Highly enhanced gas sensing properties of porous SnO2–CeO2 composite nanofibers prepared by electrospinning
Tài liệu tham khảo
Shi, 2011, Preparation of band gap tunable SnO2 nanotubes and their ethanol sensing properties, Langmuir, 27, 3977, 10.1021/la104529h
Scott, 2001, Tin dioxide opals and inverted opals: near-ideal microstructures for gas sensors, Advanced Materials, 13, 1468, 10.1002/1521-4095(200110)13:19<1468::AID-ADMA1468>3.0.CO;2-O
Hu, 2010, Enhancement of ethanol vapor sensing of TiO2 nanobelts by surface engineering, Applied Materials & Interface, 2, 3263, 10.1021/am100707h
Wu, 2009, Three-step growth of well-aligned ZnO nanotube arrays by self-catalyzed metalorganic chemical vapor deposition method, Crystal Growth and Design, 9, 4555, 10.1021/cg900557n
Choi, 2010, Design of selective gas sensors using electrospun Pd-doped SnO2 hollow nanofibers, Sensors and Actuators B, 150, 191, 10.1016/j.snb.2010.07.013
Kugishima, 2006, C2H4O sensing properties for thick film sensor using La2O3-modified SnO2, Sensors and Actuators B, 118, 171, 10.1016/j.snb.2006.04.053
Qi, 2008, Electrical response of Sm2O3-doped SnO2 to C2H2 and effect of humidity interference, Sensors and Actuators B, 134, 36, 10.1016/j.snb.2008.04.011
Nyman, 2009, Nano-YAG:Ce mechanisms of growth and epoxy-encapsulation, Chemistry of Materials, 21, 1536, 10.1021/cm803137h
Tanner, 2003, Absorption and emission spectra of Ce3+ in elpasolite lattices, Journal of the American Chemical Society, 125, 13225, 10.1021/ja036659x
Joy, 2012, Selective plasmonic gas sensing: H2, NO2, and CO spectral discrimination by a single Au–CeO2 nanocomposite film, Analytical Chemistry, 84, 5025, 10.1021/ac3006846
Machida, 2000, MnOx–CeO2 binary oxides for catalytic NOx sorption at low temperatures. Sorptive removal of NOx, Chemistry of Materials, 12, 3158, 10.1021/cm000207r
Liao, 2008, Single CeO2 nanowire gas sensor supported with Pt nanocrystals: gas sensitivity, surface bond states, and chemical mechanism, The Journal of Physical Chemistry C, 112, 9061, 10.1021/jp7117778
Bene, 2000, Chemical reactions in the detection of acetone and NO by a CeO2 thin film, Sensors and Actuators B, 71, 36, 10.1016/S0925-4005(00)00592-X
Xu, 2010, Preparation and bifunctional gas sensing properties of porous In2O3–CeO2 binary oxide nanotubes, Inorganic Chemistry, 49, 10590, 10.1021/ic101602a
Wang, 2007, Remarkable changes in the optical properties of CeO2 nanocrystals induced by lanthanide ions doping, Inorganic Chemistry, 46, 5237, 10.1021/ic0701256
Nagasawa, 1999, Photoemission study of the interaction of a reduced thin film SnO2 with oxygen, Surface Science, 433–435, 226, 10.1016/S0039-6028(99)00044-8
Kolmakov, 2008, Spectromicroscopy for addressing the surface and electron transport properties of individual 1-D nanostructures and their networks, ACS Nano, 2, 1993, 10.1021/nn8003313
Yang, 2010, Ultrasensitive and highly selective gas sensors based on electrospun SnO2 nanofibers modified by Pd loading, Advanced Functional Materials, 20, 4258, 10.1002/adfm.201001251
Praline, 1980, X-ray photoelectron study of the reaction of oxygen with cerium, Journal of Electron Spectroscopy and Related Phenomena, 21, 17, 10.1016/0368-2048(80)85034-1
Reddy, 2003, Structural characterization of CeO2–TiO2 and V2O5/CeO2–TiO2 catalysts by Raman and XPS techniques, Journal of Physical Chemistry B, 107, 5162, 10.1021/jp0344601
Force, 2007, XPS and 1H NMR study of thermally stabilized Rh/CeO2 catalysts submitted to reduction/oxidation treatments, Langmuir, 23, 4569, 10.1021/la0628118
Wang, 2007, A two-step hydrothermally grown ZnO microtube array for CO gas sensing, Applied Physics A, 88, 611, 10.1007/s00339-007-4076-8
Kim, 2006, Microsphere templating as means of enhancing surface activity and gas sensitivity of CaCu3Ti4O12 thin films, Nano Letters, 6, 193, 10.1021/nl051965p
Ma, 2010, Hydrangea-like meso-/macroporous ZnO–CeO2 binary oxide materials: synthesis, photocatalysis and CO oxidation, European Journal of Inorganic Chemistry, 5, 716, 10.1002/ejic.200900991
Malyshev, 1998, SnO2-based thick-film-resistive sensor for H2S detection in the concentration range of 1–10mgm−3, Sensors and Actuators B, 47, 181, 10.1016/S0925-4005(98)00021-5
Wang, 2007, Hydrothermal growth of ZnO nanoscrewdrivers and their gas sensing properties, Nanotechnology, 18, 185601, 10.1088/0957-4484/18/18/185601