究进展[J]. 化学研究,2013,24(1):92-103.[9] 尹莉,陈德良,李涛,等. 贵金属/WO3 复合纳米晶的气敏与光催化研究进展[J]. 化工进展,2012,31(1):133-143.[10] Kuai L,Geng B,Chen X,et al. Facile subsequently light-induced route to highly efficient and stable sunlight-driven Ag/AgBr plasmonic photocatalyst[J]. Langmuir,2010,26(24):18723-18727.[11] Kato H,Kobayashi H,Kudo A. Role of Ag+ in the band structures and photocatalytic properties of AgMO3 (M:Ta and Nb) with the perovskite structure[J]. Journal of Physical Chemistry B,2002,106:12441-12447.[12] Wang X F,Li S F,Yu H G,et al. Ag2O as a new visible-light photocatalyst:Self-stability and high photocatalytic activity[J]. Chemistry:A European Journal,2011,17:7777-7780.[13] Wang P,Huang B B,Qin X Y,et al. Ag/AgCl:A highly efficient and stable photocatalyst active under visible light[J]. Angewandte Chemic:International Edition,2008,47(41):7931-7933.[14] Wang P,Huang B B,Zhang X Y,et al. Highly efficient visible-light plasmonic photocatalyst Ag/AgBr[J]. Chemistry:A European Journal,2009,15(8):1821-1824.[15] Wang P,Huang B B,Zhang Q,et al. Highly efficient visible light plasmonic photocatalyst Ag/Ag(Br,I)[J]. Chemistry:A European Journal,2010,16(33):10042-10047.[16] Wang D,Duan Y,Luo Q,et al. Visible light photocatalytic activities of plasmonic Ag/AgBr particles synthesized by a double jet method[J]. Desalination,2011,270:174-180.[17] Choi M,Shin K H,Jang J. Plasmonic photocatalytic system using silver chloride/silver nanostructures under visible light[J]. Journal of Colloid and interface Science,2010,341(1):83-87.[18] Bi Y P,Ye J H. In situ oxidation synthesis of Ag/AgCl core-shell nanowires and their photocatalytic properties[J]. Chemical Communications,2009,43:6551-6553.[19] Bi Y P,Ye J H. Heteroepitaxial growth of platinum nanocrystals on AgCl nanotubes via galvanic replacement reaction[J]. Chemical Communications,2010,46(9):1532-1534.[20] Li Y Y,Ding Y. Porous AgCl/Ag nanocomposites with enhanced visible light photocatalytic properties[J]. Journal of Physical Chemistry C,2010,114(7):3175-3179.[21] Yu J Q,Dai G P,Huang B B. Fabrication and characterization of visible-light-driven plasmonic photocatalyst Ag/AgCl/TiO2 nanotube arrays[J]. Journal of Physical Chemistry C,2009,113(37):16394-16401.[22] Zhou X E,Hu C,Hu X X,et al. Plasmon·assisted degradation of toxic pollutants with Ag-AgBr/Al2O3 under visible-light irradiation[J]. Journal of Physical Chemistry C,2010,114(6):2746-2750.[23] Hu C,Peng T W,Hu X X,et al. Plasmon-induced photodegradation of toxic pollutants with Ag-AgI/Al2O3 under visible-light irradiation[J]. Journal of the American Chemical Society,2010,132(2):857-862.[24] Sun Y G. Conversion of Ag nanowires to AgCl nanowires decorated with Au nanoparticles and their photocatalytic activity[J]. Journal of Physical Chemistry C,2010,114(5):2127-2133.[25] Wang E,Huang B,Lou Z,et al. Synthesis of highly efficient Ag/AgCl plasmonic photocatalysts with various structures[J]. Chemistry:A European Journal,2010,16(2):538-544.[26] Ouyang S X,Zang H T,Li D F,et al. Electronic structure and photocatalytic characterization of a novel photocatalyst AgAlO2[J]. Journal of Physical Chemistry B,2006,110:11677-11682.[27] Ouyang S X,Kikugawa N,Chen D,et al. A systematical study on photocatalytic properties of AgMO2(M-AI,Ga,In):Effects of chemical compositions,crystal structures,and electronic structures[J]. Journal of Physical Chemistry C,2009,113:1560-1566.[28] Kako T,Ye J H. Synergistic effect of different phase on the photocatalytic activity of visible light sensitive silver antimonates[J]. Journal of Molecular Catalysis A,2010,320:79-84.[29] Kato H,Kobayashi H,Kudo A. Role of Ag+ in the band structures and photocatalytic properties of AgMO3(M:Ta and Nb)with the perovskite structure[J]. Journal of Physical Chemistry B,2002,106:12441-12447.[30] Ouyang S X,Kikugawa N,Zou Z G,et al. Effective decolorizations and mineralizations of organic dyes over a silver germanium oxide photocatalyst under indoor-illumination irradiation[J]. Applied Catalysis A,2009,366:309-314.[31] Ouyang S X,Li Z S,Ouyang Z,et al. Correlation of crystal structures,electronic structures,and photocatalytic properties in a series of Ag-based oxides:AgAlO2,AgCrO2,and AgCrO4[J]. Journal of Physical Chemistry C,2008,112:3134-3141.[32] Yi Z G,Ye J H,Kikugawan N,et al. An orthophosphate semiconductor with photooxidation properties under visible-light irradiation[J]. Nature Material,2010,9:559-564.[33] Bi Y P,Ouyang S X,Umezawan N,et al. Facet effect of single crystalline Ag3PO4 sub-microcrystals on photocatalytic properties[J]. Journal of the American Chemical Society,2011,133:6490-6492.[34] Bi Y P,Ouyang S X,Cao J,et al. Facile synthesis of rhombic dodecahedral AgX/Ag3PO4(X = Cl,Br,I) heterocrystals with enhanced photocatalytic properties and stabilities[J]. Physical Chemistry Chemical Physics,2011,13(21):10071-10075.[35] Yu C L,Zhou W Q,Yu J C,et al. Design and fabrication of hetero junction photocatalysts for energy conversion and pollutant degradation[J]. Chinese Journal of Catalysis,2014,35(10):1609-1618.[36] Yu C L,Li G,Kumar S,et al. Phase transformation synthesis of novel Ag2O/Ag2CO3 heterostructures with high visible light efficiency in photocatalytic degradation of pollutants[J]. Advanced Materials,2014,26:892-898.[37] Yao W,Zhang B,Huang C,et al. Synthesis and characterization of high efficiency and stable Ag3PO4/TiO2 visible light photocatalyst for the degradation of methylene blue and rhodamine B solutions[J]. Journal of Materials Chemistry,2012,22(9):4050-4055.[38] Yu C L,Wei L F,Chen J C,et al. Enhancing the photocatalytic performance of commercial TiO2 crystals by coupling with trace narrow-band-gap Ag2CO3[J]. Industrial and Engineering Chemistry Research,2014,53:5759-5766.[39] Hu C,Lan Y,Qu J,et al. Ag/AgBr/TiO2 visible light photocatalyst for destruction of azodyes and bacteria[J]. Journal of Physical Chemistry B,2006,110:4066-4072.[40] Wang P,Huang B,Qin X,et al. Ag/AgBr/WO3·3H2O:Visible-light photocatalyst for bacteria destruction[J]. Inorganic Chemistry,2009,48:10697-10702.[41] Ouyang S X,Ye J H. β-AgAl1-xGaxO2 solid-solution photocatalysts continuous modulation of electronic structure toward high-performance visible-light photoactivity[J]. Journal of the American Chemical Society,2011,133:7757-7763.[42] Tsuji I,Kato H,Kobayashi H. Photocatalytic H2 evolution reaction from aqueous solutions over hand structure-controlled (AgIn)xZn2(1-x)S2 solid solution photocatalysts with visible-light response and their surface nanostructures[J]. Journal of the American Chemical Society,2004,126:13406-13413.[43] Wang D,Kako T,Ye J. New series of solid-solution semiconductors (AgNbO3)1-x(SrTiO3)x with modulated band structure and enhanced visible-light photocatalytic activity[J]. The Journal of Physical Chemistry C,2009,113(9):3785-3792. [44] Li G Q,Wang D F,Zou Z G,et al. Enhancement of visible-light photocatalytic activity of Ag0.7Na0.3NbO3 modified by a platinum complex[J]. Journal of Physical Chemistry C,2008,112:20329-20333.[45] An C,Peng S,Sun Y. Facile synthesis of sunlight-driven AgCl:Ag plasmonic nanophotocatalyst[J]. Advanced Materials,2010,22(23):2570-2574.[46] Elahifard M R,Rahimnejad S,Haghighi S,et al. Apatite-coated Ag/AgBr/TiO2[J]. Journal of the American Chemical Society,2007,129(31):9552-9553.[47] Zhu M,Chen P,Liu M. Ag/AgBr/graphene oxide nanocomposite synthesized via oil/water and water/oil microemulsions:A comparison of sunlight energized plasmonicp hotocatalytic activity[J]. Langmuir,2012,28(7):3385-3390.[48] Xu Y,Zhang W. Monodispersed Ag3PO4 nanocrystals loaded on the surface of spherical Bi2MoO6 with enhanced photocatalytic performance[J]. Dalton Transactions,2012,42(4):1094-1101. |