Influence of power-dependent Argon gas plasma treatment on the electron field emission properties of carbon nanotube field-emitters
暂无分享,去创建一个
M. Sadiq | M. Zulfequar | J. Ali | S. Husain | M. Raza | Samina Husain
[1] Mengming Michael Dong,et al. Field emission enhancement from directly grown N-doped carbon nanotubes on stainless steel substrates , 2022, Vacuum.
[2] M. Sadiq,et al. Time-dependent resonating plasma treatment of carbon nanotubes for enhancing the electron field emission properties , 2021, Journal of Materials Science: Materials in Electronics.
[3] H. Pang,et al. Rational Design and General Synthesis of Multimetallic Metal–Organic Framework Nano‐Octahedra for Enhanced Li–S Battery , 2021, Advanced materials.
[4] Xuecheng Yan,et al. Defective carbon-based materials: controllable synthesis and electrochemical applications , 2021, EnergyChem.
[5] Dongdong Liang,et al. Highly enhanced field emission properties of a carbon nanotube cathode on a titanium alloy substrate modified by alkali , 2021 .
[6] M. Sadiq,et al. Surface modification via silver nanoparticles attachment: An ex-situ approach for enhancing the electron field emission properties of CNT field emitters , 2021 .
[7] K. Jungjohann,et al. Direct synthesis of micropillars of vertically aligned carbon nanotubes on stainless-steel and their excellent field emission properties , 2021 .
[8] M. Husain,et al. A single step in-situ process for improvement in electron emission properties of surface-modified carbon nanotubes (CNTs): Titanium dioxide nanoparticles attachment , 2020 .
[9] M. Husain,et al. Enhancement of Electron Emission Properties of Carbon Nanotubes by the Decoration with Low Work Function Metal Oxide Nanoparticles. , 2020, Journal of nanoscience and nanotechnology.
[10] Jung Su Kang,et al. Water vapor-induced structure modification of vertically-aligned carbon nanotube arrays and successive thin film coating for enhanced field emission properties , 2020 .
[11] Somnath Ghosh,et al. Highly enhanced field emission from copper oxide nanoparticle decorated vertically aligned carbon nanotubes: Role of interfacial electronic structure , 2020 .
[12] Jing Guo,et al. Density control of vertically aligned carbon nanotubes and its effect on field emission properties , 2020 .
[13] K. Jungjohann,et al. Improving field emission properties of vertically aligned carbon nanotube arrays through a structure modification , 2019, Journal of Materials Science.
[14] Xiao Hui Yang,et al. Observation of field emission from carbon nanoparticles film coating on top of vertically aligned carbon nanotubes on silicon substrate , 2019, Vacuum.
[15] H. Pang,et al. Carbon nanotube-based materials for lithium–sulfur batteries , 2019, Journal of Materials Chemistry A.
[16] R. Forbes. Comments on the continuing widespread and unnecessary use of a defective emission equation in field emission related literature , 2019, Journal of Applied Physics.
[17] B. Tay,et al. Enhanced field emission properties of carbon nanotube films using densification technique , 2017, Applied Surface Science.
[18] Pankaj Srivastava,et al. Field emission properties of indium-decorated vertically aligned carbon nanotubes: an interplay between type of hybridization, density of states and metal thickness , 2018, Applied Physics A.
[19] G. Luongo,et al. Field Emission from Carbon Nanostructures , 2018 .
[20] B. K. Gupta,et al. High-performance field emission device utilizing vertically aligned carbon nanotubes-based pillar architectures , 2018 .
[21] M. A. Alvi,et al. Field emission studies of CNTs/ZnO nanostructured thin films for display devices , 2017 .
[22] I. Lahiri,et al. Field emission response from multi-walled carbon nanotubes grown on electrochemically engineered copper foil , 2017 .
[23] C. Liao,et al. Densification effects of the carbon nanotube pillar array on field-emission properties , 2016 .
[24] J. Eckert,et al. Effect of substrate material on the growth and field emission characteristics of large-area carbon nanotube forests , 2016 .
[25] Lijing Han,et al. Enhanced Field-Emission Performance from Carbon Nanotube Emitters on Nickel Foam Cathodes , 2016, Journal of Electronic Materials.
[26] C. Liao,et al. Field-Emission Characteristics of the Densified Carbon Nanotube Pillars Array , 2016 .
[27] W. Lei,et al. High-current field-emission of carbon nanotubes and its application as a fast-imaging X-ray source , 2015 .
[28] S. S. Chopade,et al. Effect of substrate heating and microwave attenuation on the catalyst free growth and field emission of carbon nanotubes , 2015 .
[29] Jung Su Kang,et al. Enhanced and stable electron emission of carbon nanotube emitters with graphitization , 2015 .
[30] W. Su,et al. Field Emission Characteristics of the Structure of Vertically Aligned Carbon Nanotube Bundles , 2015, Nanoscale Research Letters.
[31] M. K. Tabatabaei,et al. Low-Temperature Preparation of a Carbon Nanotube–ZnO Hybrid on Glass Substrate for Field Emission Applications , 2015 .
[32] R. Murakami,et al. Field electron emission characteristics of plasma treated carbon nanotubes , 2015 .
[33] T. Feng,et al. All carbon nanotube based flexible field emission devices prepared through a film transfer method , 2015 .
[34] M. Khakani,et al. Field electron emission enhancement of graphenated MWCNTs emitters following their decoration with Au nanoparticles by a pulsed laser ablation process , 2015, Nanotechnology.
[35] Ravindra Kumar Sinha,et al. Field emission with ultralow turn on voltage from metal decorated carbon nanotubes. , 2014, ACS nano.
[36] K. Zheng,et al. Catalytic growth mechanism and catalyst effects on electron field emission of nitrogenated carbon nanorods formed by plasma-enhanced hot filament chemical vapor deposition , 2014 .
[37] P. Ajayan,et al. Enhanced field emission properties from CNT arrays synthesized on Inconel superalloy. , 2014, ACS applied materials & interfaces.
[38] S. Yu,et al. Field-emission performance and structural change mechanism of multiwalled carbon nanotubes by oxygen plasma treatment , 2013 .
[39] Santanu Ghosh,et al. High Stability Field Emission From Zinc Oxide Coated Multiwalled Carbon Nanotube Films , 2013, Advanced Materials Letters.
[40] W. Bahng,et al. Enhanced field-emission capacity by density control of a CNT cathode using post-plasma treatment , 2013 .
[41] S. Hussain,et al. Enhancement of the electrical properties of carbon nanotubes with Ar-N2 plasma treatment , 2013 .
[42] D. Basko,et al. Raman spectroscopy as a versatile tool for studying the properties of graphene. , 2013, Nature nanotechnology.
[43] Yoon-Ho Song,et al. A vacuum-sealed compact x-ray tube based on focused carbon nanotube field-emission electrons , 2013, Nanotechnology.
[44] Wenzhi Li,et al. An increase in the field emission from vertically aligned multiwalled carbon nanotubes caused by NH3 plasma treatment , 2013 .
[45] R. Forbes. Development of a simple quantitative test for lack of field emission orthodoxy , 2012, Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[46] Gon-Ho Kim,et al. Field emission characteristics of cone-shaped carbon-nanotube bundles fabricated using an oxygen plasma , 2012 .
[47] Harsh,et al. Improving the field emission of carbon nanotubes by lanthanum-hexaboride nano-particles decoration , 2012 .
[48] J. Shapter,et al. Improved field emission stability from single-walled carbon nanotubes chemically attached to silicon , 2012, Nanoscale Research Letters.
[49] James Alastair McLaughlin,et al. Oxygen plasma assisted end-opening and field emission enhancement in vertically aligned multiwall carbon nanotubes , 2012 .
[50] K. Ostrikov,et al. Enhancement of electron field emission of vertically aligned carbon nanotubes by nitrogen plasma treatment , 2011 .
[51] Gon-Ho Kim,et al. Mechanism of cone-shaped carbon nanotube bundle formation by plasma treatment , 2010 .
[52] Byeong-Joo Lee,et al. Structure modifications of vertically grown carbon nanotubes by plasma ion bombardment , 2010 .
[53] C. Chou,et al. Field emission characteristics of carbon nanotubes post-treated with high-density Ar plasma , 2010 .
[54] M. Meyyappan,et al. Carbon nanotube pillar arrays for achieving high emission current densities , 2009 .
[55] Yung-Ping Chang,et al. Plasma treatment effects on surface morphology and field emission characteristics of carbon nanotubes , 2009 .
[56] N. Marzari,et al. Uniaxial Strain in Graphene by Raman Spectroscopy: G peak splitting, Gruneisen Parameters and Sample Orientation , 2008, 0812.1538.
[57] Jin Jang,et al. Enhanced and stable electron emission of carbon nanotube emitter arrays by post-growth hydrofluoric acid treatment , 2009 .
[58] J. Deane,et al. Reformulation of the standard theory of Fowler–Nordheim tunnelling and cold field electron emission , 2007, Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[59] A. Ferrari,et al. Raman spectroscopy of graphene and graphite: Disorder, electron phonon coupling, doping and nonadiabatic effects , 2007 .
[60] R. Forbes. Simple good approximations for the special elliptic functions in standard Fowler-Nordheim tunneling theory for a Schottky-Nordheim barrier , 2006 .
[61] C. Sow,et al. Field emission properties of N2 and Ar plasma-treated multi-wall carbon nanotubes , 2005 .
[62] J. Ihm,et al. Electronic structure and the field emission mechanism of MgO-coated carbon nanotubes , 2003 .
[63] C. Zhi,et al. Enhanced field emission from carbon nanotubes by hydrogen plasma treatment , 2002 .
[64] C. Klinke,et al. Carbon nanotube films as electron field emitters , 2002 .
[65] Young Hee Lee,et al. The effect of gas adsorption on the field emission mechanism of carbon nanotubes. , 2002, Journal of the American Chemical Society.
[66] Gehan A. J. Amaratunga,et al. Field electron emission from individual carbon nanotubes of a vertically aligned array , 2002 .
[67] Sashiro Uemura,et al. Field emission from carbon nanotubes and its application to electron sources , 1999 .
[68] W. D. de Heer,et al. A Carbon Nanotube Field-Emission Electron Source , 1995, Science.
[69] T. Ichihashi,et al. Single-shell carbon nanotubes of 1-nm diameter , 1993, Nature.
[70] R. Fowler,et al. Electron Emission in Intense Electric Fields , 1928 .