Metal oxides designed for application in conductometric gas sensors and approaches used for synthesis of metal oxides with improved gas sensing characteristics are discussed in present article.

http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.
변환된 중국어를 복사하여 사용하시면 됩니다.
https://www.riss.kr/link?id=A103745392
G. Korotcenkov (Gwangju Institute of Science and Technology) ; 한송희 (목포해양대학교) ; 조병기 (광주과학기술원)
2013
English
KCI등재
학술저널
1-17(17쪽)
2
0
상세조회0
다운로드다국어 초록 (Multilingual Abstract)
Metal oxides designed for application in conductometric gas sensors and approaches used for synthesis of metal oxides with improved gas sensing characteristics are discussed in present article.
Metal oxides designed for application in conductometric gas sensors and approaches used for synthesis of metal oxides with improved gas sensing characteristics are discussed in present article.
참고문헌 (Reference)
1 I. Raible, "V2O5 nanofibers: Novel gas sensors with extremely high sensitivity and selectivity to amines" 106 : 730-735, 2005
2 I. Kim, "Ultrasensitive chemiresistors based on electrospun TiO2 nanofibers" 6 : 2009-2013, 2006
3 Z. R. Dai, "Ultra-long single crystalline nanoribbons of tin oxide" 118 : 351-354, 2001
4 B. Ding, "Titanium dioxide nanofibers prepared by using electrospinning method" 5 : 105-109, 2004
5 G. Korotcenkov, "Thin film SnO2- based gas sensors: Film thickness influence" 142 : 321-330, 2009
6 V. Brynzari, "Theoretical study of semiconductor thin film gas sensitivity: Attempt to consistent approach" 33 : 225-235, 2000
7 L. Liao, "The sensitivity of gas sensor based on single ZnO nanowire modulated by helium ion radiation" 91 : 173110-, 2007
8 G. Korotcenkov, "The role of the grain size in thermal stability of nanostructured SnO2 and In2O3 metal oxides films aimed for gas sensor application" 58 : 167-208, 2012
9 G. Korotcenkov, "The role of morphology and crystallographic structure of metal oxides in response of conductometric-type gas sensors" 61 : 1-39, 2008
10 G. Korotcenkov, "The nature of processes controlling the kinetics of indium oxide-based thin film gas sensor response" 128 : 51-63, 2007
1 I. Raible, "V2O5 nanofibers: Novel gas sensors with extremely high sensitivity and selectivity to amines" 106 : 730-735, 2005
2 I. Kim, "Ultrasensitive chemiresistors based on electrospun TiO2 nanofibers" 6 : 2009-2013, 2006
3 Z. R. Dai, "Ultra-long single crystalline nanoribbons of tin oxide" 118 : 351-354, 2001
4 B. Ding, "Titanium dioxide nanofibers prepared by using electrospinning method" 5 : 105-109, 2004
5 G. Korotcenkov, "Thin film SnO2- based gas sensors: Film thickness influence" 142 : 321-330, 2009
6 V. Brynzari, "Theoretical study of semiconductor thin film gas sensitivity: Attempt to consistent approach" 33 : 225-235, 2000
7 L. Liao, "The sensitivity of gas sensor based on single ZnO nanowire modulated by helium ion radiation" 91 : 173110-, 2007
8 G. Korotcenkov, "The role of the grain size in thermal stability of nanostructured SnO2 and In2O3 metal oxides films aimed for gas sensor application" 58 : 167-208, 2012
9 G. Korotcenkov, "The role of morphology and crystallographic structure of metal oxides in response of conductometric-type gas sensors" 61 : 1-39, 2008
10 G. Korotcenkov, "The nature of processes controlling the kinetics of indium oxide-based thin film gas sensor response" 128 : 51-63, 2007
11 G. Korotcenkov, "The influence of film structure on In2O3 gas response" 460 : 308-316, 2004
12 Z. M. Zeng, "The detection of H2S at room by using individual indium oxide nanowire transistors" 20 : 045503-, 2009
13 Y. Wang, "Template synthesis of nanostructured materials via layer-by-layer assembly" 20 : 848-858, 2008
14 T. L. Wadea, "Template synthesis of nanomaterials" 29 : 3-22, 2005
15 G. S. Devi, "Synthesis of mesoporous TiO2-based powders and their gas-sensing properties" 87 : 122-129, 2002
16 E. Rossinyol, "Synthesis and characterization of chromiumdoped mesoporous tungsten oxide for gas sensing applications" 17 : 1801-1806, 2007
17 S. Rani, "Synthesis and applications of electrochemically self-assembled titania nanotube arrays" 12 : 2780-2800, 2010
18 M. Batzill, "Surface science studies of gas sensing materials: SnO2" 6 : 1345-1366, 2006
19 D. Kohl, "Surface processes in the detection of reducing gases with SnO2-based devices" 18 : 71-113, 1989
20 J.-A. Park, "Structure and CO gas sensing properties of electrospun TiO2 nanofibers" 64 : 255-257, 2010
21 G. Korotcenkov, "Structural stability of In2O3 films deposited by spray pyrolysis during thermal annealing" 479 : 38-51, 2005
22 L. Liao, "Single CeO2 nanowire gas sensor supported with Pt nanocrystals: Gas sensitivity, surface bond states, and chemical mechanism" 112 : 9061-9065, 2008
23 J. L. Solis, "Semiconductor gas sensors based on nanostructured tungsten oxide" 391 : 255-260, 2001
24 D.E. Williams, "Semiconducting oxides as gassensitive resistors" 57 : 1-16, 1999
25 C. S. Rout, "Room temperature hydrogen and hydrocarbon sensors based on single nanowires of metal oxides" 40 : 2777-2782, 2007
26 A. Yang, "Room temperature gas sensing properties of SnO2/multiwallcarbonnanotube composite nanofibers" 91 : 133110-, 2007
27 N. M. Vuong, "Realization of an open space ensemble for nanowires: a strategy for the maximum response in resistive sensors" 22 : 6716-6725, 2012
28 O. Landau, "Processing-microstructure-properties correlation of ultrasensitive gas sensors produced by electrospinning" 21 : 9-11, 2009
29 S. K. Lim, "Preparation of mesoporous In2O3 nanofibers by electrospinning and their application as a CO gas sensor" 149 : 28-33, 2010
30 Y. Shimizu, "Preparation of large mesoporous SnO2 powders for gas sensor application" 108 : 56-61, 2005
31 K. Okuyama, "Preparation of functional nanostructured particles by spray drying" 17 : 587-611, 2006
32 T. Hyodo, "Preparation and gas-sensing properties of thermally stable mesoporous SnO2" 83 : 209-215, 2002
33 G. Korotcenkov, "Practical aspects in design of oneelectrode semiconductor gas sensors: status report" 121 : 664-678, 2007
34 M. Tiemann, "Porous metal oxides as gas sensors" 13 : 8376-8388, 2007
35 M. Law, "Photochemical sensing of NO2 with SnO2 nanoribbon nanosensors at room temperature" 41 : 2405-2408, 2002
36 J. M. Baik, "Pdsensitized single vanadium oxide nanowires: Highly responsive hydrogen sensing based on the metalinsulator transition" 9 : 3980-3984, 2009
37 G. Korotcenkov, "Ozone measuring: What can limit the application of SnO2-based gas sensors?" 161 : 28-44, 2012
38 T. Wagner, "Ordered mesoporous ZnO for gas sensing" 515 : 8360-8363, 2007
39 Z. R. Dai, "Novel nanostructures of functional oxides ssynthesized by thermal evaporation" 13 (13): 9-24, 2003
40 G. Korotcenkov, "Metal oxides for solid state gas sensors: What determines our choice?" 139 : 1-23, 2007
41 H. Meixner, "Metal oxide sensors" 33 : 198-202, 1999
42 E. Rossinyol, "Mesostructured pure and coppercatalyzed tungsten oxide for NO2 detection" 126 : 18-23, 2007
43 Y. Shimizu, "Mesoporous semiconducting oxides for gas sensor application" 24 : 1389-1398, 2004
44 J. S. Tresback, "Low-temperature gas sensing in individual metal-oxide-metal heterojunction nanowires" 23 : 2047-2052, 2008
45 A. Gurlo, "Interplay between O2 and SnO2 : Oxygen ionosorption and spectroscopic evidence for adsorbed oxygen" 7 : 2041-2052, 2006
46 G. Korotcenkov, "Instability of metal oxide-based conductometric gas sensors and approaches to stability improvement" 156 : 527-538, 2011
47 C. Li, "In2O3 nanowires as chemical sensors" 82 : 1613-1615, 2003
48 O. K. Varghese, "Hydrogen sensing using titania nanotubes" 93 : 338-344, 2003
49 Z. Lin, "Highly sensitive gas sensor based on coral-like SnO2 prepared with hydrothermal treatment" 173 : 22-27, 2012
50 Z. Li, "Highly sensitive and stable humidity nanosensors based on LiCl doped TiO2 electrospun nanofibers" 130 : 5036-5037, 2008
51 U. Hoefer U, "High temperature Ga2O3 gas sensors and SnO2 gas sensors: A comparison" 78 : 6-11, 2001
52 Y. Liu, "Growth of aligned squareshaped SnO2 tube arrays" 15 (15): 57-62, 2005
53 X. L. Ma, "Growth mode of the SnO2 nanobelts synthesized by rapid oxidation" 376 : 794-798, 2003
54 G. Korotcenkov, "Grain size effects in sensor response of nanostruc-tured SnO2- and In2O3-based conductometric gas sensor" 34 (34): 1-17, 2009
55 A. Gurlo, "Grain size control in nanocrystalline In2O3 semiconductor sensors" 44 : 327-333, 1997
56 T. Y. Wei, "Gigantic enhancement in sensitivity using Schottky contacted nanowire nanosensor" 131 : 17690-17695, 2009
57 T. Hyodo, "Gassensing properties of ordered mesoporous SnO2 and effects of coating thereof" 93 : 590-600, 2003
58 A. Rothschild, "Gas sensors: New materials and processing approaches" 17 : 1005-1012, 2006
59 J.-H. Lee, "Gas sensors using hierarchical and hollow oxide nanostructures: Overview" 140 : 319-336, 2009
60 M.-W. Ahn, "Gas sensing properties of defect-controlled ZnOnanowire gas sensor" 93 : 263103-, 2008
61 G. Korotcenkov, "Gas response control through structural and chemical modification of metal oxides: State of the art and approaches" 107 : 209-232, 2005
62 N. Barsan, "Fundamental and practical aspects in the design of nanoscaled SnO2 gas sensors. A status report" 365 : 287-304, 1999
63 A. B. Gadkari, "Ferrite gas sensors" 11 (11): 849-861, 2011
64 V. Brinzari, "Factors influencing the gas sensing characteristics of tin dioxide films deposited by spray pyrolysis: understanding and possibilities for control" 391 : 167-175, 2001
65 G. Korotcenkov, "Faceting characterization of SnO2 nanocrystals deposited by spray pyrolysis from SnCl4-5H2O water solution" 471 : 310-319, 2005
66 P. Colombo, "Fabrication of ceramic components with hierarchical porosity" 45 : 5425-5455, 2010
67 Y. Li, "Fabrication of TiO2 nanotube thin films and their gas sensing properties" 2009 : 402174-, 2009
68 M. Yang, "Fabrication and photoelectric oxygen sensing characteristics of electrospun Co doped ZnO nanofibers" 89 : 427-430, 2007
69 Y. Zhang, "Fabrication and ethanol-sensing properties of micro gas sensor based on electrospun SnO2 nanofibers" 132 : 67-73, 2008
70 G. Wang, "Fabrication and characterization of polycrystalline WO3 nanofibers and their application for ammonia sensing" 110 : 23777-23782, 2006
71 G. Wang, "Fabrication and characterization of polycrystalline WO3 nanofibers and their application for ammonia sensing" 110 : 23777-23782, 2006
72 J. D. Prades, "Equivalence between thermal and room temperature UV light-modulated responses of gas sensors based on individual SnO2 nanowires" 140 : 337-342, 2009
73 Q. Kuang, "Enhancing the photonand gas-sensing properties of a single SnO2 nanowire based nanodevice by nanoparticle surface functionalization" 112 : 11539-11544, 2008
74 A. Kolmakov, "Enhanced gas sensing by individual SnO2 nanowires and nanobelts functionalized with Pd catalyst particles" 5 : 667-673, 2005
75 K. Choi, "Enhanced CO sensing characteristics of hierarchical and hollow In2O3 microspheres" 138 (138): 97-503, 2009
76 R. Luoh, "Electrospun nanocomposite fiber mats as gas sensors" 66 : 2436-2441, 2006
77 K. Sahner, "Electrodeposited and sol-gel precipitated p-type SrTi1-x FexO3-δsemiconductors for gas sensing" 7 : 1871-1886, 2007
78 Z. Miao, "Electrochemically induced sol-gel sreparation of single-crystalline TiO2 nanowires" 2 : 717-720, 2002
79 M. Hayashi, "Effects of microstructure of mesoporous SnO2 powders on their H2 sensing properties" 141 : 465-470, 2009
80 N. Yamazoe, "Effects of additives on semiconductor gas sensors" 4 : 283-289, 1983
81 G. Korotcenkov, "Distinguishing feature of metal oxide films' structural engineering for gas sensor application" 15 : 256-261, 2005
82 J. Tamaki, "Dilute hydrogen sulfide sensing properties of CuO-SnO2 thin film prepared by low-pressure evaporation method" 49 : 121-125, 1998
83 L. He, "Development of sensors based on CuO-doped SnO2 hollow spheres for ppb level H2S gas sensing" 44 : 4326-4333, 2009
84 Y. Wang, "Detection of moisture and methanol gas using a single electrospun tin oxide nanofiber" 7 : 1347-1348, 2007
85 D. H. Zhang, "Detection of NO2 down to ppb levels using individual and multiple In2O3 nanowire devices" 4 : 1919-1924, 2004
86 C. Sanchez, "Design, synthesis, and properties of inorganic and hybrid thin films having periodically organized nanoporosity" 20 : 682-737, 2008
87 J.-H. Jeun, "CuO-loaded nanoporous SnO2 films fabricated by anodic oxidation and RIE process and their gas sensing properties" 151 : 1-7, 2010
88 W. Yue, "Crystalline mesoporous metal oxide" 18 : 1329-1338, 2008
89 V. Kumar, "Copper doped SnO2 nanowires as highly sensitive H2S gas sensor" 138 : 587-590, 2009
90 L. Huang, "Controlled growth of well-faceted zigzag tin oxide mesostructures" 87 : 163124-, 2005
91 G. Korotcenkov, "Conductometric metal oxide gas sensors, In Chemical Sensors, Vol. 4: Solid State Devices" Momentum Press 39-186, 2011
92 N. Barsan, "Conduction model of metal oxide gas sensors" 7 (7): 143-167, 2001
93 G. Korotcenkov, "Chemical Sensors, Vol. 1-3: Fundamentals of Sensing Materials" Momentum Press 2011
94 L. H. Qian, "CO sensor based on Au-decorated SnO2 nanobelt" 10 : 82-84, 2006
95 Q. Liu, "Aqueous route for mesoporous metal oxides using inorganic metal source and their applications" 100 : 233-240, 2007
96 P. Feng, "Achieving fast oxygen response in individual β-Ga2O3 nanowires by ultraviolet illumination" 89 : 112-114, 2006
97 G. K. Mor, "A room-temperature TiO2-nanotube hydrogen sensor able to self-clean photoactively from environmental contamination" 19 : 628-634, 2004
98 C. Shao, "A novel method for making silica nanofibers by using electrospun fibers of polyvinyl alcohol/silica composite as precursor" 13 : 635-637, 2002
99 G. Korotcenkov, "(Cu, Fe, Co or Ni)-doped SnO2 films deposited by spray pyrolysis: Doping influence on film morphology" 43 (43): 2761-2770, 2008
100 G. Korotcenkov, "(Cu, Fe, Co and Ni)-doped SnO2 films deposited by spray pyrolysis : Doping influence on thermal stability of SnO2 film structure" 113 : 756-763, 2009
광섬유 브래그 격자 센서를 이용한 원자력발전소 격납건물의 구조 건전성 계측
IP 기반 무선네트워크에서의 혈관상태 평가를 위한 무구속 헬스케어 시스템
Fault Tolerant Control of Wind Turbine with Sensor and Actuator Faults
학술지 이력
| 연월일 | 이력구분 | 이력상세 | 등재구분 |
|---|---|---|---|
| 2022 | 평가 | 계속평가 신청대상 (계속평가) | |
| 2021-12-01 | 등재 | 등재후보로 하락 (재인증) | ![]() |
| 2018-01-01 | 등재 | 등재학술지 선정 (계속평가) | ![]() |
| 2017-12-01 | 등재 | 등재후보로 하락 (계속평가) | ![]() |
| 2013-01-01 | 등재 | 등재 1차 FAIL (등재유지) | ![]() |
| 2010-01-01 | 등재 | 등재학술지 유지 (등재유지) | ![]() |
| 2008-01-01 | 등재 | 등재학술지 유지 (등재유지) | ![]() |
| 2005-01-01 | 등재 | 등재학술지 선정 (등재후보2차) | ![]() |
| 2004-01-01 | 등재 | 등재후보 1차 PASS (등재후보1차) | ![]() |
| 2002-07-01 | 등재 | 등재후보학술지 선정 (신규평가) | ![]() |
학술지 인용정보
| 기준연도 | WOS-KCI 통합IF(2년) | KCIF(2년) | KCIF(3년) |
|---|---|---|---|
| 2016 | 0.22 | 0.22 | 0.16 |
| KCIF(4년) | KCIF(5년) | 중심성지수(3년) | 즉시성지수 |
| 0.15 | 0.13 | 0.319 | 0.07 |
Secondary Science Using ICT: Investigating Combustion with Year 7 Using Gas Sensors
Teachers TV Teachers TVApproaches to Teaching Shakespeare
Teachers TV Teachers TVExperiential Approaches to Hinduism
Teachers TV Teachers TVRichard III: RSC Approaches
Teachers TV Teachers TVThinking Skills: Brain-Based Approaches
Teachers TV Teachers TV