Direct writing of gold nanostructures with an electron beam: On the way to pure nanostructures by combining optimized deposition with oxygen-plasma treatment

Domagoj Belić, Mostafa M. Shawrav, Emmerich Bertagnolli and Heinz D. Wanzenboeck
Beilstein J. Nanotechnol. 2017, 8, 2530–2543. https://doi.org/10.3762/bjnano.8.253

Supporting Information

Supporting Information File 1: Additional experimental data.
Format: PDF Size: 775.2 KB Download

Cite the Following Article

Direct writing of gold nanostructures with an electron beam: On the way to pure nanostructures by combining optimized deposition with oxygen-plasma treatment
Domagoj Belić, Mostafa M. Shawrav, Emmerich Bertagnolli and Heinz D. Wanzenboeck
Beilstein J. Nanotechnol. 2017, 8, 2530–2543. https://doi.org/10.3762/bjnano.8.253

How to Cite

Belić, D.; Shawrav, M. M.; Bertagnolli, E.; Wanzenboeck, H. D. Beilstein J. Nanotechnol. 2017, 8, 2530–2543. doi:10.3762/bjnano.8.253

Download Citation

Citation data can be downloaded as file using the "Download" button or used for copy/paste from the text window below.
Citation data in RIS format can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Zotero.

Presentation Graphic

Picture with graphical abstract, title and authors for social media postings and presentations.
Format: PNG Size: 1.3 MB Download

Citations to This Article

Up to 20 of the most recent references are displayed here.

Scholarly Works

  • Glessi, C.; Polman, F. A.; Hagen, C. W. Water-assisted purification during electron beam-induced deposition of platinum and gold. Beilstein journal of nanotechnology 2024, 15, 884–896. doi:10.3762/bjnano.15.73
  • Córdoba, R. Additive nanofabrication using focused ion and electron beams. Encyclopedia of Condensed Matter Physics; Elsevier, 2024; pp 448–464. doi:10.1016/b978-0-323-90800-9.00035-4
  • Gacka, E.; Pruchnik, B. C.; Tamulewicz-Szwajkowska, M.; Badura, D.; Rangelow, I.; Gotszalk, T. P. Fabrication of Focused Ion Beam-Deposited Nanowire Probes for Conductive Atomic Force Microscopy. Elsevier BV 2024. doi:10.2139/ssrn.4697037
  • Pintea, M.; Mason, N.; Peiró-Franch, A.; Clark, E.; Samanta, K.; Glessi, C.; Schmidtke, I. L.; Luxford, T. Dissociative electron attachment to gold(I)-based compounds: 4,5-dichloro-1,3-diethyl-imidazolylidene trifluoromethyl gold(I). Frontiers in chemistry 2023, 11, 1028008. doi:10.3389/fchem.2023.1028008
  • Winkler, R.; Brugger-Hatzl, M.; Seewald, L. M.; Kuhness, D.; Barth, S.; Mairhofer, T.; Kothleitner, G.; Plank, H. Additive Manufacturing of Co3Fe Nano-Probes for Magnetic Force Microscopy. Nanomaterials (Basel, Switzerland) 2023, 13, 1217. doi:10.3390/nano13071217
  • Seewald, L. M.; Sattelkow, J.; Brugger-Hatzl, M.; Kothleitner, G.; Frerichs, H.; Schwalb, C.; Hummel, S.; Plank, H. 3D Nanoprinting of All-Metal Nanoprobes for Electric AFM Modes. Nanomaterials (Basel, Switzerland) 2022, 12, 4477. doi:10.3390/nano12244477
  • Huth, M.; Porrati, F.; Barth, S. Living up to its potential—Direct-write nanofabrication with focused electron beams. Journal of Applied Physics 2021, 130, 170901. doi:10.1063/5.0064764
  • Yu, J.-C.; Abdel-Rahman, M. K.; Fairbrother, D. H.; McElwee-White, L. Charged Particle-Induced Surface Reactions of Organometallic Complexes as a Guide to Precursor Design for Electron- and Ion-Induced Deposition of Nanostructures. ACS applied materials & interfaces 2021, 13, 48333–48348. doi:10.1021/acsami.1c12327
  • Glessi, C.; Mahgoub, A.; Hagen, C. W.; Tilset, M. Gold(I) N-heterocyclic carbene precursors for focused electron beam-induced deposition. Beilstein journal of nanotechnology 2021, 12, 257–269. doi:10.3762/bjnano.12.21
  • Chien, M.-H.; Shawrav, M. M.; Hingerl, K.; Taus, P.; Schinnerl, M.; Wanzenboeck, H. D.; Schmid, S. Analysis of carbon content in direct-write plasmonic Au structures by nanomechanical scanning absorption microscopy. Journal of Applied Physics 2021, 129, 063105. doi:10.1063/5.0035234
  • Barth, S.; Huth, M.; Jungwirth, F. Precursors for direct-write nanofabrication with electrons. Journal of Materials Chemistry C 2020, 8, 15884–15919. doi:10.1039/d0tc03689g
  • Li, R.; Li, X.; Yang, P.-a.; Ruan, H. High-aspect-ratio iron nanowires: magnetic field-assisted in situ reduction synthesis and extensive parametric study. Nanotechnology 2019, 31, 145601. doi:10.1088/1361-6528/ab622f
  • Winkler, R.; Fowlkes, J. D.; Rack, P. D.; Plank, H. 3D nanoprinting via focused electron beams. Journal of Applied Physics 2019, 125, 210901. doi:10.1063/1.5092372
  • Carden, W. G.; Thorman, R. M.; Unlu, I.; Abboud, K. A.; Fairbrother, D. H.; McElwee-White, L. Design, Synthesis, and Evaluation of CF3AuCNR Precursors for Focused Electron Beam-Induced Deposition of Gold. ACS applied materials & interfaces 2019, 11, 11976–11987. doi:10.1021/acsami.8b18368
  • Swiderek, P.; Marbach, H.; Hagen, C. W. Chemistry for electron-induced nanofabrication. Beilstein journal of nanotechnology 2018, 9, 1317–1320. doi:10.3762/bjnano.9.124
Other Beilstein-Institut Open Science Activities