综述了石墨烯基纳米复合材料在光解水产氢中的原理、研究现状,包括石墨烯基衍生物氧化石墨在光解水中的应用,石墨烯基二元复合材料在光解水中的应用以及石墨烯基三元复合材料在光解水方面的应用等,最后分析了石墨烯基纳米复合材料的研究和开发所面临的问题以及发展趋势.
参考文献
[1] | Xiang Q;Yu J;Jaroniec M .Graphene-based semiconductor photocatalysts-A review[J].CHEMICAL SOCIETY REVIEWS,2012,41:782. |
[2] | Xiang Q;Yu J .Graphene-based photocatalysts for hydrogen generation-A review[J].J Phys Chem Lett,2013,4:753. |
[3] | Fujishima A;Honda K .Electrochemical photolysis of water at a semiconductor electrode[J].NATURE,1972,238:7. |
[4] | Geim AK;Novoselov KS .The rise of graphene[J].Nature materials,2007(3):183-191. |
[5] | Geim A K .Graphene:Status and prospects-A review[J].SCIENCE,2009,324:1530. |
[6] | Zhu, S.;Li, J.;Chen, Y.;Chen, Z.;Chen, C.;Li, Y.;Cui, Z.;Zhang, D. .Grafting of graphene oxide with stimuli-responsive polymers by using ATRP for drug release[J].Journal of nanoparticle research: An interdisciplinary forum for nanoscale science and technology,2012(9):1132-1-1132-11. |
[7] | Zhu S;Zhu C;Ma J et al.Controlled fabrication of Si nanoparticles on graphene sheets for Li-ion batteries[J].RSC Adv,2013,3:6141. |
[8] | Guo, J.;Zhu, S.;Chen, Z.;Li, Y.;Yu, Z.;Liu, Q.;Li, J.;Feng, C.;Zhang, D. .Sonochemical synthesis of TiO_2 nanoparticles on graphene for use as photocatalyst[J].Ultrasonics sonochemistry,2011(5):1082-1090. |
[9] | Guo J;Li Y;Zhu S et al.Synthesis of WO3@graphene composite for enhanced photocatalytic oxygen evolution from water[J].RSC Adv,2012,2:1356. |
[10] | Zhang, Y.;Zhang, N.;Tang, Z.-R.;Xu, Y.-J. .Graphene transforms wide band gap ZnS to a visible light photocatalyst. the new role of graphene as a macromolecular photosensitizer[J].ACS nano,2012(11):9777-9789. |
[11] | Kato H;Hori M;Konta R;Shimodaira Y;Kudo A .Construction of Z-scheme type heterogeneous photocatalysis systems for water splitting into H-2 and O-2 under visible light irradiation[J].Chemistry Letters,2004(10):1348-1349. |
[12] | Chen, C.;Cai, W.;Long, M.;Zhou, B.;Wu, Y.;Wu, D.;Feng, Y. .Synthesis of visible-light responsive graphene oxide/TiO_2 composites with p/n heterojunction[J].ACS nano,2010(11):6425-6432. |
[13] | Leary R;Westwood A .Carbonaceous nanomaterials for the enhancement of TiO2 photocatalysis-A review[J].CARBON,2011,49:741. |
[14] | Michael R. Hoffmann;Scot T. Martin;Wonyong Choi;Detlef W. Bahnemann .Environmental Applications of Semiconductor Photocatalysis[J].Chemical Reviews,1995(1):69-96. |
[15] | Shixiong Min;Gongxuan Lu .Enhanced Electron Transfer from the Excited Eosin Y to mpg-C3N4 for Highly Efficient Hydrogen Evolution under 550 nm Irradiation[J].The journal of physical chemistry, C. Nanomaterials and interfaces,2012(37):19644-19652. |
[16] | Kudo A;Miseki Y .Heterogeneous photocatalyst materials for water splitting-A review[J].CHEMICAL SOCIETY REVIEWS,2009,38:253. |
[17] | An X;Yu J C .Graphene-based photocatalytic composites-A review[J].RSC Adv,2011,1:1426. |
[18] | Zhang, H.;Lv, X.;Li, Y.;Wang, Y.;Li, J. .P25-graphene composite as a high performance photocatalyst[J].ACS nano,2010(1):380-386. |
[19] | Zhang X Y;Li H P;Cui X L et al.Graphene/TiO2 nanocomposites:Synthesis,characterization and application in hydrogen evolution from water photocatalytic splitting[J].Journal of Materials Chemistry,2010,20:2801. |
[20] | Zhang LW;Fu HB;Zhang C;Zhu YF .Synthesis, characterization, and photocatalytic properties of InVO4 nanoparticles[J].International Journal of Quantum Chemistry,2006(3):804-811. |
[21] | Zhang Y P;XuJ J;Sun Z H et al.Preparation of graphene and TiO2 layer by layer composite with highly photocatalytic efficiency[J].Prog Nat Sci:Mater Int,2011,21:467. |
[22] | Iwase, A.;Ng, Y.H.;Ishiguro, Y.;Kudo, A.;Amal, R. .Reduced graphene oxide as a solid-state electron mediator in Z-scheme photocatalytic water splitting under visible light[J].Journal of the American Chemical Society,2011(29):11054-11057. |
[23] | Yeh T F;Syu J M;Cheng C et al.Graphite oxide as a photocatalyst for hydrogen production from water[J].Advanced Functional Materials,2010,20:2255. |
[24] | Yeh T F;Chan F F;Hsieh C T et al.Graphite oxide with different oxygenated levels for hydrogen and oxygen production from water under illumination:The band positions of graphite oxide[J].J Phys Chem C,2011,115:22587. |
[25] | Yeh T F;Chen S J;Yeh C S et al.Tuning the electronic structure of graphite oxide through ammonia treatment for photocatalytic generation of H2 and O2 from water splitting[J].J Phys Chem C,2013,117:6516. |
[26] | Tran P D;Batabyal S K;Pramana S S et al.A cuprous oxide-reduced graphene oxide (Cu2 O-rO) composite photocatalyst for hydrogen generation:Employing rG0 as an electron acceptor to enhance the photocatalytic activity and stability of Cu2 O[J].Nanoscale,2012,4:3875. |
[27] | Zhang X;Sun Y;Cui X et al.A green and facile synthesis of TiO2/graphene nanocomposites and their photocatalytic activity for hydrogen evolution[J].International Journal of Hydrogen Energy,2012,37:811. |
[28] | Cheng P;Yang Z;Wang H et al.TiO2-graphene nanocomposites for photocatalytic hydrogen production from splitting water[J].International Journal of Hydrogen Energy,2012,37:2224. |
[29] | One-Step Solvothermal Synthesis of a Carbon@TiO_2 Dyade Structure Effectively Promoting Visible-Light Photocatalysis[J].Advanced Materials,2010(30):3317-321,3224. |
[30] | Fan W;Lai Q;Zhang Q et al.Nanocomposites of TiO2 and reduced graphene oxide as efficient photocatalysts for hydrogen evolution[J].J Phys Chem C,2011,115:10694. |
[31] | Li N;Liu G;Zhen C et al.Battery performance and photocatalytic activity of mesoporous anatase TiO2 nanospheres/graphene composites by template-free self-assembly[J].Advanced Functional Materials,2011,21:1717. |
[32] | Zhang J;Yu J;Jaroniec M et al.Noble metal-free reduced graphene oxide-ZnxCd1-xS nanocomposite with enhanced solar photocatalytic H2-production performance[J].Nano Letters,2012,12:4584. |
[33] | Ye A;Fan W;Zhang Q et al.CdS-graphene and CdS-CNT nanocomposites as visible-light photocatalysts for hydrogen evolution and organic dye degradation[J].Catal Sci Techn,2012,2:969. |
[34] | Zeng P;Zhang Q;Peng T et al.One-pot synthesis of reduced graphene oxide-cadmium sulfide nanocomposite and its photocatalytic hydrogen production[J].Physical Chemistry Chemical Physics,2011,13:21496. |
[35] | Li, Q.;Guo, B.;Yu, J.;Ran, J.;Zhang, B.;Yan, H.;Gong, J.R. .Highly efficient visible-light-driven photocatalytic hydrogen production of CdS-cluster-decorated graphene nanosheets[J].Journal of the American Chemical Society,2011(28):10878-10884. |
[36] | Shixiong Min;Gongxuan Lu .Sites for High Efficient Photocatalytic Hydrogen Evolution on a Limited-Layered MoS2 Cocatalyst Confined on Graphene Sheets-The Role of Graphene[J].The journal of physical chemistry, C. Nanomaterials and interfaces,2012(48):25415-25424. |
[37] | Xiang Q;Yu J;Jaroniec M .Preparation and enhanced visible-light photocatalytic H2-production activity of graphene/C3 N4 composites[J].J Phys Chem C,2011,115:7355. |
[38] | Xiang, Q.;Yu, J.;Jaroniec, M. .Synergetic effect of MoS _2 and graphene as cocatalysts for enhanced photocatalytic H _2 production activity of TiO _2 nanoparticles[J].Journal of the American Chemical Society,2012(15):6575-6578. |
[39] | Mou Z;Yin S;Zhu M et al.RuO2/TiSi2/graphene composite for enhanced photocatalytic hydrogen generation under visible light irradiation[J].Physical Chemistry Chemical Physics,2013,15:2793. |
[40] | Agegnehu A K;Pan C J;Rick J et al.Enhanced hydrogen generation by cocatalytic Ni and NiO nanoparticles loaded on graphene oxide sheets[J].Journal of Materials Chemistry,2012,22:13849. |
[41] | Lv X J;Zhou S X;Zhang C et al.Synergetic effect of Cu and graphene as cocatalyst on TiO2 for enhanced photocatalytic hydrogen evolution from solar water splitting[J].Journal of Materials Chemistry,2012,22:18542. |
[42] | Gao P;Liu J;Lee S et al.High quality graphene oxide-CdS-Pt nanocomposites for efficient photocatalytic hydrogen evolution[J].Journal of Materials Chemistry,2012,22:2292. |
[43] | Zhang N;Zhang Y;Pan X et al.Constructing ternary CdS-graphene-TiO2 hybrids on the flatland of graphene oxide with enhanced visible-light photoactivity for selective transformation[J].J Phys Chem C,2012,116:18023. |
[44] | Hou J;Wang Z;Kan W et al.Efficient visible-light-driven photocatalytic hydrogen production using CdS@TaON coreshell composites coupled with graphene oxide nanosheets[J].Journal of Materials Chemistry,2012,22:7291. |
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