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1
Formation process of tungsten nanostructure by the exposure to helium plasma under fusion relevant plasma conditions
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Formation process of tungsten nanostructure by the exposure to helium plasma under fusion relevant plasma conditions

Nuclear fusion, 2009-09, Vol.49 (9), p.095005-095005 (6) [Peer Reviewed Journal]

ISSN: 0029-5515 ;EISSN: 1741-4326 ;DOI: 10.1088/0029-5515/49/9/095005

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2
Growth of multifractal tungsten nanostructure by He bubble induced directional swelling
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Growth of multifractal tungsten nanostructure by He bubble induced directional swelling

New journal of physics, 2015-04, Vol.17 (4), p.43038 [Peer Reviewed Journal]

2015 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft ;2015. This work is published under http://creativecommons.org/licenses/by/3.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. ;ISSN: 1367-2630 ;EISSN: 1367-2630 ;DOI: 10.1088/1367-2630/17/4/043038 ;CODEN: NJOPFM

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3
Helium plasma implantation on metals: Nanostructure formation and visible-light photocatalytic response
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Helium plasma implantation on metals: Nanostructure formation and visible-light photocatalytic response

Journal of applied physics, 2013-04, Vol.113 (13) [Peer Reviewed Journal]

ISSN: 0021-8979 ;EISSN: 1089-7550 ;DOI: 10.1063/1.4798597

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4
Sub-ms laser pulse irradiation on tungsten target damaged by exposure to helium plasma
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Sub-ms laser pulse irradiation on tungsten target damaged by exposure to helium plasma

Nuclear fusion, 2007-09, Vol.47 (9), p.1358-1366 [Peer Reviewed Journal]

2007 INIST-CNRS ;ISSN: 0029-5515 ;EISSN: 1741-4326 ;DOI: 10.1088/0029-5515/47/9/038 ;CODEN: NUFUAU

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5
Arcing on tungsten subjected to helium and transients: ignition conditions and erosion rates
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Arcing on tungsten subjected to helium and transients: ignition conditions and erosion rates

Plasma physics and controlled fusion, 2012-03, Vol.54 (3), p.35009 [Peer Reviewed Journal]

2012 IOP Publishing Ltd ;ISSN: 0741-3335 ;EISSN: 1361-6587 ;DOI: 10.1088/0741-3335/54/3/035009 ;CODEN: PLPHBZ

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6
Tungsten Large-Scale Fiberform Nanostructures Retained under High Temperature Conditions
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Tungsten Large-Scale Fiberform Nanostructures Retained under High Temperature Conditions

Plasma and Fusion Research, 2021/01/12, Vol.16, pp.1206001-1206001 [Peer Reviewed Journal]

2021 by The Japan Society of Plasma Science and Nuclear Fusion Research ;Copyright Japan Science and Technology Agency 2021 ;ISSN: 1880-6821 ;EISSN: 1880-6821 ;DOI: 10.1585/pfr.16.1206001

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7
Microstructure and Retention in He-W Co-Deposition Layer
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Microstructure and Retention in He-W Co-Deposition Layer

Plasma and Fusion Research, 2020/02/17, Vol.15, pp.1201004-1201004 [Peer Reviewed Journal]

2020 by The Japan Society of Plasma Science and Nuclear Fusion Research ;Copyright Japan Science and Technology Agency 2020 ;ISSN: 1880-6821 ;EISSN: 1880-6821 ;DOI: 10.1585/pfr.15.1201004

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8
Surface morphology in tungsten and RAFM steel exposed to helium plasma in PSI-2
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Surface morphology in tungsten and RAFM steel exposed to helium plasma in PSI-2

Physica scripta, 2017-11, Vol.T170 [Peer Reviewed Journal]

Distributed under a Creative Commons Attribution 4.0 International License ;ISSN: 0031-8949 ;EISSN: 1402-4896 ;DOI: 10.1088/1402-4896/aa93a2

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9
Growth of membrane nanostructures on W co-deposition layer
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Growth of membrane nanostructures on W co-deposition layer

Nuclear materials and energy, 2019-01, Vol.18, p.339-344 [Peer Reviewed Journal]

2019 The Authors ;ISSN: 2352-1791 ;EISSN: 2352-1791 ;DOI: 10.1016/j.nme.2019.02.004

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10
Tungsten fuzz: Deposition effects and influence to fusion devices
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Tungsten fuzz: Deposition effects and influence to fusion devices

Nuclear materials and energy, 2020-12, Vol.25, p.100828, Article 100828 [Peer Reviewed Journal]

2020 The Authors ;ISSN: 2352-1791 ;EISSN: 2352-1791 ;DOI: 10.1016/j.nme.2020.100828

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11
Evaluation of hydrogen retention behavior in tungsten exposed to hydrogen plasma in QUEST
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Evaluation of hydrogen retention behavior in tungsten exposed to hydrogen plasma in QUEST

Nuclear materials and energy, 2021-03, Vol.26, p.100856, Article 100856 [Peer Reviewed Journal]

2020 ;ISSN: 2352-1791 ;EISSN: 2352-1791 ;DOI: 10.1016/j.nme.2020.100856

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12
Extension of Operation Region for Steady State Operation on QUEST by Integrated Control with Hot Walls
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Extension of Operation Region for Steady State Operation on QUEST by Integrated Control with Hot Walls

Plasma and Fusion Research, 2021/03/12, Vol.16, pp.2402034-2402034 [Peer Reviewed Journal]

2021 by The Japan Society of Plasma Science and Nuclear Fusion Research ;ISSN: 1880-6821 ;EISSN: 1880-6821 ;DOI: 10.1585/pfr.16.2402034

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13
Review of recent works in development and evaluation of high-Z plasma facing materials
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Article
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Review of recent works in development and evaluation of high-Z plasma facing materials

Journal of nuclear materials, 1999-03, Vol.266 (1-3), p.197-206 [Peer Reviewed Journal]

1999 Elsevier Science B.V. ;ISSN: 0022-3115 ;EISSN: 1873-4820 ;DOI: 10.1016/S0022-3115(98)00817-4

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14
In Situ TEM Observation of Helium Bubbles Collapsing on Nanostructured Tungsten during Annealing
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In Situ TEM Observation of Helium Bubbles Collapsing on Nanostructured Tungsten during Annealing

Plasma and Fusion Research, 2016/12/26, Vol.11, pp.1206125-1206125 [Peer Reviewed Journal]

2016 by The Japan Society of Plasma Science and Nuclear Fusion Research ;Copyright Japan Science and Technology Agency 2016 ;ISSN: 1880-6821 ;EISSN: 1880-6821 ;DOI: 10.1585/pfr.11.1206125

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15
A TEM Investigation of Crack Formation Mechanism on Chrome-Molybdenum Steel Tested under Real Driving Conditions
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A TEM Investigation of Crack Formation Mechanism on Chrome-Molybdenum Steel Tested under Real Driving Conditions

Tribology transactions, 2013-11, Vol.56 (6), p.897-907 [Peer Reviewed Journal]

Kenji Matsumoto, Hideo Watanabe, and Naoaki Yoshida 2013 ;ISSN: 1040-2004 ;EISSN: 1547-397X ;DOI: 10.1080/10402004.2013.783660

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16
Dust Formation from Arc Spots on Nanostructured Tungsten Surface
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Article
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Dust Formation from Arc Spots on Nanostructured Tungsten Surface

Plasma and Fusion Research, 2020/08/06, Vol.15, pp.1205061-1205061 [Peer Reviewed Journal]

2020 by The Japan Society of Plasma Science and Nuclear Fusion Research ;Copyright Japan Science and Technology Agency 2020 ;ISSN: 1880-6821 ;EISSN: 1880-6821 ;DOI: 10.1585/pfr.15.1205061

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17
Measurement of Dynamic Retention with Fast Ejecting System of Targeted Sample (FESTA)
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Measurement of Dynamic Retention with Fast Ejecting System of Targeted Sample (FESTA)

Plasma and Fusion Research, 2020/04/06, Vol.15, pp.2402013-2402013 [Peer Reviewed Journal]

2020 by The Japan Society of Plasma Science and Nuclear Fusion Research ;ISSN: 1880-6821 ;EISSN: 1880-6821 ;DOI: 10.1585/pfr.15.2402013

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18
Deuterium retention behavior in simultaneously He+–D2+ implanted tungsten
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Article
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Deuterium retention behavior in simultaneously He+–D2+ implanted tungsten

Nuclear materials and energy, 2018-08, Vol.16, p.76-81 [Peer Reviewed Journal]

2018 ;ISSN: 2352-1791 ;EISSN: 2352-1791 ;DOI: 10.1016/j.nme.2018.06.012

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19
Nanostructure Growth on Rhodium/Ruthenium by the Exposure to He Plasma
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Article
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Nanostructure Growth on Rhodium/Ruthenium by the Exposure to He Plasma

Plasma and Fusion Research, 2018/06/12, Vol.13, pp.3406065-3406065 [Peer Reviewed Journal]

2018 by The Japan Society of Plasma Science and Nuclear Fusion Research ;ISSN: 1880-6821 ;EISSN: 1880-6821 ;DOI: 10.1585/pfr.13.3406065

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20
Surface or bulk He existence effect on deuterium retention in Fe ion damaged W
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Surface or bulk He existence effect on deuterium retention in Fe ion damaged W

Nuclear materials and energy, 2018-08, Vol.16 (C), p.217-220 [Peer Reviewed Journal]

2018 ;ISSN: 2352-1791 ;EISSN: 2352-1791 ;DOI: 10.1016/j.nme.2018.06.018

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