박사

일차원 코어-쉘 나노 구조의 합성 및 가스 검출 특성

박수영 2015년
논문상세정보
' 일차원 코어-쉘 나노 구조의 합성 및 가스 검출 특성' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • 가스 센서
  • 산화니오듐 나노로드
  • 산화아연
  • 산화중석
  • 수소
  • 코어-셀 구조
  • 탄소나노튜브
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
297 0

0.0%

' 일차원 코어-쉘 나노 구조의 합성 및 가스 검출 특성' 의 참고문헌

  • 반도체 나노와이어의 기술동향 분석
    연구개발 특구 정보도서관
  • 나노기술연감2005
    한국과학기술정보연구원 [2005]
  • 기술동향 분석보고서, 한국과학기술단체총연합회
    나노물질 이준웅
  • Zhang, J.; Liu, X.; Wang, L.; Yang, T.; Guo, X.; Wu, S.; Wang, S.;Zhang, S. Nanotechnology 22, 185501.185507. (2011).
  • Zhan, Z. L.; Jiang, D. G.; Xu, J. Q. Chem. Phys. 90, 250?254. (2005).
  • Z.R. Dai, Z.W. Pan, Z.L. Wang, Adv. Func. Mater. 13, 9 (2003).
  • Z.L. Wang, Z.R. Dai, Z.G. Bai, R.P. Gao, J. Gole, Appl. Phys. Lett. 77,3349 (2000).
  • Z. Wang, Y. Hu, W. Wang, X. Zhang, B. Wang, H. Tian, Y. Wang, J.Guan, H. Gu, Fast and highly-sensitive hydrogen sensing of Nb2O5 nanowires atroom temperature, Int. J. Hydrog. Energy 37 4526?4532 (2012).
  • Z. M. Liao, H. Z. Zhang, Y. B. Zhou, J. Xu, J. M. Zhang, and D. P. Yu,Phys. Lett. A 372, 4505 (2008).
  • Y.K. Tseng, C.J. Huang, H.M. Cheng , I.N. Lin , K.S. Liu,. I.C. ChenAdv. Funct. Mater. 13, 812 (2003).
  • Y. Wu, H. Yan, P. Yang, Chem. Eur. J. 8, 1260 (2002).
  • Y. S. Kim, S.-C. Ha, K. Kim, H. Yang, S.-Y. Choi, and Y. T. Kim, Appl.Phys. Lett. 86, 213105 (2005).
  • Y. Mizukoshi, T. Fujimoto, Y. Nagata, R. Oshima and Y. Maeda, J. Phys.Chem. B 104, 6028 (2000).
  • Y. Liu, E. Koep and M. Liu, Chemistry of Materials 17, 3997 (2005).
  • Y. Kang, L. Qi, M. Li, R. Diaz, D. Su, R. Adzic, E. Stach, J. Li and C.Murray, Acs Nano 6, 2818 (2012).
  • Y. Chen, G. Xiao, T. Wang, F. Zhang, Y. Ma, P. Gao, C. Zhu, E. Zhang,Z. Xu, Q. Li, a-MoO3/TiO2 core/shell nanorods: controlled-synthesis andlow-temperature gas sensing properties, Sens. Actuators B 155 270e277 (2011).
  • Xu, J.; Chen, Y.; Shen, J. Ethanol Sensor Based on Hexagonal IndiumOxide Nanorods Prepared by Solvothermal Methods. Mater. Lett. 62, 1363?1365. (2008).
  • X. Xiao, G. Dong, C. Xu, H. He, H. Qi, Z. Fan, J. Shao, Structure andoptical properties of Nb2O5 sculptured thin films by glancing angle deposition,Appl. Surf. Sci. 255 2192?2195 (2008).
  • X. Duan, Y. Huang, R. Argarawal, C. M. Lieber, Nature, 421, 241 (2003).
  • X. Duan, Nature, 421, 241 (2003).
  • Weast, R. C. CRC Handbook of Chemistry and Physics, 65th ed; CRCPress: Boca Raton, FL, (1984).
  • W.P. Zheng, R.D. Zu, Z.L. Wang, Science, 291, 1947 (2001).
  • W.J. Buttner, M.B. Post, R. Burgess, C. Rivkin, An overview of hydrogensafety sensors and requirements, Int. J. Hydrogen Energy 36 2462e2470 (2011).
  • W. U. Huynh, J. J. Dittmer, A. P. Alivisatos, Sci., 295, 2425 (2002).
  • W. I. Park, G. C. Yi, M. Kim, S. J. Pennycook, Adv. Mater. 15, 526(2003).
  • V. N. M. Rao, U.S. Patent 5, 447, 896 (1995).
  • U. S. environmental protection agency, Air Trends Summary Report,http://www.epa.gov/oar/aqtrnd95/no2.html.
  • U. Cvelbar, K. Ostrikov, A. Drenik, M. Mozetic, Nanowire sensor responseto reactive gas environment, Appl. Phys. Lett. 92 133505 (2008).
  • T. Weis, R. Lipperheide, U. Wille, S. Brehme, Barrier-controlled carriertransport in microcrystalline semiconducting materials: description within a unifiedmodel, J. Appl. Phys. 92 1411e1418 (2002).
  • T. Weis, R. Lipperheide, U. Wille, S. Brehme, Barrier-controlled carriertransport in microcrystalline semiconducting materials: Description within aunified model, J. Appl. Phys. 92 1411?1418 (2002).
  • T. Kuykendall, P. Pauzauskie, S. Lee, Y. Zhang, J. Goldberger, P. YangNano Lett. 3, 1063 (2003).
  • T. Hyodo, J. Ohoka, Y. Shimizu, M. Egashira, Design of anodicallyoxidized Nb2O5 films as a diode-type H2 sensing material, Sens. Actuators B 117359?366 (2006).
  • T. Hubert, L. Boon-Brett, G. Black, U. Banach, Hydrogen sensorsdA review,Sens. Actuators B 157 329e352 (2011).
  • T. Hubert, L. Boon-Brett, G. Black, U. Banach, Hydrogen sensors ? Areview, Sens. Actuators B 157 329?352 (2011).
  • Sun, P.; Sun, Y.; Ma, J.; You, L.; Lu, G.; Fu, W.; Li, M.; Yang, H. Sens.Actuators, B 155, 606.611. (2011).
  • Singh, N.; Ponzoni, A.; Gupta, R. K.; Lee, P. S.; Comini, E. Actuators, B160, 1346.1351. (2011).
  • Sauberlich, F.; Klein, A. Band Mater. Res. Soc. Symp. Proc. 763, 1?6.(2003).
  • Safonova, O. V.; Delabouglise, G.; Chenevier, B.; Gaskov, A. M.; Labeau,M. CO and NO2 Gas Sensitivity of Nanocrytalline Tin Dioxide Thin FilmsDoped with Pd, Ru and Rh. Mater. Sci. Eng. C 21, 105?111. (2002).
  • S.Y. Li, P. Lin, C.Y. Lee, T.Y. Tseng, J. Appl. Phys. 95, 3713 (2004).
  • S.W. Fan, A.K. Srivastava, V.P. Dravid, UV-activated room-temperature gassensing mechanism of polycrystalline ZnO, Appl. Phys. Lett. 95142106(1)-142106(3) (2009).
  • S.Sanvito, Y.K. Kwon, D. Tomnek and C.J. Lambert, phys. Rev. Lett., 84,1974 (2000).
  • S.S. Nair, M.A. Khadar, Dc conductivity of consolidated nanoparticles ofzinc sulfide, Sci. Technol. Adv. Mater. 9 035010 (2008).
  • S.H. Mujawar, A.I. Inamdar, C.A. Betty, V. Ganesan, P.S. Patil, Effect ofpost annealing treatment on electrochromic properties of spray deposited niobiumoxide thin films, Electrochimica Acta 52 4899?4906 (2007).
  • S. W. Choi, A. Katoch, G. J. Sun and S. S. Kim, Sensor. Actuat. B:Chem. 181, 446 (2013).
  • S. Peng and K. Cho, Nano Lett. 3, 513 (2003).
  • S. Mubeen, T. Zhang, B. Yoo, M. A. Deshusses, and N. V. Myung, J.Phys. Chem. C 111, 6321 (2007).
  • S. H. Park, S. Y. An, H. S. Ko, C. H. Jin and C. Lee, ACS Appl. Mater.Interfaces 4, 3650 (2012).
  • S. Frank, P. Poncharal, Z.L. Wang, W.A. de Heer, Science, 280, 1744(1998).
  • S. Dubois, L. Piraux, J.M. George, K. Ounadjela, J.L Duvail, A. Fert,Phys. Rev. B, 60, 477 (1999).
  • S. Dubois, C. Marchal, J.M. Beuken, L. Piraux, J.L. Duvail, A. Fert, J.M.George, J.L. Maurice, Appl. Phys. Lett. 70, 396 (1997).
  • R. Wang, D. Zhang, W. Sun, Z. Han, and C. Liu, J. Mol. Struct.:Theochem. 806, 93 (2007).
  • R. Krupke, F. Hennrich, Adv. Eng. Mater. 7, 111 (2005).
  • R. Ferrando, J. Jellinek and R. Johnston, Chem. Rev. 108, 845 (2008).
  • R. A. Rania, A. S. Zoolfakara, J. Z. Oua , M. R. Field, M. Austina, K.Kalantar-zadeha, Nanoporous Nb2O5 hydrogen gas sensor, Sens. Actuators B 176149?156 (2013).
  • Q. Wan, J. Huang, Z. Xie, T. H. Wang, E. N. Dattoli and W. Lu, Appl.Phys. Lett. 92, 102101 (2008).
  • Q. He, W. Chain, S. Mukerjee, S. Chain and F. Laufek, J. Power Sources187, 298 (2009).
  • Park, J. Y.; Choi, S. W.; Lee, J. W.; Lee, C.; Kim, S. S. J. Am. Ceram.Soc. 92, 2551.2554. (2009).
  • P. Zhang, R. Li, Y. Huang and Q. Chen, ACS Appl. Mater. Interfaces 6,2671 (2014).
  • P. Sun, Y. Sun, J. Ma, L. You, G. Lu, W. Fu, M. Li, H. Yang, Synthesisof novel SnO2/ZnSnO3 coreeshell microspheres and their gas sensing properities,Sens. Actuators B 155 606e611 (2011).
  • P. Sun, Y. Sun, J. Ma, L. You, G. Lu, W. Fu, M. Li and H. Yang,Synthesis of novel SnO2/ZnSnO3 core?shell microspheres and their gas sensingproperities, Sens. Actuators B 155 606?611 (2011).
  • P. Qi, O. Vermesh, and M. Grecu, Nano Lett. 3, 347 (2003).
  • P. Landon, P. Collier, A. Papworth, C. Kiely and G. Hutchings, Chem.Commun. 18, 2058 (2002).
  • P. K. Paul, S. Badhulika, and A. Mulchandani, Appl. Phys. Lett. 99,033103 (2011).
  • P. George, V. Pol, A. Gedanken, Synthesis and characterization ofNb2O5@C core-shell nanorods and Nb2O5 nanorods by reacting Nb(OEt)5 viaRAPET (reaction under autogenic pressure at elevated temperatures) technique,Nanoscale Res. Lett. 2 17-23 (2007).
  • P. E. Hoppkins and D. A. Stewart, J. Appl. Phys. 106, 053512 (2009).
  • P. C. Chen, G. Shen, and C. Zhou, IEEE Trans. Nanotechnol. 7, 668 (2008).
  • O.K. Varghese, D. Gong, M. Paulose, K.G. Ong, E.C. Dickey, C.A.Grimes, Adv. Mater.15, 624 (2003).
  • O.K. Varghese, D. Gong, M. Paulose, K.G. Ong, C.A. Grimes, Hydrogensensing using titania nanotubes, Sens. Actuators B 93 338?344 (2003).
  • O.K. Varghese, D. Gong, M. Paulose, K. Ong, C. Grimes, Hydrogensensing using titania nanotubes, Sens. Actuators B 93 338e344 (2003).
  • O. Lupan, G. Chai, L. Chow, Novel hydrogen gas sensor based on singleZnO nanorod, Microelectron. Eng. 85 2220?2225 (2008).
  • N.V. Lavrik, P.G. Datskos, Appl. Phys. Lett. 82, 2697 (2003).
  • N. Van Hieu, L. T. B. Thuy, and N. D. Chien, Sens. Actuators B 129,888 (2008).
  • N. Van Duy, N. Van Hieu, P. T. Huy, N. D. Chien, M. Thamilselvan, andJ. Yi, Physica E 41, 258 (2008).
  • N. Hamada, S. Sawada and A. Oshiyama, Phys. Rev. Lett. 68, 1579 (1992)
  • N. Barsan, U. Weimar, Conduction model of metal oxide gas sensors, JElectroceram 7 143?167 (2001).
  • N. Barsan and U. Weimar, J. Electroceram. 7, 143 (2001).
  • Mccue, J. T.; Ying, J. Y. Chem. Mater. 19, 1009?1015. (2007).
  • M.S. Michel, A. Aegerter, Y. Guo, Sol?gel niobium pentoxide coatings:applications to photovoltaic energy conversion and electrochromism, Int. J.Photoenergy 4 1?10 (2002).
  • M.S. Dresselhaus, G. Dresselhaus, and P.C. Eklund, “Science of Fullerenesand carbon-nanotubes”, Academic Press, Chapter 9, (1996).
  • M.S. Dresselhaus, B. Dresselhaus and R. Saito, carbon, 33, 883 (1995).
  • M.H. Huang, S. Mao, H. Feick, H. Yan, Y. Wu, H. Kind, E. Weber, R.Russo, P. Yang, Science, 292, 1897 (2001).
  • M. Sanchez, R. Guirado, and M. E. Rincon, J. Mater. Sci.: Mater.Electronics 18, 1131 (2007).
  • M. Penza, G. Cassano, and R. Rossi, Appl. Phys. Lett. 90, 171231 (2007).
  • M. Neurock, W. Provine, D. Dixon, G. Coulston, J. Lerou and R. vanSanten, Chem. Eng. Sci. 51, 1691 (1996).
  • M. Meyyappan, Ames Research Center, NASA (2003).
  • M. Meyyappan, 'Nanotechnology: Opportunities and Challenges', AmesResearch Center, NASA (2003).
  • M. Law, J. Goldberger, P. Yang, Annual Review of Materials Research, 34,83 (2004).
  • M. Law, J. Goldberger, P. Yang, Annu. Rev. Mater. Res.34, 83 (2004).
  • M. Law, H. Kind, B. Messer, F. Kim and P. Yang, Angewandte ChemieInternational Edition 114, 2511 (2002).
  • M. K. Kumar and S. Ramaprabhu, J. Phys. Chem. B 110, 11291 (2006).
  • M. K. Kumar and S. Ramaprabhu, Int. J. Hydrogen. Energ. 32, 2518(2007).
  • M. Bonarowska, B. Burda, W. Juszczyk, J. Pielaszek, Z. Kowalczyk and Z.Karpinski, Appl. Catal. B 35, 13 (2001).
  • M. Bonarowska, A. Malinowski, W. Juszczyk and Z. Karpinski, Appl.Catal. B 30, 187 (2001).
  • Liu, Y.; Koep, E.; Liu, M. A Highly Sensitive and Fast-Responding SnO2Sensor Fabricated by Combustion Chemical Vapor Deposition. Chem. Mater. 17,3997.4000. (2005).
  • Li, J.; Fan, H.; Jia, X.; Yang, W.; Fang, P. A 98, 537?542. (2010).
  • Law, M.; Kind, H.; Messer, B.; Kim, F.; Yang, P. Photochemical Sensing ofNO2 with SnO2 Nanoribbon Nanosensors at Room Temperature. Angew. Chem.,Int. Ed. 114, 2511.2514 (2002).
  • L.L Fields, J.P. Zheng, Y. Cheng, and P. Xiong, Room-temperaturelow-power hydrogen sensor based on a single tin dioxide nanobelt, Appl. Phys.Lett. 88 263102-263104 (2006).
  • L. Zhu, T. Zhao, J. Xu and Z. Liang, J. Power Sources 187, 80 (2009).
  • L. Piraux, J.M. George, J.F. Despres, C. Leroy, E. Ferain, R. Legras, K.Ounadjela, A. Fert, Appl. Phys. Lett, 65, 2484 (1994).
  • L. Niu, Y. Luo, and Z. Li, Sens. Actuators B 126, 361 (2007).
  • L. Manna, D.J. Milliron, A. Meisel, E.C. Scher, A.P. Alivisatos, Nat. Mater.2, 382 (2003).
  • L. Guczi, A. Beck, A. Horvath, Z. Koppany, G. Stefler, K. Frey, I. Sajo,O. Geszti, D. Bazin and J. Lynch, J. Mol. Catal. A 204, 545 (2003).
  • L. Fields, J. Zheng, Y. Cheng, P. Xiong, Room-temperature low-powerhydrogen sensor based on a single tin dioxide nanobelt, Appl. Phys. Lett. 88263102-263104 (2006).
  • L. C. Nagle, S. Garbarino and L. D. Burke, ECS Transactions 25, 3(2010).
  • Kolmakov, A.; Zhang, Y.; Cheng, G.; Moskovits, M. Detection of CO andO2 Using Tin Oxide Nanowire Sensors. Adv. Mater. 15, 997.1000 (2003).
  • Kolmakov, A.; Moskovits, M. Chemical Sensing and Catalysis byOne-Dimensional Metal-Oxide Nanostructures. Annu. Rev. Mater. Res. 34, 151?180. (2004).
  • Kim, S.; Carpenter, P. D.; Jean, R. K.; Chen, H.; Zhou, C.; Ju, S.; Janes,D. B. ACS Nano 6, 7352?7361. (2012).
  • Katoch, A.; Choi, S. W.; Sun, G. J.; Kim, S. S. J. Mater. Chem. A 1,13588? 13596. (2013).
  • Kar, S.; Chakrabarti, S.; Chaudhuri, S. Morphology Nanotechnology 17,3058?3062. (2006).
  • K. Anothainart, M. Burgmair, A. Karthigeyan, M. Zimmer, I. Eisele, Lightenhanced NO2 gas sensing with tin oxide at room temperature: conductance andwork function measurements, Sens. Actuators B 93 580e584 (2003).
  • Jin, C.; Park, S.; Kim, H.; Lee, C. Sens. Actuators,B 161, 223.228. (2012).
  • Jia, H.; Zhang, Y.; Chen, X.; Shu, J.; Luo, X.; Zhang, Z.; Yu, D. Appl.Phys. Lett. 82, 4146?4148. (2003).
  • Jang, Y. G.; Kim, W. S.; Kim, D. H.; Hong, S. H. J. Mater. Res. 26,2322.2327. (2011).
  • J.Z. Ou, R.A. Rani, M.H. Ham, M.R. Field, Y. Zhang, H. Zheng, P. Reece,S. Zhuiykov, S. Sriram, M. Bhaskaran, R.B. Kaner, K. Kalantar-zadeh, Elevatedtemperature anodized Nb2O5: a photoanode material with exceptionally largephotoconversion efficiencies, ACS Nano 6 4045?4053 (2012).
  • J.C. Johnson, H.J. Choi, K.P. Knutsen, R.D. Schaller, P. Yang, R.J.Saykally, Nature Materials, 1, 106 (2002).
  • J. Wang, M.S. Gudiksen, X. Duan, Y. Cui, C.M. Lieber, Science, 293,1455 (2001).
  • J. Wang, L. Liu, S. Y. Cong, J. Q. Qi, and B. K. Xu, Sens. Actuators B134, 1010 (2008).
  • J. W. Hong, D. Kim, Y. W. Lee, M. Kim, S. W. Kang and S. W. Han,Angew. Chem., Int. Ed. 50, 8876 (2011).
  • J. Tamaki, T. Maekawa, N. Miura, N. Yamazoe, CuOeSnO2 element forhighly sensitive and selective detection of H2S, Sens. Actuators B 9 197e203(1992).
  • J. Tamaki, T. Maekawa, N. Miura, N. Yamazoe, CuO-SnO2 element forhighly sensitive and selective detection of H2S, Sens. Actuators B 9 197?203(1992).
  • J. Sinfelt, Concepts and Applications, (Wiley: New York, 1983).
  • J. Hone, M. Whitney and A. Zettl, Synthetic Metals, 103, 2498 (1999).
  • J. Gong, Y.H. Li, X.S. Chai, Z.S. Hu, Y.L. Deng, UV-light-activated ZnOfibers for organic gas sensing at room temperature, J. Phys. Chem. C 1141293e1298 (2010).
  • J. Gong, J. Sun, and Q. Chen, Sens. Actuators B 130, 829 (2008).
  • J. Choi, J. Lee, K.J. Kim, Porous niobium oxide films prepared byanodization?annealing?anodization, Nanotechnol. 18 055603 (2007).
  • J Diao, K Gall, ML Dunn - Nature Materials, (2003).
  • Ivanonskaya, M.; Gurlo, A.; Bogdanov, P. B 77, 264?267. (2001).
  • I. Hwang, S. Kim, J. Choi, J. Choi, H. Ji, G. Kim, G. Cao, J. Lee,Synthesis and gas sensing characteristics of highly crystalline ZnOeSnO2coreeshell nanowires, Sens. Actuators B 148 595e600 (2010).
  • Hwang, I.S.; Kim, S.J.; Choi, J.K.; Choi, J.; Ji, H.; Kim, G.T.; Cao. G.;Lee, J.H. Synthesis and gas sensing characteristics of highly crystalline ZnO?SnO2 core?shell nanowires. Sens. Actuators B 148 595-600 (2010).
  • Hwang, I. S.; Kim, S. J.; Choi, J. K.; Choi, J.; Ji, H.; Kim, G. T.; Cao, G.;Lee, J. H. Sens. Actuators, B 148, 595.600. (2010).
  • H.J. Choi, J.C. Johnson, R. He, S.K. Lee, F. Kim, P. Pauzauskie, J.Goldberger, R.J. Saykally, P. Yang, J. Phys. Chem.B, 107, 8721 (2003).
  • H. Zhang, Y. Wang, D. Yang, Y. Li, H. Liu, P. Liu, B.J. Wood, H. Zhao,Directly hydrothermal growth of single crystal Nb3O7(OH) nanorod film for highperformance dye-sensitized solar cells, Adv. Mater. 24 1598?1603 (2012).
  • H. Yu, J. Li, R. A. Loomis, L. W. Wang, W. E. Buhro, Nat. Mater. 2,517 (2003).
  • H. Y. Jeong, D.-S. Lee, H. K. Choi, D. H. Lee, J.-E. Kim, J. Y. Lee, W.J. Lee, S. O. Kim, and S.-Y. Choi, Appl. Phys. Lett. 96, 213105 (2010).
  • H. S. Kim, C. H. Jin, S. H. Park, S.I. Kim and C. Lee, Sensor. Actuat. B:Chem. 161, 594 (2012).
  • H. Ogawa, M. Nishikawa, A. Abe, Hall measurement studies and anelectrical conduction model of tin oxide ultrafine particle films, J. Appl. Phys.53 4448?4455 (1982).
  • H. Kind, H. Yan, B. Messer, M. Law, P. Yang, Adv. Mater. 14, 158(2002).
  • H. Gu, Z. Wang, Y. Hu, Hydrogen gas sensors based on semiconductoroxide nanostructures, Sensors 12 5517e5550 (2012).
  • H. Ago, Th. Kugler, F. Cacialli, K. Petrisch, R.H. Friend, W.R. Salaneck,Y. Ono, T. Yamabe and K. Tanaka, Synthetic Metals, 103, 2494 (1999).
  • Gurlo, A.; Barsan, N.; Weimar, U.; Ivanovskaya, M.; Taurion, A.; Siciliano,P. Chem. Mater. 15, 4377?4383. (2003).
  • Gas sensor의 최근 개발 동향
    한국과학기술정보연구원 손영목 [2004]
  • G.B. Raupp, J.A. Dumesic, Adsorption of CO, CO2, H2 and H2O on titaniasurfaces with different oxidation states, J. Phys. Chem. 89 5240e5246 (1985).
  • G.B. Raupp, J.A. Dumesic, Adsorption of CO, CO2, H2 and H2O on titaniasurfaces with different oxidation states, J. Phys. Chem. 89 5240?5246 (1985).
  • G. Schmid, Chem. Rev. 92, 1709 (1992).
  • G. Gu, M. Schmid , P.W. Chiu, A. Minett, J. Fraysse, G.T. Kim, S. Roth,M. Kozlov, E. Munoz, R.H. Baughman, Nat. Mater. 2, 316 (2003).
  • Feng, P.; Wan, Q.; Wang, T. H. Contact-Controlled Sensing Properties ofFlowerlike ZnO Nanostructures. Appl. Phys. Lett. 87, 213111?213113. 2005).
  • E. Llobet, E. H. Espinosa, and E. Sotter, Nanotechnol 19, 11 (2008).
  • E. H. Espinosa, R. Ionescu, and B. Chambon, Sens. Actuators B 127, 137(2007).
  • E. Bekyarova, M. Davis, and T. Burch, J. Phys. Chem. B 108, 19717(2004).
  • D. E. Williams, Bristol. Hilger (1987).
  • D. Appell, Nature, 419, 553 (2002).
  • Chu, X. F.; Wang, C. H.; Jiang, D. L.; Zheng, C. M. Ethanol SensorBased on Indium Oxide Nanowires Prepared by Carbothermal ReductionReaction. Chem. Phys. Lett. 399, 461?464. (2004).
  • Choi, S. W.; Park, J. Y.; Kim, S. S. 20, 465603. 465608. (2009).
  • Chen, Y.J. ; Xiao, G.; Wang, T.S.; Zhang, F.; Ma, Y. ; Gao, P. ; Zhu,C.L. ; Zhang, E. ; Xu, Z. ; Li, Q.H. α-MoO3/TiO2 core/shell nanorods:Controlled-synthesis and low-temperature gas sensing properties. Sens. Actuators,B 155 270-277 (2011).
  • Chen, Y. J.; Xiao, G.; Wang, T. S.; Zhang, F.; Ma, Y.; Gao, P.; Zhu, C.L.; Zhang, E.; Xu, Z.; Li, Q. H. Sens. Actuators, B 156, 867.874. (2011).
  • Chen, Y. J.; Xiao, G.; Wang, T. S.; Zhang, F.; Ma, Y.; Gao, P.; Zhu, C.L.; Zhang, E.; Xu, Z.; Li, Q. H. Sens. Actuators, B 155, 270.277. (2011).
  • Chen, I. C.; Lin, S. S.; Lin, T. J.; Hsu, C. L.; Hsueh, T. J.; Shieh, T. Y.Sensors 10, 3057.3072. (2010).
  • C.L. Cao, C.G. Hu, X. Wang, S.X. Wang, Y.S. Tian, H.L. Zhang, UVsensor based on TiO2 nanorod arrays on FTO thin film, Sens. Actuators B 156114e119 (2011).
  • C. Nutzenadel, European Physical Journal D8, p245 (2000).
  • C. Nutzenadel, A. Zutell, D. Chartouni, G. Shimid, L.Schalapbach, Eur. Phys.J. D8, 245 (2000).
  • C. Li, D.H. Zhang, X.L. Liu, S. Han, T. Tang, J. Han, C.W. Zhou, Appl.Phys. Lett. 82, 1613 (2003).
  • C. L. Zhua, Y. J. Chenb, R. X. Wang, L. J. Wang, M. S. Cao, and X. L.Shi, Sens. Actuators B 140, 185 (2009).
  • C. Kan, W. Cai, C. Li, L. Zhang and H. Hofmeister, J. Phys. D-Appl.Phys. 36, 1609 (2003).
  • C. Jin, S. Park, H. Kim, C. Lee, Ultrasensitive multiple networkedGa2O3-core/ZnO-shell nanorod gas sensors. Sens. Actuators B 161 223?228(2012).
  • C. Jin, S. Park, H. Kim, C. Lee, Ultrasensitive multiple networkedGa2O3-core/ZnO-shell nanorod gas sensors, Sens. Actuators B 161 223e228(2012).
  • C. Jin, S. Park, H. Kim and C. Lee, Sensor. Actuat. B: Chem. 161, 223(2012).
  • C. Dekker, Physics Today, 22 (1999).
  • C. Bittencourt, A. Felten, and E. H. Espinosa, Sens. Actuators B 115, 33(2006).
  • Bianchi, S.; Comini, E.; Ferroni, M.; Faglia, G.; Vomiero, A.; Sberveglieri,G. Sens. Actuators, B 118, 204?207. (2006).
  • Barsan, N.; Weimar, U. Conduction 79, 143?167. (2001).
  • B.V. L'Vov, Thermochim. Acta, 360, 85 (2000).
  • Atashbar, M. Z.; Gong, B.; Sun, H. T.; Wlodarski, W.; Lamb, R. ThinSolid Films 354, 222?226. (1999).
  • Arafat, M. M.; Dinan, B.; Akbar, A. S.; Haseeb, M. A. Gas Sensors Basedon One Dimensional Nanostructured Metal-Oxides: A Review. Sensors 12, 7207?7258. (2012).
  • Alivov, Ya. I.; Kalinina, E. V.; Cherenkov, A. E.; Look, D. C.; Ataev, B.M.; Omaev, A. K.; Chukichev, M. V.; Bagnall, D. M. Appl. Phys. Lett. 83,4719?4721. (2003).
  • A.W.Adamson, A.P.Gast, Phys. Chem. of Surfaces, 6th, John Wiley & Sons,NY (1997).
  • A.W. Adamson, and A.P. Gast, Phys. Chem. of Surfaces, 6th, John, Wiley& Sons, NY (1997).
  • A.L. Viet, M.V. Reddy, R. Jose, B.V.R. Chowdari, S. Ramakrishna,Nanostructured Nb2O5 polymorphs by electrospinning for rechargeable lithiumbatteries, J. Phys. Chem. C 114 664?671 (2009).
  • A. Venezia, V. La Parola, G. Deganello, B. Pawelec and J. Fierro, J. Catal.215, 317 (2003).
  • A. Venezia, L. Liotta, G. Pantaleo, V. La Parola, G. Deganello, A. Beck,Z. Koppany, K. Frey, D. Horvath and L. Guczi, Appl. Catal. A 251, 359(2003).
  • A. Le Viet, R. Jose, M.V. Reddy, B.V.R. Chowdari, S. Ramakrishna, Nb2O5photoelectrodes for dye-sensitized solar cells: choice of the polymorph, J. Phys.Chem. C 114 21795?21800 (2010).
  • A. Kolmakov, Y.X. Zhang, G.S. Cheng, M. Moskovits, Adv. Mater. 15,997 (2003).
  • A. Kolmakov, Y. Zhang, G. Cheng, and M. Moskovits, Adv. Mater. 15, 997(2003).
  • A. Kolmakov, Y. Zhang, G. Cheng and M. Moskovits, Advanced Materials15, 997 (2003).
  • A. Husain, J. Hone, H.W.Ch. Postma, X.M.H. Huang, T. Drake, M. Barbic,A. Scherer, M.L. Roukes. Appl. Phys. Lett. 83, 1240 (2003).
  • A. Colli, A. Fasoli, P. Servati, S. Pisana, Y. Fu, A. J. Flewitt, W. I. Milne,J. Robertson, C. Ducati, S. De Franceschi, S. Hofmann, A. C. Ferrari, J. Appl.Phys. 102, 1 (2007).