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Items: 1 to 20 of 99

1.

Macroscopic transport of mega-ampere electron currents in aligned carbon-nanotube arrays.

Chatterjee G, Singh PK, Ahmed S, Robinson AP, Lad AD, Mondal S, Narayanan V, Srivastava I, Koratkar N, Pasley J, Sood AK, Kumar GR.

Phys Rev Lett. 2012 Jun 8;108(23):235005. Epub 2012 Jun 8.

PMID:
23003966
2.

High-resolution measurements of the spatial and temporal evolution of megagauss magnetic fields created in intense short-pulse laser-plasma interactions.

Chatterjee G, Singh PK, Adak A, Lad AD, Kumar GR.

Rev Sci Instrum. 2014 Jan;85(1):013505. doi: 10.1063/1.4861535.

PMID:
24517763
3.

Micron-scale mapping of megagauss magnetic fields using optical polarimetry to probe hot electron transport in petawatt-class laser-solid interactions.

Chatterjee G, Singh PK, Robinson APL, Blackman D, Booth N, Culfa O, Dance RJ, Gizzi LA, Gray RJ, Green JS, Koester P, Kumar GR, Labate L, Lad AD, Lancaster KL, Pasley J, Woolsey NC, Rajeev PP.

Sci Rep. 2017 Aug 21;7(1):8347. doi: 10.1038/s41598-017-08619-1.

4.

Dynamic control over mega-ampere electron currents in metals using ionization-driven resistive magnetic fields.

Sentoku Y, d'Humières E, Romagnani L, Audebert P, Fuchs J.

Phys Rev Lett. 2011 Sep 23;107(13):135005. Epub 2011 Sep 23.

PMID:
22026865
5.

Effect of target material on fast-electron transport and resistive collimation.

Chawla S, Wei MS, Mishra R, Akli KU, Chen CD, McLean HS, Morace A, Patel PK, Sawada H, Sentoku Y, Stephens RB, Beg FN.

Phys Rev Lett. 2013 Jan 11;110(2):025001. Epub 2013 Jan 7.

PMID:
23383907
6.

Dynamics of self-generated, large amplitude magnetic fields following high-intensity laser matter interaction.

Sarri G, Macchi A, Cecchetti CA, Kar S, Liseykina TV, Yang XH, Dieckmann ME, Fuchs J, Galimberti M, Gizzi LA, Jung R, Kourakis I, Osterholz J, Pegoraro F, Robinson AP, Romagnani L, Willi O, Borghesi M.

Phys Rev Lett. 2012 Nov 16;109(20):205002. Epub 2012 Nov 13.

PMID:
23215496
7.

Tunable mega-ampere electron current propagation in solids by dynamic control of lattice melt.

MacLellan DA, Carroll DC, Gray RJ, Booth N, Burza M, Desjarlais MP, Du F, Neely D, Powell HW, Robinson AP, Scott GG, Yuan XH, Wahlström CG, McKenna P.

Phys Rev Lett. 2014 Oct 31;113(18):185001. Epub 2014 Oct 31.

8.

Super-long aligned TiO2/carbon nanotube arrays.

Zhao Y, Hu Y, Li Y, Zhang H, Zhang S, Qu L, Shi G, Dai L.

Nanotechnology. 2010 Dec 17;21(50):505702. doi: 10.1088/0957-4484/21/50/505702. Epub 2010 Nov 22.

PMID:
21098930
9.

Collimated Propagation of Fast Electron Beams Accelerated by High-Contrast Laser Pulses in Highly Resistive Shocked Carbon.

Vaisseau X, Morace A, Touati M, Nakatsutsumi M, Baton SD, Hulin S, Nicolaï P, Nuter R, Batani D, Beg FN, Breil J, Fedosejevs R, Feugeas JL, Forestier-Colleoni P, Fourment C, Fujioka S, Giuffrida L, Kerr S, McLean HS, Sawada H, Tikhonchuk VT, Santos JJ.

Phys Rev Lett. 2017 May 19;118(20):205001. doi: 10.1103/PhysRevLett.118.205001. Epub 2017 May 19.

PMID:
28581770
10.

Fast advection of magnetic fields by hot electrons.

Willingale L, Thomas AG, Nilson PM, Kaluza MC, Bandyopadhyay S, Dangor AE, Evans RG, Fernandes P, Haines MG, Kamperidis C, Kingham RJ, Minardi S, Notley M, Ridgers CP, Rozmus W, Sherlock M, Tatarakis M, Wei MS, Najmudin Z, Krushelnick K.

Phys Rev Lett. 2010 Aug 27;105(9):095001. Epub 2010 Aug 24.

PMID:
20868167
11.

Anisotropic thermal diffusivity characterization of aligned carbon nanotube-polymer composites.

Borca-Tasciuc T, Mazumder M, Son Y, Pal SK, Schadler LS, Ajayan PM.

J Nanosci Nanotechnol. 2007 Apr-May;7(4-5):1581-8.

PMID:
17450929
12.

Topology of megagauss magnetic fields and of heat-carrying electrons produced in a high-power laser-solid interaction.

Lancia L, Albertazzi B, Boniface C, Grisollet A, Riquier R, Chaland F, Le Thanh KC, Mellor P, Antici P, Buffechoux S, Chen SN, Doria D, Nakatsutsumi M, Peth C, Swantusch M, Stardubtsev M, Palumbo L, Borghesi M, Willi O, Pépin H, Fuchs J.

Phys Rev Lett. 2014 Dec 5;113(23):235001. Epub 2014 Dec 2.

PMID:
25526131
13.

Laser-generated ultrashort multimegagauss magnetic pulses in plasmas.

Sandhu AS, Dharmadhikari AK, Rajeev PP, Kumar GR, Sengupta S, Das A, Kaw PK.

Phys Rev Lett. 2002 Nov 25;89(22):225002. Epub 2002 Nov 11.

PMID:
12485075
14.

Laser-assisted simultaneous transfer and patterning of vertically aligned carbon nanotube arrays on polymer substrates for flexible devices.

In JB, Lee D, Fornasiero F, Noy A, Grigoropoulos CP.

ACS Nano. 2012 Sep 25;6(9):7858-66. Epub 2012 Aug 21.

PMID:
22881148
15.

Mapping the Damping Dynamics of Mega-Ampere Electron Pulses Inside a Solid.

Shaikh M, Lad AD, Birindelli G, Pepitone K, Jha J, Sarkar D, Tata S, Chatterjee G, Dey I, Jana K, Singh PK, Tikhonchuk VT, Rajeev PP, Kumar GR.

Phys Rev Lett. 2018 Feb 9;120(6):065001. doi: 10.1103/PhysRevLett.120.065001.

PMID:
29481271
16.

Flux-dependent growth kinetics and diameter selectivity in single-wall carbon nanotube arrays.

Geohegan DB, Puretzky AA, Jackson JJ, Rouleau CM, Eres G, More KL.

ACS Nano. 2011 Oct 25;5(10):8311-21. doi: 10.1021/nn2030397. Epub 2011 Sep 15.

PMID:
21916517
17.

Visible light photoelectrochemical performance of W-loaded TiO2 nanotube arrays: structural properties.

Lai CW, Sreekantan S.

J Nanosci Nanotechnol. 2012 Apr;12(4):3170-4.

PMID:
22849082
18.

The evolution of well-aligned amorphous carbon nanotubes and porous ZnO/C core-shell nanorod arrays for photosensor applications.

Wang RC, Hsu CC, Chen SJ.

Nanotechnology. 2011 Jan 21;22(3):035704. doi: 10.1088/0957-4484/22/3/035704. Epub 2010 Dec 9.

PMID:
21149959
19.

Ultrahigh-current field emission from sandwich-grown well-aligned uniform multi-walled carbon nanotube arrays with high adherence strength.

Chen Z, Zhang Q, Lan P, Zhu B, Yu T, Cao G, Engelsen Dd.

Nanotechnology. 2007 Jul 4;18(26):265702. doi: 10.1088/0957-4484/18/26/265702. Epub 2007 Jun 5.

PMID:
21730406
20.

Direct, absolute, and in situ measurement of fast electron transport via Cherenkov emission.

Habara H, Ohta K, Tanaka KA, Kumar GR, Krishnamurthy M, Kahaly S, Mondal S, Bhuyan MK, Rajeev R, Zheng J.

Phys Rev Lett. 2010 Feb 5;104(5):055001. Epub 2010 Feb 3.

PMID:
20366770

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