Effect of sulfur source and temperature on the morphological characteristics and photocatalytic activity of Bi_2S_3 nanostructure synthesized by microwave irradiation technique
暂无分享,去创建一个
[1] C. Dong,et al. A review on bismuth-based nanocomposites for energy and environmental applications. , 2022, Chemosphere.
[2] K. V. Özdokur,et al. Bi2S3 nanorods decorated on bentonite nanocomposite for enhanced visible-light-driven photocatalytic performance towards degradation of organic dyes , 2021 .
[3] M. Azeez,et al. Solvothermal synthesis of pure and Sn-doped Bi2S3 and the evaluation of their photocatalytic activity on the degradation of methylene blue , 2021, BMC Chemistry.
[4] M. Selvaraj,et al. Role of surfactant in tailoring the properties of Bi2S3 nanoparticles for photocatalytic degradation of methylene blue dye , 2021, Journal of Materials Science: Materials in Electronics.
[5] Sutripto Majumder,et al. Facile fabrication of BiVO4/Bi2S3/NiCoO2 for significant photoelectrochemical water splitting , 2021, Applied Surface Science.
[6] R. Jayavel,et al. A novel visible light active rare earth doped CdS nanoparticles decorated reduced graphene oxide sheets for the degradation of cationic dye from wastewater. , 2021, Chemosphere.
[7] C. Bittencourt,et al. Bi2S3/rGO Composite Based Electrochemical Sensor for Ascorbic Acid Detection , 2021, Chemosensors.
[8] A. Asiri,et al. Rice grain like Bi2S3 nanorods and its photocatalytic performance , 2021 .
[9] V. Thakur,et al. Recent advances on water disinfection using bismuth based modified photocatalysts: Strategies and challenges , 2021 .
[10] Xiaoming Zhang,et al. Bismuth sulfide photocatalysis water treatment under visible irradiation , 2021, Research on Chemical Intermediates.
[11] S. Sudhahar,et al. Solvothermal synthesis of Bi2S3 nanoparticles for active photocatalytic and energy storage device applications , 2021, Journal of Materials Science: Materials in Electronics.
[12] T. S. Senthil,et al. Preparation of pure PbTiO3 and (Ag–Fe) codoped PbTiO3 perovskite nanoparticles and their enhanced photocatalytic activity , 2021 .
[13] D. Onwudiwe,et al. Bismuth sulfide based compounds: Properties, synthesis and applications , 2021, Results in Chemistry.
[14] Chaojun Cui,et al. Facile fabrication of bismuth sulphide microflowers for a novel type of flexible paper laser detector , 2021 .
[15] N. Nallamuthu,et al. Single-precursor synthesis of sub-10 nm CdS nanoparticles embedded on graphene sheets nanocatalyst for active photodegradation under visible light , 2020 .
[16] Bin Yuan,et al. Facile fabrication of fibrous Bi4Ti3O12/Bi2S3/MoS2 with enhanced photocatalytic activities towards pollutant degradation under visible light irradiation , 2020, Journal of Materials Science: Materials in Electronics.
[17] J. Jung,et al. Surface oxygen vacancy facilitated Z-scheme MoS2/Bi2O3 heterojunction for enhanced visible-light driven photocatalysis-pollutant degradation and hydrogen production , 2020 .
[18] F. Hamid,et al. Progressive Freeze Concentration in Removing Methylene Blue from Dye Wastewater , 2019, International Journal of Applied Science and Engineering.
[19] S. Agarwal,et al. Flower-like Bi2S3 nanostructures as highly efficient anodes for all-solid-state lithium-ion batteries , 2019, RSC advances.
[20] Jiawei Zhang,et al. Preparation and characterization of Bi2S3/3DOM-TiO2 for efficient photocatalytic degradation of rhodamine B , 2019, Materials Science in Semiconductor Processing.
[21] Minxuan Xu,et al. In situ physical examination of Bi2S3 nanowires with a microscope , 2019, Journal of Alloys and Compounds.
[22] D. Onwudiwe,et al. The heat-up synthesis of monodispersed Bi2S3 and Cu7S4 nanoparticles from novel precursor complexes and their characterizations , 2019, Materials Science in Semiconductor Processing.
[23] F. Jamali-Sheini,et al. UV-assisted sonochemical synthesis and optoelectrical properties of Bi2S3/rGO nanocomposites , 2019, Ceramics International.
[24] Shen-ming Chen,et al. Facile one-pot sonochemical synthesis of Ni doped bismuth sulphide for the electrochemical determination of promethazine hydrochloride. , 2019, Ultrasonics sonochemistry.
[25] P. C. Nagajyothi,et al. Fabrication of CdS quantum dot/Bi2S3 nanocomposite photocatalysts for enhanced H2 production under simulated solar light , 2019, Journal of Materials Science: Materials in Electronics.
[26] J. Martínez‐Pastor,et al. Enhancing the photocatalytic properties of PbS QD solids: the ligand exchange approach. , 2019, Nanoscale.
[27] N. Khare,et al. Hierarchical Bi2S3 nanoflowers: A novel photocatalyst for enhanced photocatalytic degradation of binary mixture of Rhodamine B and Methylene blue dyes and degradation of mixture of p-nitrophenol and p-chlorophenol , 2018, Advanced Powder Technology.
[28] M. Pal,et al. Bi2S3 nanoparticles by facile chemical synthesis: Role of pH on growth and physical properties , 2018, Advanced Powder Technology.
[29] N. Khare,et al. Sensitization of narrow band gap Bi2S3 hierarchical nanostructures with polyaniline for its enhanced visible-light photocatalytic performance , 2018, Colloid and Polymer Science.
[30] C. Byon,et al. Bismuth oxide cocatalyst and copper oxide sensitizer in Cu2O/TiO2/Bi2O3 ternary photocatalyst for efficient hydrogen production under solar light irradiation , 2018, Ceramics International.
[31] M. Thambidurai,et al. Solvothermal synthesis of Bi 2 S 3 nanoparticles and nanorods towards solar cell application , 2018, Materials Letters.
[32] J. Shim,et al. Sacrificial-template-free synthesis of core-shell C@Bi2S3 heterostructures for efficient supercapacitor and H2 production applications , 2018, Scientific Reports.
[33] P. S. Kumar,et al. Ce@TiO 2 nanocomposites: An efficient, stable and affordable photocatalyst for the photodegradation of diclofenac sodium , 2018 .
[34] A. Raj,et al. Reaction time dependent investigation on the properties of the Bi 2 S 3 nanoparticles: Photocatalytic application , 2018 .
[35] O. A. Castelo-González,et al. Morphology control in microwave synthesized bismuth sulfide by using different bismuth salts , 2017 .
[36] J. Shim,et al. Synthesis, characterization, and optical properties of visible light-driven Bi2S3 nanorod photocatalysts , 2017, Journal of Materials Science: Materials in Electronics.
[37] S. Harish,et al. Highly efficient visible-light photocatalytic activity of MoS2–TiO2 mixtures hybrid photocatalyst and functional properties , 2017 .
[38] K. Muralidharan,et al. Photo-responsive Bi2S3 nanoflakes: Synthesis and device fabrication at ambient conditions , 2017 .
[39] L. Garza-Tovar,et al. Ultrasonic irradiation-assisted synthesis of Bi2S3 nanoparticles in aqueous ionic liquid at ambient condition. , 2017, Ultrasonics sonochemistry.
[40] T. Pazhanivel,et al. Temperature Based Investigation on Structure and Optical Properties of Bi2S3 Nanoflowers by Solvothermal Approach , 2017 .
[41] B. Sankapal,et al. SILAR deposited Bi 2 S 3 thin film towards electrochemical supercapacitor , 2017 .
[42] Xijin Xu,et al. Capacitive and photocatalytic performance of Bi 2 S 3 nanostructures synthesized by solvothermal method , 2017 .
[43] D. Ayodhya,et al. Investigation of structural, optical, catalytic, fluorescence studies of eco-friendly synthesized Bi2S3 nanostructures , 2017 .
[44] S. A. Mayén-Hernández,et al. Purity and crystallinity of microwave synthesized antimony sulfide microrods , 2017 .
[45] Guangda Niu,et al. Low-Temperature-Processed Amorphous Bi2S3 Film as an Inorganic Electron Transport Layer for Perovskite Solar Cells , 2016 .
[46] A. Helal,et al. Controlled synthesis of bismuth sulfide nanorods by hydrothermal method and their photocatalytic activity , 2016 .
[47] Liang Yan,et al. The polyvinylpyrrolidone functionalized rGO/Bi2S3 nanocomposite as a near-infrared light-responsive nanovehicle for chemo-photothermal therapy of cancer. , 2016, Nanoscale.
[48] Yifan Jiang,et al. Synthesis and visible light responsed photocatalytic activity of Sn doped Bi2S3 microspheres assembled by nanosheets , 2016 .
[49] V. Blair,et al. Taking bismuthinite to bismuth sulfide nanorods in two easy steps. , 2016, Dalton transactions.
[50] Chunjuan Tang,et al. Synthesis and photocatalytic properties of vertically aligned Bi2S3 platelets , 2016 .
[51] K. Huo,et al. 3D Hierarchical Bi2S3 Nanostructures by Polyvinylpyrrolidone (PVP) and Chloride Ion-Assisted Synthesis and Their Photodetecting Properties , 2015, Nanoscale Research Letters.
[52] J. Pallarès,et al. Interplay Between Morphology, Optical Properties, and Electronic Structure of Solution-Processed Bi2S3 Colloidal Nanocrystals , 2015 .
[53] Zhi Zheng,et al. Preparation and Optical Properties of Spherical Bi2S3 Nanoparticles by In Situ Thermal Sulfuration Method , 2015 .
[54] Yijun Zhong,et al. Controllable one-pot synthesis of various one-dimensional Bi2S3 nanostructures and their enhanced visible-light-driven photocatalytic reduction of Cr(VI) , 2014 .
[55] S. Apte,et al. Environmentally benign enhanced hydrogen production via lethal H2S under natural sunlight using hierarchical nanostructured bismuth sulfide , 2014 .
[56] M. Ebadi,et al. Synthesis and characterization of CdS/Bi2S3 nanocomposite via simple microwave approach , 2014 .
[57] Qiang Zhang,et al. Controlled assembly of Bi2S3 architectures as Schottky diode, supercapacitor electrodes and highly efficient photocatalysts , 2014 .
[58] Feng Chen,et al. Microwave-assisted preparation of inorganic nanostructures in liquid phase. , 2014, Chemical reviews.
[59] Xiaohong Yin,et al. Shape-controlled solvothermal synthesis of Bi2S3 for photocatalytic reduction of CO2 to methyl formate in methanol. , 2013, Dalton transactions.
[60] Zhengyu Bai,et al. D-penicillamine assisted hydrothermal synthesis of Bi2S3 nanoflowers and their electrochemical application. , 2013, Materials science & engineering. C, Materials for biological applications.
[61] Dianzeng Jia,et al. Facile synthesis of Bi2S3 hierarchical nanostructure with enhanced photocatalytic activity. , 2013, Journal of colloid and interface science.
[62] P. K. Panigrahi,et al. The Growth of Bismuth Sulfide Nanorods from Spherical-Shaped Amorphous Precursor Particles under Hydrothermal Condition , 2013 .
[63] Shuxin Ouyang,et al. Nano‐photocatalytic Materials: Possibilities and Challenges , 2012, Advanced materials.
[64] Jiliang Wu,et al. Large-scale synthesis of bismuth sulfide nanorods by microwave irradiation , 2011 .
[65] J. Hao,et al. Ionothermal synthesis of bismuth sulfide nanostructures and their electrochemical hydrogen storage behavior , 2010 .
[66] M. Zeller,et al. Photoelectrochemical and photoresponsive properties of Bi2S3 nanotube and nanoparticle thin films , 2010 .
[67] Chunjuan Tang,et al. Controlled synthesis of urchin-like Bi2S3 via hydrothermal method , 2010 .
[68] Xinggui Zhou,et al. Bi2S3 nanostructures: A new photocatalyst , 2010 .
[69] T. Thongtem,et al. Characterization of Bi2S3 with different morphologies synthesized using microwave radiation , 2010 .
[70] M. Salavati‐Niasari,et al. Synthesis of different morphologies of bismuth sulfide nanostructures via hydrothermal process in the presence of thioglycolic acid , 2009 .
[71] Edward H. Sargent,et al. Sensitive solution-processed Bi2S3 nanocrystalline photodetectors. , 2008, Nano letters.
[72] Xin Wang,et al. Preparation of uniform Bi2S3 nanorods using xanthate complexes of bismuth(III) , 2007 .
[73] Chang Ming Li,et al. Photoswitchable Semiconductor Bismuth Sulfide (Bi2S3) Nanowires and Their Self-Supported Nanowire Arrays , 2007 .
[74] Hong Zhang,et al. Synthesis and characterization of Bi2S3 nanorods by solvothermal method in polyol media , 2007 .
[75] Yau-Chen Jiang,et al. Rapid synthesis of Bi2S3 nanocrystals with different morphologies by microwave heating , 2006 .
[76] J. Tierney,et al. Microwave Assisted Organic Synthesis , 2005 .
[77] Hongyuan Chen,et al. Photochemical synthesis of Bi2S3 nanoflowers on an alumina template , 2004 .
[78] Frank Serafini. Possibilities and Challenges , 2002 .
[79] Hongyuan Chen,et al. Sonochemical Method for the Preparation of Bismuth Sulfide Nanorods , 2002 .
[80] Hongyuan Chen,et al. Preparation of Bi2S3 nanorods by microwave irradiation , 2001 .