[1] Irizarry R,Burwell L,Leon M S. Preparation and Formation Mechanism of Silver Particles with Spherical Open Structures[J]. J Chem Educ,2011,50(13):8023-8033. [2] Liu Z,Qi X L,Wang H. Synthesis and Characterization of Spherical and Mono-Disperse Micro-Silver Powder Used for Silicon Solar Cell Electronic Paste[J]. Mater Lett,2012,23(2):250-255. [3] Henrika G,Juha L,Saima A,et al. Control of the Size of Silver Nanoparticles and Release of Silver in Heat Treated SiO2-Ag Composite Powders[J]. Mater,2018,11(1):80-91. [4] TIAN Qinghua,DENG Duo,LI Yu,et al. Preparation of Ultrafine Silver Powders with Controllable Size and Morphology[J]. Trans Nonferrous Met Soc China,2018,28(3):524-533(in Chinese). 田青华,邓多,李玉,等. 制备尺寸和形貌可控的超细银粉[J]. 中国有色金属学报,2018,28(3):524-533. [5] YAO Suwei,CAO Yan,ZHANG Weiguo. Preparation of Silver Nanoparticles with Different Morphology and Their Formation Mechanism by Photoreduction[J]. Chinese J Appl Chem,2006,23(4):438-440(in Chinese). 姚素薇,曹艳,张卫国. 光还原法制备不同形貌银纳米粒子及其形成机理[J]. 应用化学,2006,23(4):438-440. [6] Kowalski K,Jurczyk M U,Wirstlein P K,et al. Properties of Ultrafine-Grained Mg-Based composites Modified by Addition of Silver and Hydroxyapatite[J]. Mater Sci Technol,2018,34:1096-1103. [7] Fu M,Li H Y,Wang Y,et al. Study on the Synthesis and Performances of Ultrafine Silver Powder Used as Silicon Solar Cell Front Silver Contacts[J]. Mater Sci Forum,2016,52:378-384. [8] Meng S Y,Wu H B,Wu S P,et al. Preparation of Ultrafine Silver Powder and Its Electrical Properties[J]. Mater,2004,23(7):35-37. [9] WEI Lili,XU Shengming,XU Gang,et al. Effect of Surfactant on Dispersion of Ultrafine Silver Powder[J]. Trans Nonferrous Met Soc China,2009,19(3):595-600(in Chinese). 魏丽丽,徐盛明,徐刚,等. 表面活性剂对超细银粉分散性能的影响[J]. 中国有色金属学报,2009,19(3):595-600. [10] Guo G,Gan W,Luo J,et al. Preparation and Dispersive Mechanism of Highly Dispersive Ultrafine Silver Powder[J]. Appl Surf Sci,2010,256(22):6683-6687. [11] Motlak M,Barakat N A M,Akhtar M S,et al. Influence of GO Incorporation in TiO2 Nanofibers on the Electrode Efficiency in Dye-Sensitized Solar Cells[J]. Ceram Int,2015,41(1):1205-1212. [12] MENG Xianwen,SONG Xiao,LIU Suqin,et al. Preparation of Ag3VO4/GO Composite and Its Visible Light Catalytic Performance[J]. Chinese J Appl Chem,2016,33(12):1441-1447(in Chinese). 孟献文,宋肖,刘素芹,等. 钒酸银/氧化石墨烯复合物的制备和可见光催化性能[J]. 应用化学,2016,33(12):1441-1447. [13] LAN Feng,MA Shenghua,WANG Hui. Applications of Graphene in Solar Cells[J]. Knowl Mod Phys,2018,1(4):6-9(in Chinese). 兰峰,马生华,王惠. 石墨烯在太阳能电池中的应用[J]. 现代物理知识,2018,1(4):6-9. [14] WANG Lihui,SHI Haixin,YIN Yanzhen. Ag-Doped Graphene-Coated Solar Cell Front Electrode Silver Paste and Preparation Method:CN,201711206932[P]. 2018-04-20(in Chinese). 王立惠,石海信,尹艳镇. 掺杂银包覆石墨烯的太阳能电池正面电极银浆及制备方法:中国,201711206932[P]. 2018-04-20. [15] Bakhshizadeh N,Sivoththaman S. Graphene-Decorated Nanocomposites for Printable Electrodes in Thin Wafer Devices[J]. Electron Mater,2017,46(12):6922-6929. [16] Ge R Y,Wang X Y,Zhang C,et al. The Influence of Combination Mode on the Structure and Properties of Porphyrin-Graphene Oxide Composites[J]. Colloids Surf A,2015,483:45-52. [17] Li G,Feng W,Zhang X,et al. Facile Preparation of Nanoporous Ag Decorated with CeO2 Nanoparticles for Surface-Enhanced Raman Scattering[J]. J Mater Res,2019,34(12):1-11. [18] Xia X H,Zeng J,Li Q G,et al. Silver Nanocrystals with Concave Surfaces and Their Optical and Surface-Enhanced Raman Scattering Properties[J]. Angew Chem,2011,123(52):12750-12754. [19] Jiang J,Zhu L,Zou J,et al. Micro/nano-Structured Graphitic Carbon Nitride-Ag Nanoparticle Hybrids as Surface-Enhanced Raman Scattering Substrates with Much Improved Long-Term Stability[J]. Carbon,2015,87:193-205. [20] Chao Y X,Yang H W,Li Y X,et al. Rapid Synthesis of Irregular Sub-Micron Flaky Silver with High Flake-Particle Ratio:Application to Silver Paste[J]. Chem Phys Lett,2018,708:183-187. [21] Florent P,Clement A R,Miriam C,et al. Plasmonic Nanocomposites Based on Silver Nanocube-Polymer Blends Displaying Nearly Perfect Absorption in the UV Region[J]. Langmuir,2019,35(6):2179-2187. [22] Novoselov K S,Geim A K,Morozov S V,et al. Electric Field Effect in Atomically Thin Carbon Films[J]. Science,2004,306(5696):666-669. [23] Cittadini M,Bersani M,Perrozzi F,et al. Graphene Oxide Coupled with Gold Nanoparticles for Localized Surface Plasmon Resonance Based Gas Sensor[J]. Carbon,2014,69:452-459. [24] Ma Y F,Yang L L,Yang Y,et al. Multifunctional Ag-Decorated g-C3N4 Nanosheets as Recyclable SERS Substrates for CV and RhB Detection[J]. RSC Adv,2018,8(39):22095-22102. [25] Akbari E,Akbari I,Ebrahimi M R. sp2/sp3 Bonding Ratio Dependence of the Band-Gap in Graphene Oxide[J]. Eur Phys J B,2019,92(4):22095-22102. [26] Romano V,Torrisi L,Cutroneo M,et al. Raman Investigation of Laser-Induced Structural Defects of Graphite Oxide Films[J]. EPJ Web Confer,2018,167:1-4. [27] Zhuang B,Li X Q,Ge R Y,et al. Assembly and Electron Transfer Mechanisms on Visible Light Responsive 5,10,15,20-Meso-Tetra(4-Carboxyphenyl) Porphyrin/Cuprous Oxide Composite for Photocatalytic Hydrogen Production[J]. Appl Catal A,2017,533:81-89. [28] Tu W,Lei J,Wang P,et al. Photoelectrochemistry of Free-Base-Porphyrin-Functionalized Zinc Oxide Nanoparticles and Their Applications in Biosensing[J]. Chemistry,2011,17(34):9440-9447. |