Page 155 - 《精细化工》2020年第7期
P. 155
第 7 期 马 杰,等: rGO-SnO 2 纳米复合物的制备及其室温下 NH 3 气敏性能 ·1437·
sensing films[J]. Sensors and Actuators B: Chemical, 2013, 176(6): 269: 223-237.
893-905. [34] ROTHSCHILD A, KOMEM Y. The effect of grain size on the
[14] TOLOMAN D, POPA A, STAN M, et al. Reduced graphene oxide sensitivity of nanocrystalline metal-oxide gas sensors[J]. Journal of
decorated with Fe doped SnO 2 nanoparticles for humidity sensor[J]. Applied Physics, 2004, 95(11): 6374-6380.
Applied Surface Science, 2017, 402: 410-417. [35] ZHANG D Z, WU Z L, ZONG X Q. Flexible and highly sensitive
[15] ZHANG H, YU L, LI Q, et al. Reduced graphene oxide/α-Fe 2O 3 hybrid H 2S gas sensor based on in-situ polymerized SnO 2/rGO/PANI ternary
nanocomposites for room temperature NO 2 sensing[J]. Sensors and nanocomposite with application in halitosis diagnosis[J]. Sensors and
Actuators B: Chemical, 2017, 241: 109-115. Actuators B: Chemical, 2019, 289: 32-41.
[16] REN H B, GU C P, JOO S W, et al. Effective hydrogen gas sensor based [36] LI Y H, HUANG W X, LIU H, et al. UV photodetector based on
on NiO@rGO nanocomposite[J]. Sensors and Actuators B: Chemical, polycrystalline SnO 2 nanotubes by electrospinning with enhanced
2018, 266: 506-513. performance[J]. Journal of Nanoparticle Research, 2018, 20(12): 334.
[17] FENG Q X, LI X G, WANG J, et al. Reduced graphene oxide (rGO) [37] CHENG L, MA S Y, WANG T T, et al. Synthesis and
encapsulated Co 3O 4 composite nanofibers for highly selective ammonia characterization of SnO 2 hollow nanofibers by electrospinning for
sensors[J]. Sensors and Actuators B: Chemical, 2016, 222: 864-870. ethanol sensing properties[J]. Materials Letters, 2014, 131: 23-26.
[18] LI X G, ZHAO Y Y, WANG X Y, et al. Reduced graphene oxide (rGO) [38] LI N, FAN Y, SHI Y, et al. A low temperature formaldehyde gas
decorated TiO 2 microspheres for selective room-temperature gas sensor based on hierarchical SnO/SnO 2 nano-flowers assembled from
sensors[J]. Sensors and Actuators B: Chemical, 2016, 230: 330-336. ultrathin nanosheets: Synthesis, sensing performance and mechanism
[19] YE Z B, TAI H L, XIE T, et al. A facile method to develop novel TiO 2/ [J]. Sensors and Actuators B: Chemical, 2019, 294: 106-115.
rGO layered film sensor for detecting ammonia at room temperature [39] LIU W C, QU Y, LI H, et al. Nanostructure Bi 2WO 6: Surfactant-assisted
[J]. Materials Letters, 2016, 165: 127-130. hydrothermal synthesis for high sensitive and selective sensing of
[20] WANG T, SUN Z, HUANG D, et al. Studies on NH 3 gas sensing by H 2S[J]. Sensors and Actuators B: Chemical, 2019, 294: 224-230.
zinc oxide nanowire-reduced graphene oxide nanocomposites[J]. [40] LI S Y, WANG T, HUANG Y P, et al. Porous Nb 4N 5/rGO nanocomposite
Sensors and Actuators B: Chemical, 2017, 252: 284-294. for ultrahigh-energy-density lithium-ion hybrid capacitor[J]. ACS
[21] FENG Q X, LI X G, WANG J. Percolation effect of reduced graphene Applied Materials & Interfaces, 2019, 11(27): 24114-24121.
oxide (rGO) on ammonia sensing of rGO-SnO 2 composite based [41] YU K L, HU J X, LI X H, et al. Camellia-like NiO: A novel
sensor[J]. Sensors and Actuators B: Chemical, 2017, 243: 1115-1126. cataluminescence sensing material for H 2S[J]. Sensors and Actuators
[22] GHOSH R, NAYAK A K, SANTRA S, et al. Enhanced ammonia B: Chemical, 2019, 288: 243-250.
sensing at room temperature with reduced graphene oxide/tin oxide [42] MISHRA R, UPADHYAY S, KUSHWAHA A, et al. SnO 2 quantum
hybrid films[J]. RSC Advances, 2015, 5(62): 50165-50173. dots decorated on RGO: A superior sensitive, selective and reproducible
[23] CHEN Y, ZHANG W, WU Q S. A highly sensitive room-temperature performance for a H 2 and LPG sensor[J]. Nanoscale, 2015, 7(28):
sensing material for NH 3: SnO 2-nanorods coupled by rGO[J]. Sensors 11971-11979.
and Actuators B: Chemical, 2017, 242: 1216-1226. [43] LI W, XU F J, SUN L J, et al. A novel flexible humidity switch material
[24] SUN H J, LIU B, PENG T J, et al. Nitrogen-doped porous 3D graphene based on multi-walled carbon nanotube/polyvinyl alcohol composite
with enhanced supercapacitor properties[J]. Journal of Materials yarn[J]. Sensors and Actuators B: Chemical, 2016, 230: 528-535.
Science, 2018, 53(18): 1-11. [44] WANG S, XIE G Z, SU Y J, et al. Reduced graphene oxide-
[25] ZHANG B, LIU J, CUI X B, et al. Enhanced gas sensing properties polyethylene oxide composite films for humidity sensing via quartz
to acetone vapor achieved by α-Fe 2O 3 particles ameliorated with crystal microbalance[J]. Sensors and Actuators B: Chemical, 2018,
reduced graphene oxide sheets[J]. Sensors and Actuators B: Chemical, 255: 2203-2210.
2017, 241: 904-914. [45] LIU B, SUN H J, PENG T J, et al. High selectivity humidity sensors
[26] ISMAIL A M, MOHAMMED M I, FOUAD S S. Optical and structural of functionalized graphite oxide with more epoxy groups[J]. Applied
properties of polyvinylidene fluoride (PVDF)/reduced graphene oxide Surface Science, 2019, 503: 144312.
(RGO) nanocomposites[J]. Journal of Molecular Structure, 2018, [46] XU S, KAN K, YANG Y, et al. Enhanced NH 3 gas sensing
1170: 51-59. performance based on electrospun alkaline-earth metals composited
[27] SHARMA N, SHARMA V, JAIN Y, et al. Synthesis and characterization SnO 2 nanofibers [J]. Journal of Alloys and Compounds, 2015, 618:
of graphene oxide (GO) and reduced graphene oxide (rGO) for gas 240-247.
sensing application[J]. Macromolecular Symposia, 2017, 376(1): [47] AL-ENIZI A M, NAUSHAD M, ALA'A H, et al. Synthesis and
1700006. characterization of highly selective and sensitive Sn/SnO 2/N-doped
[28] WANG P C, SUN H J, PENG T J. The evolution rule of three- carbon nanocomposite (Sn/SnO 2@ NGC) for sensing toxic NH 3 gas
dimensional structures of graphite during oxidation[J]. Nano, 2015, [J]. Chemical Engineering Journal, 2018, 345: 58-66.
10(1): 1550014. [48] GAO X, ZHANG T. An overview: Facet-dependent metal oxide
[29] JING H, CHENG Z, SU Y J, et al. Light-assisted recovery for a highly- semiconductor gas sensors[J]. Sensors and Actuators B: Chemical,
sensitive NO 2 sensor based on RGO-CeO 2 hybrids[J]. Sensors and 2018, 277: 604-633.
Actuators B: Chemical, 2018, 270: 119-129. [49] DEY A. Semiconductor metal oxide gas sensors: A review[J]. Materials
[30] SUN H J, LIU B, PENG T J, et al. Effect of reaction temperature on Science and Engineering: B, 2018, 229: 206-217.
structure, appearance and bonding type of functionalized graphene [50] DONG X, CHENG X L, ZHANG X F, et al. A novel coral-shaped Dy 2O 3
oxide modified p-phenylene diamine[J]. Materials, 2018, 11(4): gas sensor for high sensitivity NH 3 detection at room temperature[J].
040647. Sensors and Actuators B: Chemical, 2018, 255: 1308-1315.
[31] GUI Y H, WANG H Y, TIAN K, et al. Enhanced gas sensing properties [51] HIEN V X, LEE J H, KIM J J, et al. Structure and NH 3 sensing
to NO 2 of SnO 2/rGO nanocomposites synthesized by microwave- properties of SnO thin film deposited by RF magnetron sputtering[J].
assisted gas-liquid interfacial method[J]. Ceramics International, 2018, Sensors and Actuators B: Chemical, 2014, 194: 134-141.
44(5): 4900-4907. [52] ABIDEEN Z U, KIM J-H, MIRZAEI A, et al. Sensing behavior to ppm-
[32] YIN L, CHEN D L, CUI X, et al. Normal-pressure microwave rapid level gases and synergistic sensing mechanism in metal-functionalized
synthesis of hierarchical SnO 2@rGO nanostructures with superhigh rGO-loaded ZnO nanofibers[J]. Sensors and Actuators B: Chemical,
surface areas as high-quality gas-sensing and electrochemical active 2018, 255: 1884-1896.
materials[J]. Nanoscale, 2014, 6(22): 13690-13700. [53] KIM J-H, MIRZAEI A, ZHENG Y F, et al. Enhancement of H 2S
[33] RONG X R, CHEN D L, QU G P, et al. Effects of graphene on the sensing performance of p-CuO nanofibers by loading p-reduced
microstructures of SnO 2@rGO nanocomposites and their formaldehyde- graphene oxide nanosheets[J]. Sensors and Actuators B: Chemical,
sensing performance[J]. Sensors and Actuators B: Chemical, 2018, 2019, 281: 453-461.