Helium plasma induced nanostructure formation in copper and nickel
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Thompson, M.
[1
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Song, K.
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Australian Natl Univ, Res Sch Phys & Engn, Plasma Res Lab, Canberra, ACT, AustraliaAustralian Natl Univ, Res Sch Phys & Engn, Plasma Res Lab, Canberra, ACT, Australia
Song, K.
[1
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Kluth, P.
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Kirby, N.
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Australian Synchrotron, 800 Blackburn Rd, Clayton, Vic 3168, AustraliaAustralian Natl Univ, Res Sch Phys & Engn, Plasma Res Lab, Canberra, ACT, Australia
Kirby, N.
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Corr, C. S.
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Australian Natl Univ, Res Sch Phys & Engn, Plasma Res Lab, Canberra, ACT, AustraliaAustralian Natl Univ, Res Sch Phys & Engn, Plasma Res Lab, Canberra, ACT, Australia
Corr, C. S.
[1
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[1] Australian Natl Univ, Res Sch Phys & Engn, Plasma Res Lab, Canberra, ACT, Australia
[2] Australian Natl Univ, Res Sch Phys & Engn, Dept Elect Mat Engn, Canberra, ACT, Australia
[3] Australian Synchrotron, 800 Blackburn Rd, Clayton, Vic 3168, Australia
Copper and nickel samples were exposed to helium plasma to investigate surface nanostructure formation and associated helium nano-bubble growth. Plasma fluences from 3.9 x 10(23) He m(-2) to 3.1 x 10(24) He m(-2) were used for this study. For copper with an unpolished surface finish 50-100 nm wide nanoscale pillars were formed, with more complex structures observed at higher plasma fluences. This is due to the uneven topography providing nucleation sites that stabilises the growth of these features. For polished copper surfaces nano-scale pillars formed on some crystal grains but not others, indicating strong crystal orientation effects on nano-structure formation. The formation of nano-scale islands and pillars was also observed in both polished and unpolished nickel samples, with nano-structure formation occurring across all crystal grains. Nanostructures that formed on nickel samples exposed to helium plasma at controlled temperatures from 200 degrees C to 325 degrees C showed significant sensitivity to the sample temperature. Dense fields of 50 nm diameter nanostructures formed at 300 degrees C, larger but sparse nanostructures formed at 325 degrees C, and little change was observed at and below 250 degrees C. Sub-surface helium bubbles were measured and displayed similar sizes for bubbles formed in both copper and nickel samples.
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Dutch Institute for Fundamental Energy Research (DIFFER), De Zaale 20, Eindhoven
Inorganic Membranes and Membrane Reactors, Sustainable Process Engineering, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, De Rondom 70, EindhovenDutch Institute for Fundamental Energy Research (DIFFER), De Zaale 20, Eindhoven
Ranade A.
Feng S.
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Division of Electrical, Electronic and Information Engineering, Yamaguchi University, UbeDutch Institute for Fundamental Energy Research (DIFFER), De Zaale 20, Eindhoven
Feng S.
Kajita S.
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Graduate School of Frontier Sciences, The University of Tokyo, 5-1-5 Kashiwanoha, Chiba, KashiwaDutch Institute for Fundamental Energy Research (DIFFER), De Zaale 20, Eindhoven
Kajita S.
Tsampas M.N.
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Dutch Institute for Fundamental Energy Research (DIFFER), De Zaale 20, EindhovenDutch Institute for Fundamental Energy Research (DIFFER), De Zaale 20, Eindhoven
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Purdue Univ, Sch Nucl Engn, Ctr Mat Extreme Environm CMUXE, W Lafayette, IN 47907 USAPurdue Univ, Sch Nucl Engn, Ctr Mat Extreme Environm CMUXE, W Lafayette, IN 47907 USA
Al-Ajlony, A.
Tripathi, J. K.
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Purdue Univ, Sch Nucl Engn, Ctr Mat Extreme Environm CMUXE, W Lafayette, IN 47907 USAPurdue Univ, Sch Nucl Engn, Ctr Mat Extreme Environm CMUXE, W Lafayette, IN 47907 USA
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Nagoya Univ, Grad Sch Engn, Nagoya, Aichi, JapanAustralian Natl Univ, Res Sch Phys, Dept Elect Mat Engn, Canberra, ACT 2601, Australia
Shi, Quan
Kajita, Shin
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Nagoya Univ, Inst Mat & Syst Sustainabil, Nagoya, Aichi, JapanAustralian Natl Univ, Res Sch Phys, Dept Elect Mat Engn, Canberra, ACT 2601, Australia
Kajita, Shin
Ohno, Noriyasu
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Nagoya Univ, Grad Sch Engn, Nagoya, Aichi, JapanAustralian Natl Univ, Res Sch Phys, Dept Elect Mat Engn, Canberra, ACT 2601, Australia