InSn plasma penetration through protective single-walled carbon nanotube-based membranes

Author:

Gubarev V.12ORCID,Krivokorytov M.2ORCID,Ramirez Benavides J. A.3,Krivtsun V.2,Ivanov V.2ORCID,Medvedev V.12ORCID,Pal A.3ORCID,Krasnikov D.3ORCID,Nasibulin A.34ORCID

Affiliation:

1. Moscow Institute of Physics and Technology (State University), Dolgoprudny 141701, Russia

2. Institute of Spectroscopy of the Russian Academy of Science, Troitsk 108840, Russia

3. Skolkovo Institute of Science and Technology, Moscow 121205, Russia

4. School of Chemical Engineering, Aalto University, Espoo 02150, Finland

Abstract

Laser-produced plasma sources of short-wavelength (1–20-nm) radiation are actively used nowadays in numerous applications, including water-window microscopy and extreme ultra-violet lithography. Suppression of laser-plasma debris (responsible for damaging optics) is crucial for the lifetime prolongation of optical systems operated with the short-wavelength radiation. Here, we examine the capability of single-walled carbon nanotube (SWCNT)-based membranes to decrease an InSn plasma flux containing both ions and atoms. Faraday cup measurements show that 40- and 90-nm-thick SWCNT membranes reduce the total charge transition by 20 and 130 times, respectively. The ion analyzer measurements demonstrate that ions pass through the membrane mainly due to the collisionless (ballistic) mechanism. Using scanning electron microscopy, we estimate a decrease in a plasma (ions + atoms) flux to be of 18 and 140 times for 40- and 90-nm-thick SWCNT-based membranes, respectively. The average plasma flux attenuation coefficient of SWCNT membranes is calculated as k = 0.063 [Formula: see text].

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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