Մենք հանդիսանում ենք կապող օղակ հեղինակների և պատվիրատուների միջև:

Մեր կայքում դուք կարող եք պատվիրել նյութեր՝ ուղղիղ կապ հաստատելով մասնագետներից ցանկացածի հետ:
    Թիրախի պատրաստումը

    Կուրսային | Տնտեսագիտություն

    Թիրախի պատրաստումը

    Էջերի քանակ: 10

    Կոդ: #27485

    2000 դր.




    Բովանդակություն
    Օգտագործված գրականության ցանկ

     

    Գրականության ցանկ

    [1] L. Yu, X. Jin, X. Zeng, Methane interactions with polyaniline/

    butylmethylimidazolium camphorsulfonate ionic liquid composite, Langmuir

    24 (2008) 11631–11636.

    [2] G. Wen, J. Zheng, C. Zhao, S. Shuang, C. Dong, M.M.F. Choi, A microbial

    biosensing systemfor monitoringmethane, EnzymeMicrob. Technol. 43 (2008)

    257–261.

    [3] S. Chakraborty, A. Sen, H.S. Maiti, Selective detection of methane and butane by

    temperaturemodulation in iron doped tin oxide sensors, Sens. Actuators B 115

    (2006) 610–613.

    [4] P. Bhattacharyya, P.K. Basu, H. Saha, S. Basu, Fast responsemethane sensor using

    nanocrystalline zinc oxide thin films derived by sol-gelmethod, Sens. Actuators

    B 124 (2007) 62–67.

    [5] B. Matveev, M. Aidaraliev, G. Gavrilov, N. Zotova, S. Karandashov, C. Sotnikova,

    N. Stus’, G. Talalakin, N. Il’inskaya, S. Aleksandrov, Room temperature InAs

    photodiode-InGaAs LED pairs for methane detection in the mid-IR, Sens. Actuators

    B 51 (1998) 233–237.

    [6] A. Lucchesini, S. Gozzini,Methane diode laser overtone spectroscopy at 840 nm,

    J. Quant. Spectrosc. Radiat. Transfer 103 (2007) 209–216.

    [7] K.J.C. van Bommel, A. Friiggeri, S. Shinkai, Organic templates for the generation

    of inorganic materials, Angew. Chem. Int. Ed. 42 (2003) 980–999.

    [8] A. Bexryadin, C.N. Lau,M. Tinkham, Quantum suppression of superconductivity

    in ultrathin nanowires, Nature 404 (2000) 971–974.

    [9] S. Hrapovic, Y. Liu, K.B. Male, J.H.T. Luong, Electrochemical biosensing platforms

    using platinum nanoparticles and carbon nanotubes, Anal. Chem. 76 (2004)

    1083–1088.

    [10] D. Wang, Z.C. Li, L.W. Chen, Templated synthesis of single-walled carbon nanotube

    and metal nanoparticle assemblies in solution, J. Am. Chem. Soc. 128

    (2006) 15078–15079.

    [11] S.I. Cha, K.T. Kim, S.N. Arshad, C.B. Mo, S.H. Hong, Extraordinary strengthening

    effect of carbon nanotubes in metal-matrix nanocomposites processed by

    molecular-level mixing, Adv. Mater. 11 (2005) 1377–1381.

    [12] J.H. Zhan, Y. Bando, J.Q. Hu, F.F. Xu, D. Golberg, Unconventional gallium oxide

    nanowires, Small 1 (2005) 883–888.

    [13] J. Li, Y. Lu, Q. Ye, M. Cinke, J. Han, M. Meyyappan, Carbon nanotube sensors for

    gas and organic vapor detection, Nano. Lett. 3 (2003) 929–933.

    [14] Y.J. Lu, J. Li, J. Han, H.-T. Ng, C. Binder,C. Partridge,M.Meyyappan,Roomtemperaturemethane

    detection using palladium loaded single-walled carbon nanotube

    sensors, Chem. Phys. Lett. 391 (2004) 344–348.

    [15] R.K. Roy, M.P. Chowdhury, A.K. Pal, Room temperature sensor based on carbon

    nanotubes and nanofibres for methane detection, Vacuum 77 (2005)

    223–229.

    [16] G. Casalbore-Miceli, A. Zanelli, A. Geri, M.C. Gallazzi, Amethane sensor based on

    poly(3_,4_-Dihexyl-4,4__-bis(pentyloxy)-2,2_:5_,2__-terthiophene), Collect. Czech.

    Chem. Commun. 68 (2003) 1736–1744.

    [17] Zhongping Li a,Junfen Li a,Xu Wu b,Shaomin Shuanga,Cuan Donga,*,Martin M.F.Choic,**,

    Methane sensor based on nanocomposite of palladium/multi-walled carbon nanotubes grafted with 1.6-hexanediamine,

    Sensors and Actuators B 139(2009)453-459,

    Journal homepage:www.elsevier.com/locate/snb

    [18] S. Yang, X. Zhang, H. Mi, X. Ye, Pd nanoparticles supported on functionalized

    multi-walled carbon nanotubes (MWNTs) and electrooxidation for formic acid,

    J. Power Sources 175 (2008) 26–32.

    [19] H. Hu, Y. Ni, V. Montana, R.C. Haddon, V. Parpura, Chemically functionalized carbon

    nanotubes as substrates for neuronal growth, Nano. Lett. 4 (2004) 507–511.

    [20] Y. Wang, I. Zafar, S.V. Malhotra, Functionalization of carbon nanotubes with

    amines and enzymes, Chem. Phys. Lett. 402 (2005) 96–101.

    [21] C. Zhao, L. Ji, H. Liu, G. Hu, S. Zhang, M. Yang, Z. Yang, Functionalized carbon

    nanotubes containing isocyanate groups, J. Solid State Chem. 177 (2004)

    4394–4398.

    [22] Y. Song,A.S. Harper,R.W.Murray, Ligand heterogeneity on monolayer-protected

    gold clusters, Langmuir 21 (2005) 5492–5500.

    [23] B.K. Jena, C.R. Raj, Synthesis of flower-like gold nanoparticles and their electrocatalytic

    activity towards the oxidation of methanol and the reduction of

    oxygen, Langmuir 23 (2007) 4064–4070.

    [24] V.R. Shinde, T.P. Gujar, C.D. Lokhande, Enhanced response of porous ZnO

    nanobeads towards LPG: effect of Pd sensitization, Sens. Actuators B 123 (2007)

    701–706.

    [25] S.W. Hla, P. Lacovig, G. Comelli, A. Baraldi, M. Kiskinova, R. Rosei, Orientational

    anisotropy inoxygendissociationonRh(110),Phys.Rev,B60 (1999) 7800–7803.

    [26] P.K. Basu, P. Bhattacharyya, N. Saha, H. Saha, S. Basu, The superior performance of

    the electrochemically grown ZnO thin films as methane sensor, Sens. Actuators

    B 133 (2008) 357–363.

    [27] E.C.Walter, F. Favier, R.M. Penner, Palladium mesowire arrays for fast hydrogen

    sensors and hydrogen-actuated switches, Anal. Chem. 74 (2002) 1546–1553.

    [28] F.J. Ibanez, F.P. Zamborini, Reactivity of hydrogen with solid-state films of

    alkylamine and tetraoctylammonium bromide-stabilized Pd, PdAg, and PdAu

    nanoparticles for sensing and catalysis applications, J. Am. Chem. Soc. 130

    (2008) 622–633.

    [29] O.K. Varghese, P.D. Kichambre, D. Gong, K.G. Ong, E.C. Dickey, C.A. Grimes, Gas

    sensing characteristics of multi-wall carbon nanotubes, Sens. Actuators B 81

    (2001) 32–41.

    [30] J. Suehiro, S.-I. Hidaka, S. Yamane, K. Imasaka, Fabrication of interfaces between

    carbon nanotubes and catalytic palladium using dielectrophoresis and its application

    to hydrogen gas sensor, Sens. Actuators B 127 (2007) 505–511.

    [31] X. Chen, Z. Guo, J. Huang, F. Meng, M. Zhang, J. Liu, Fabrication of gas ionization

    sensors using well-aligned MWNT arrays grown in porous AAO templates,

    Colloids and Surfaces A: Physicochem. Eng. Aspects 313–314 (2008) 355–358.

    [32] M. Arab, F. Berger, F. Picaud, C. Ramseyer, J. Glory, M. Mayne-L’Hermite, Direct

    growth of the multi-walled carbon nanotubes as a tool to detect ammonia at

    room temperature, Chem. Phys. Lett. 433 (2006) 175–181.

    [33] P.K.Basu,P.Bhattachayya,N.Saha,H.Saha,S.Basu.

    -The superior  performance of the electrochemically grown ZnO thin films as methane sensor.

    Sensors and Actuators B:Chemical,xxx,Ã.1-7,2008.

    [34] S.Chakraborty,A.Sen,H.S.Maiti.-Selective detection ûf methane and butane by temperature modulation in iron doped tin oxide sensors.Sensors and Actuators,B115, Ã.610-613,2006.

     

    ԲՈՎԱՆԴԱԿՈՒԹՅՈՒՆ

     

    Ներածություն

    Գրականության տեսություն

    Փորձարարական մաս

    1.Թիրախի պատրաստումը

     2.Թաղանթների ստացումը

    3.Կառուցվածքների զգայունության չափումը

    Օգտագործված գրականության ցանկ

     

    Եթե կայքում տեղադրված ինֆորմացիյան բավարար չէ հասկանալու համար նյութի պարունակությունը ուղարկեք հարցում և մեր մասնագետները կարճ ժամանակում կուղարկեն Ձեզ անրաժեշտ ինֆորմացիյան:
    Ուղարկել հարցում

    Եթե այս նյութը այն չէ ինչ դուք փնտրում էիք, ապա դուք կարող եք այն պատվիրել www.referat.am կայքում գրանցված մասնագետներից ցանկացածին շատ մատչելի և հուսալի (ողղիղ կապ մասնագետի հետ) եղանակներով:
    Պատվիրել նյութ

    Գնել նյութը


    Լրացրեք բոլոր դաշտերը
    Ձեր պատվերը հաջողությամբ ընդունված է: Մեր մասնագետները կարճ ժամանակ հետո կապ կհաստատեն Ձեզ հետ:

    referat.am kursayinner referatner diplomayinner tezer պատվիրել աշխատանքներ description_1 <p>&nbsp;</p> <p>Գրականության ցանկ</p> <p>[1] L. Yu, X. Jin, X. Zeng, Methane interactions with polyaniline/</p> <p>butylmethylimidazolium camphorsulfonate ionic liquid composite, Langmuir</p> <p>24 (2008) 11631&ndash;11636.</p> <p>[2] G. Wen, J. Zheng, C. Zhao, S. Shuang, C. Dong, M.M.F. Choi, A microbial</p> <p>biosensing systemfor monitoringmethane, EnzymeMicrob. Technol. 43 (2008)</p> <p>257&ndash;261.</p> <p>[3] S. Chakraborty, A. Sen, H.S. Maiti, Selective detection of methane and butane by</p> <p>temperaturemodulation in iron doped tin oxide sensors, Sens. Actuators B 115</p> <p>(2006) 610&ndash;613.</p> <p>[4] P. Bhattacharyya, P.K. Basu, H. Saha, S. Basu, Fast responsemethane sensor using</p> <p>nanocrystalline zinc oxide thin films derived by sol-gelmethod, Sens. Actuators</p> <p>B 124 (2007) 62&ndash;67.</p> <p>[5] B. Matveev, M. Aidaraliev, G. Gavrilov, N. Zotova, S. Karandashov, C. Sotnikova,</p> <p>N. Stus&rsquo;, G. Talalakin, N. Il&rsquo;inskaya, S. Aleksandrov, Room temperature InAs</p> <p>photodiode-InGaAs LED pairs for methane detection in the mid-IR, Sens. Actuators</p> <p>B 51 (1998) 233&ndash;237.</p> <p>[6] A. Lucchesini, S. Gozzini,Methane diode laser overtone spectroscopy at 840 nm,</p> <p>J. Quant. Spectrosc. Radiat. Transfer 103 (2007) 209&ndash;216.</p> <p>[7] K.J.C. van Bommel, A. Friiggeri, S. Shinkai, Organic templates for the generation</p> <p>of inorganic materials, Angew. Chem. Int. Ed. 42 (2003) 980&ndash;999.</p> <p>[8] A. Bexryadin, C.N. Lau,M. Tinkham, Quantum suppression of superconductivity</p> <p>in ultrathin nanowires, Nature 404 (2000) 971&ndash;974.</p> <p>[9] S. Hrapovic, Y. Liu, K.B. Male, J.H.T. Luong, Electrochemical biosensing platforms</p> <p>using platinum nanoparticles and carbon nanotubes, Anal. Chem. 76 (2004)</p> <p>1083&ndash;1088.</p> <p>[10] D. Wang, Z.C. Li, L.W. Chen, Templated synthesis of single-walled carbon nanotube</p> <p>and metal nanoparticle assemblies in solution, J. Am. Chem. Soc. 128</p> <p>(2006) 15078&ndash;15079.</p> <p>[11] S.I. Cha, K.T. Kim, S.N. Arshad, C.B. Mo, S.H. Hong, Extraordinary strengthening</p> <p>effect of carbon nanotubes in metal-matrix nanocomposites processed by</p> <p>molecular-level mixing, Adv. Mater. 11 (2005) 1377&ndash;1381.</p> <p>[12] J.H. Zhan, Y. Bando, J.Q. Hu, F.F. Xu, D. Golberg, Unconventional gallium oxide</p> <p>nanowires, Small 1 (2005) 883&ndash;888.</p> <p>[13] J. Li, Y. Lu, Q. Ye, M. Cinke, J. Han, M. Meyyappan, Carbon nanotube sensors for</p> <p>gas and organic vapor detection, Nano. Lett. 3 (2003) 929&ndash;933.</p> <p>[14] Y.J. Lu, J. Li, J. Han, H.-T. Ng, C. Binder,C. Partridge,M.Meyyappan,Roomtemperaturemethane</p> <p>detection using palladium loaded single-walled carbon nanotube</p> <p>sensors, Chem. Phys. Lett. 391 (2004) 344&ndash;348.</p> <p>[15] R.K. Roy, M.P. Chowdhury, A.K. Pal, Room temperature sensor based on carbon</p> <p>nanotubes and nanofibres for methane detection, Vacuum 77 (2005)</p> <p>223&ndash;229.</p> <p>[16] G. Casalbore-Miceli, A. Zanelli, A. Geri, M.C. Gallazzi, Amethane sensor based on</p> <p>poly(3_,4_-Dihexyl-4,4__-bis(pentyloxy)-2,2_:5_,2__-terthiophene), Collect. Czech.</p> <p>Chem. Commun. 68 (2003) 1736&ndash;1744.</p> <p>[17] Zhongping Li <sup>a</sup>,Junfen Li <sup>a</sup>,Xu Wu <sup>b</sup>,Shaomin Shuang<sup>a</sup>,Cuan Dong<sup>a,*</sup>,Martin M.F.Choi<sup>c,**</sup>,</p> <p>Methane sensor based on nanocomposite of palladium/multi-walled carbon nanotubes grafted with 1.6-hexanediamine,</p> <p>Sensors and Actuators B 139(2009)453-459,</p> <p>Journal homepage:www.elsevier.com/locate/snb</p> <p>[18] S. Yang, X. Zhang, H. Mi, X. Ye, Pd nanoparticles supported on functionalized</p> <p>multi-walled carbon nanotubes (MWNTs) and electrooxidation for formic acid,</p> <p>J. Power Sources 175 (2008) 26&ndash;32.</p> <p>[19] H. Hu, Y. Ni, V. Montana, R.C. Haddon, V. Parpura, Chemically functionalized carbon</p> <p>nanotubes as substrates for neuronal growth, Nano. Lett. 4 (2004) 507&ndash;511.</p> <p>[20] Y. Wang, I. Zafar, S.V. Malhotra, Functionalization of carbon nanotubes with</p> <p>amines and enzymes, Chem. Phys. Lett. 402 (2005) 96&ndash;101.</p> <p>[21] C. Zhao, L. Ji, H. Liu, G. Hu, S. Zhang, M. Yang, Z. Yang, Functionalized carbon</p> <p>nanotubes containing isocyanate groups, J. Solid State Chem. 177 (2004)</p> <p>4394&ndash;4398.</p> <p>[22] Y. Song,A.S. Harper,R.W.Murray, Ligand heterogeneity on monolayer-protected</p> <p>gold clusters, Langmuir 21 (2005) 5492&ndash;5500.</p> <p>[23] B.K. Jena, C.R. Raj, Synthesis of flower-like gold nanoparticles and their electrocatalytic</p> <p>activity towards the oxidation of methanol and the reduction of</p> <p>oxygen, Langmuir 23 (2007) 4064&ndash;4070.</p> <p>[24] V.R. Shinde, T.P. Gujar, C.D. Lokhande, Enhanced response of porous ZnO</p> <p>nanobeads towards LPG: effect of Pd sensitization, Sens. Actuators B 123 (2007)</p> <p>701&ndash;706.</p> <p>[25] S.W. Hla, P. Lacovig, G. Comelli, A. Baraldi, M. Kiskinova, R. Rosei, Orientational</p> <p>anisotropy inoxygendissociationonRh(110),Phys.Rev,B60 (1999) 7800&ndash;7803.</p> <p>[26] P.K. Basu, P. Bhattacharyya, N. Saha, H. Saha, S. Basu, The superior performance of</p> <p>the electrochemically grown ZnO thin films as methane sensor, Sens. Actuators</p> <p>B 133 (2008) 357&ndash;363.</p> <p>[27] E.C.Walter, F. Favier, R.M. Penner, Palladium mesowire arrays for fast hydrogen</p> <p>sensors and hydrogen-actuated switches, Anal. Chem. 74 (2002) 1546&ndash;1553.</p> <p>[28] F.J. Ibanez, F.P. Zamborini, Reactivity of hydrogen with solid-state films of</p> <p>alkylamine and tetraoctylammonium bromide-stabilized Pd, PdAg, and PdAu</p> <p>nanoparticles for sensing and catalysis applications, J. Am. Chem. Soc. 130</p> <p>(2008) 622&ndash;633.</p> <p>[29] O.K. Varghese, P.D. Kichambre, D. Gong, K.G. Ong, E.C. Dickey, C.A. Grimes, Gas</p> <p>sensing characteristics of multi-wall carbon nanotubes, Sens. Actuators B 81</p> <p>(2001) 32&ndash;41.</p> <p>[30] J. Suehiro, S.-I. Hidaka, S. Yamane, K. Imasaka, Fabrication of interfaces between</p> <p>carbon nanotubes and catalytic palladium using dielectrophoresis and its application</p> <p>to hydrogen gas sensor, Sens. Actuators B 127 (2007) 505&ndash;511.</p> <p>[31] X. Chen, Z. Guo, J. Huang, F. Meng, M. Zhang, J. Liu, Fabrication of gas ionization</p> <p>sensors using well-aligned MWNT arrays grown in porous AAO templates,</p> <p>Colloids and Surfaces A: Physicochem. Eng. Aspects 313&ndash;314 (2008) 355&ndash;358.</p> <p>[32] M. Arab, F. Berger, F. Picaud, C. Ramseyer, J. Glory, M. Mayne-L&rsquo;Hermite, Direct</p> <p>growth of the multi-walled carbon nanotubes as a tool to detect ammonia at</p> <p>room temperature, Chem. Phys. Lett. 433 (2006) 175&ndash;181.</p> <p>[33] P.K.Basu,P.Bhattachayya,N.Saha,H.Saha,S.Basu.</p> <p>-The superior&nbsp; performance of the electrochemically grown ZnO thin films as methane sensor.</p> <p>Sensors and Actuators B:Chemical,xxx,&Atilde;.1-7,2008.</p> <p>[34] S.Chakraborty,A.Sen,H.S.Maiti.-Selective detection &ucirc;<span dir="RTL">&lrm;</span>f methane and butane by temperature modulation in iron doped tin oxide sensors.Sensors and Actuators,B115, &Atilde;.610-613,2006.</p> <p>&nbsp;</p> description_2 <p>ԲՈՎԱՆԴԱԿՈՒԹՅՈՒՆ</p> <p>&nbsp;</p> <p>Ներածություն</p> <p>Գրականության տեսություն</p> <p>Փորձարարական մաս</p> <p>1.Թիրախի պատրաստումը</p> <p>&nbsp;2.Թաղանթների ստացումը</p> <p>3.Կառուցվածքների զգայունության չափումը</p> <p>Օգտագործված գրականության ցանկ</p> <p>&nbsp;</p> title_arm Թիրախի պատրաստումը title_eng convertot_1 Tiraxi patrastum@ convertot_2 Tiraxi patrastum@ convertot_3 Tiraxi patrastum@ convertot_4 Tiraxi patrastum@ convertot_5 Tiraxi patrastum@ convertot_6 Tiraxi patrastumy convertot_7 Tirakhi patrastum@ convertot_8 Tiraxi patrastum@ convertot_9 Tiraxi patrastum@ convertot_10 Tirakhi patrastumy convertot_11 Tiraxi patrastum@ convertot_13 Tiraxi patrastum@ convertot_14 Tiraxi patrastum@ convertot_15 Tiraxi patrastum@ convertot_16 Tiraxi patrastym@ convertot_17 Tiraxi patrastum@ convertot_18 Tiraxi patrastum@