Eintrag weiter verarbeiten

Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires

Gespeichert in:

Personen und Körperschaften: Gonzalez Martinez, Ignacio Guillermo, Cuniberti, Gianaurelio, Rümmeli, Mark Hermann, Nielsch, Kornelius
Titel: Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires
Hochschulschriftenvermerk: Dissertation, Technische Universität Dresden, 2016
Format: E-Book Hochschulschrift
Sprache: Englisch
veröffentlicht:
Online-Ausg.. 2017
Schlagwörter:
Bor
Tem
Cvd
Quelle: Qucosa
LEADER 03880nam a2200505 c 4500
001 22-14-qucosa-218019
007 cr
008 2017 eng
037 |a urn:nbn:de:bsz:14-qucosa-218019 
041 |a eng 
082 |a 620 
084 |a Ve 9850  |2 rvk 
100 |a Gonzalez Martinez, Ignacio Guillermo 
245 |a Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires 
336 |b txt 
338 |b nc 
533 |a Online-Ausg.  |d 2017  |e Online-Ressource (Text)  |f Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden 
502 |b Dissertation  |c Technische Universität Dresden  |d 2016 
520 |a Pursuing the development and implementation of novel synthesis techniques to produce nanostructures with an interesting set of properties is a goal that advances the frontiers of nanotechnology. Also of fundamental importance is to revisit well-established synthesis techniques employing a new set of materials as precursors, substrates and catalysts. Fundamental breakthroughs in the field of nanotechnology can be achieved by developing new synthesis procedures as well as by adapting known procedures to new materials. This thesis focuses on both kinds of experiments. A variant of chemical vapor deposition (CVD) has been used to produce Al5BO9 nanowires out of sapphire wafers without the need of a catalyst material. The novelty of the work relies on the formation mechanism of the Al5BO9 nanowires. Essentially, the process can be described as a large-scale topological transformation taking place on the substrate’s surface as its chemical composition changes due to the arrival of precursor molecules. Dense mats of Al5BO9 nanowires cover large areas of the substrate that were previously relatively flat. The process is enhanced by a high temperature and the presence of pre-existing superficial defects (cracks, terraces, etc.) on the substrates. Al5BO9 nanowires as well as B/BOX nanowires and BOX nanotubes were also produced via a novel in-situ electron beam-induced synthesis technique. The process was carried out at room temperature and inside a transmission electron microscope. Au nanoparticles were used as catalyst for the case of B/BOX nanowires and BOX nanotubes, while the Al5BO9 nanowires were synthesized without the need of a catalyst material. The formation and growth of the nanostructures is solely driven by the electron beam. The growth mechanism of the B/BOX nanowires and BOX nanotubes relies on interplay between electrostatic charging of the precursor material (to produce and transport feedstock material) and electron stimulated desorption of oxygen which is able to activate the catalytic properties of the Au nanoparticles. For the case Al5BO9 nanowires a nucleation process based on massive atomic rearrangement in the precursor is instigated by the e-beam, afterwards, the length of some of the nanowires can be extended by a mechanism analogous to that of the growth of the B/BOX nanowires. 
650 |a Nanotechnologie 
650 |a Bor 
650 |a Aluminumborat 
650 |a Nanodrähte 
650 |a Nanoröhrchen 
650 |a Tem 
650 |a In-Situ Synthesetechnik 
650 |a Cvd 
650 |a Nanotechnology 
650 |a Nanowires 
650 |a Aliuminium Borate 
650 |a Nanowires 
650 |a Nanotubes 
650 |a Tem 
650 |a In-Situ Synthesis 
650 |a Cvd 
655 |a Hochschulschrift  |2 gnd-content 
700 |a Cuniberti, Gianaurelio 
700 |a Cuniberti, Gianaurelio 
700 |a Rümmeli, Mark Hermann 
700 |a Rümmeli, Mark Hermann 
700 |a Nielsch, Kornelius 
700 |a Nielsch, Kornelius 
856 4 0 |q text/html  |u https://nbn-resolving.org/urn:nbn:de:bsz:14-qucosa-218019  |z Online-Zugriff 
935 |c hs 
980 |a 14-qucosa-218019  |b 22  |c sid-22-col-qucosa 
openURL url_ver=Z39.88-2004&ctx_ver=Z39.88-2004&ctx_enc=info%3Aofi%2Fenc%3AUTF-8&rfr_id=info%3Asid%2Fvufind.svn.sourceforge.net%3Agenerator&rft.title=Novel+thermal+and+electron-beam+approaches+for+the+fabrication+of+boron-rich+nanowires&rft.date=&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Adc&rft.creator=Gonzalez+Martinez%2C+Ignacio+Guillermo&rft.format=eBook&rft.language=English
SOLR
_version_ 1797365299956154368
author Gonzalez Martinez, Ignacio Guillermo
author2 Cuniberti, Gianaurelio, Cuniberti, Gianaurelio, Rümmeli, Mark Hermann, Rümmeli, Mark Hermann, Nielsch, Kornelius, Nielsch, Kornelius
author2_role , , , , ,
author2_variant g c gc, g c gc, m h r mh mhr, m h r mh mhr, k n kn, k n kn
author_facet Gonzalez Martinez, Ignacio Guillermo, Cuniberti, Gianaurelio, Cuniberti, Gianaurelio, Rümmeli, Mark Hermann, Rümmeli, Mark Hermann, Nielsch, Kornelius, Nielsch, Kornelius
author_role
author_sort Gonzalez Martinez, Ignacio Guillermo
author_variant m i g g mig migg
building Library A
collection sid-22-col-qucosa
contents Pursuing the development and implementation of novel synthesis techniques to produce nanostructures with an interesting set of properties is a goal that advances the frontiers of nanotechnology. Also of fundamental importance is to revisit well-established synthesis techniques employing a new set of materials as precursors, substrates and catalysts. Fundamental breakthroughs in the field of nanotechnology can be achieved by developing new synthesis procedures as well as by adapting known procedures to new materials. This thesis focuses on both kinds of experiments. A variant of chemical vapor deposition (CVD) has been used to produce Al5BO9 nanowires out of sapphire wafers without the need of a catalyst material. The novelty of the work relies on the formation mechanism of the Al5BO9 nanowires. Essentially, the process can be described as a large-scale topological transformation taking place on the substrate’s surface as its chemical composition changes due to the arrival of precursor molecules. Dense mats of Al5BO9 nanowires cover large areas of the substrate that were previously relatively flat. The process is enhanced by a high temperature and the presence of pre-existing superficial defects (cracks, terraces, etc.) on the substrates. Al5BO9 nanowires as well as B/BOX nanowires and BOX nanotubes were also produced via a novel in-situ electron beam-induced synthesis technique. The process was carried out at room temperature and inside a transmission electron microscope. Au nanoparticles were used as catalyst for the case of B/BOX nanowires and BOX nanotubes, while the Al5BO9 nanowires were synthesized without the need of a catalyst material. The formation and growth of the nanostructures is solely driven by the electron beam. The growth mechanism of the B/BOX nanowires and BOX nanotubes relies on interplay between electrostatic charging of the precursor material (to produce and transport feedstock material) and electron stimulated desorption of oxygen which is able to activate the catalytic properties of the Au nanoparticles. For the case Al5BO9 nanowires a nucleation process based on massive atomic rearrangement in the precursor is instigated by the e-beam, afterwards, the length of some of the nanowires can be extended by a mechanism analogous to that of the growth of the B/BOX nanowires.
dewey-full 620
dewey-hundreds 600 - Technology (Applied sciences)
dewey-ones 620 - Engineering and allied operations
dewey-raw 620
dewey-search 620
dewey-sort 3620
dewey-tens 620 - Engineering and allied operations
facet_avail Online, Free
finc_class_facet Technik
fincclass_txtF_mv engineering-process, technology
format eBook, Thesis
format_access_txtF_mv Thesis
format_de14 Thesis, Book, E-Book
format_de15 Thesis, Book, E-Book
format_del152 Buch, Buch
format_detail_txtF_mv text-online-monograph-independent-thesis
format_dezi4 e-Book
format_finc Book, E-Book, Thesis
format_legacy Thesis, Book
format_legacy_nrw Thesis, Book, E-Book
format_nrw Thesis, Book, E-Book
format_strict_txtF_mv E-Thesis
genre Hochschulschrift gnd-content
genre_facet Hochschulschrift
geogr_code not assigned
geogr_code_person not assigned
id 22-14-qucosa-218019
illustrated Not Illustrated
imprint Online-Ausg., 2017
imprint_str_mv Online-Ausg.: 2017
institution DE-105, DE-Gla1, DE-Brt1, DE-D161, DE-540, DE-Pl11, DE-Rs1, DE-Bn3, DE-Zi4, DE-Zwi2, DE-D117, DE-Mh31, DE-D275, DE-Ch1, DE-15, DE-D13, DE-L242, DE-L229, DE-L328
is_hierarchy_id
is_hierarchy_title
language English
last_indexed 2024-04-26T03:12:03.591Z
match_str gonzalezmartinez2017novelthermalandelectronbeamapproachesforthefabricationofboronrichnanowires
mega_collection Qucosa
publishDateSort 2017
record_format marcfinc
record_id 14-qucosa-218019
recordtype marcfinc
rvk_facet Ve 9850
source_id 22
spelling Gonzalez Martinez, Ignacio Guillermo, Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires, txt, nc, Online-Ausg. 2017 Online-Ressource (Text) Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden, Dissertation Technische Universität Dresden 2016, Pursuing the development and implementation of novel synthesis techniques to produce nanostructures with an interesting set of properties is a goal that advances the frontiers of nanotechnology. Also of fundamental importance is to revisit well-established synthesis techniques employing a new set of materials as precursors, substrates and catalysts. Fundamental breakthroughs in the field of nanotechnology can be achieved by developing new synthesis procedures as well as by adapting known procedures to new materials. This thesis focuses on both kinds of experiments. A variant of chemical vapor deposition (CVD) has been used to produce Al5BO9 nanowires out of sapphire wafers without the need of a catalyst material. The novelty of the work relies on the formation mechanism of the Al5BO9 nanowires. Essentially, the process can be described as a large-scale topological transformation taking place on the substrate’s surface as its chemical composition changes due to the arrival of precursor molecules. Dense mats of Al5BO9 nanowires cover large areas of the substrate that were previously relatively flat. The process is enhanced by a high temperature and the presence of pre-existing superficial defects (cracks, terraces, etc.) on the substrates. Al5BO9 nanowires as well as B/BOX nanowires and BOX nanotubes were also produced via a novel in-situ electron beam-induced synthesis technique. The process was carried out at room temperature and inside a transmission electron microscope. Au nanoparticles were used as catalyst for the case of B/BOX nanowires and BOX nanotubes, while the Al5BO9 nanowires were synthesized without the need of a catalyst material. The formation and growth of the nanostructures is solely driven by the electron beam. The growth mechanism of the B/BOX nanowires and BOX nanotubes relies on interplay between electrostatic charging of the precursor material (to produce and transport feedstock material) and electron stimulated desorption of oxygen which is able to activate the catalytic properties of the Au nanoparticles. For the case Al5BO9 nanowires a nucleation process based on massive atomic rearrangement in the precursor is instigated by the e-beam, afterwards, the length of some of the nanowires can be extended by a mechanism analogous to that of the growth of the B/BOX nanowires., Nanotechnologie, Bor, Aluminumborat, Nanodrähte, Nanoröhrchen, Tem, In-Situ Synthesetechnik, Cvd, Nanotechnology, Nanowires, Aliuminium Borate, Nanotubes, In-Situ Synthesis, Hochschulschrift gnd-content, Cuniberti, Gianaurelio, Rümmeli, Mark Hermann, Nielsch, Kornelius, text/html https://nbn-resolving.org/urn:nbn:de:bsz:14-qucosa-218019 Online-Zugriff
spellingShingle Gonzalez Martinez, Ignacio Guillermo, Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires, Pursuing the development and implementation of novel synthesis techniques to produce nanostructures with an interesting set of properties is a goal that advances the frontiers of nanotechnology. Also of fundamental importance is to revisit well-established synthesis techniques employing a new set of materials as precursors, substrates and catalysts. Fundamental breakthroughs in the field of nanotechnology can be achieved by developing new synthesis procedures as well as by adapting known procedures to new materials. This thesis focuses on both kinds of experiments. A variant of chemical vapor deposition (CVD) has been used to produce Al5BO9 nanowires out of sapphire wafers without the need of a catalyst material. The novelty of the work relies on the formation mechanism of the Al5BO9 nanowires. Essentially, the process can be described as a large-scale topological transformation taking place on the substrate’s surface as its chemical composition changes due to the arrival of precursor molecules. Dense mats of Al5BO9 nanowires cover large areas of the substrate that were previously relatively flat. The process is enhanced by a high temperature and the presence of pre-existing superficial defects (cracks, terraces, etc.) on the substrates. Al5BO9 nanowires as well as B/BOX nanowires and BOX nanotubes were also produced via a novel in-situ electron beam-induced synthesis technique. The process was carried out at room temperature and inside a transmission electron microscope. Au nanoparticles were used as catalyst for the case of B/BOX nanowires and BOX nanotubes, while the Al5BO9 nanowires were synthesized without the need of a catalyst material. The formation and growth of the nanostructures is solely driven by the electron beam. The growth mechanism of the B/BOX nanowires and BOX nanotubes relies on interplay between electrostatic charging of the precursor material (to produce and transport feedstock material) and electron stimulated desorption of oxygen which is able to activate the catalytic properties of the Au nanoparticles. For the case Al5BO9 nanowires a nucleation process based on massive atomic rearrangement in the precursor is instigated by the e-beam, afterwards, the length of some of the nanowires can be extended by a mechanism analogous to that of the growth of the B/BOX nanowires., Nanotechnologie, Bor, Aluminumborat, Nanodrähte, Nanoröhrchen, Tem, In-Situ Synthesetechnik, Cvd, Nanotechnology, Nanowires, Aliuminium Borate, Nanotubes, In-Situ Synthesis, Hochschulschrift
title Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires
title_auth Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires
title_full Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires
title_fullStr Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires
title_full_unstemmed Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires
title_short Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires
title_sort novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires
title_unstemmed Novel thermal and electron-beam approaches for the fabrication of boron-rich nanowires
topic Nanotechnologie, Bor, Aluminumborat, Nanodrähte, Nanoröhrchen, Tem, In-Situ Synthesetechnik, Cvd, Nanotechnology, Nanowires, Aliuminium Borate, Nanotubes, In-Situ Synthesis, Hochschulschrift
topic_facet Nanotechnologie, Bor, Aluminumborat, Nanodrähte, Nanoröhrchen, Tem, In-Situ Synthesetechnik, Cvd, Nanotechnology, Nanowires, Aliuminium Borate, Nanotubes, In-Situ Synthesis, Hochschulschrift
url https://nbn-resolving.org/urn:nbn:de:bsz:14-qucosa-218019
urn urn:nbn:de:bsz:14-qucosa-218019
work_keys_str_mv AT gonzalezmartinezignacioguillermo novelthermalandelectronbeamapproachesforthefabricationofboronrichnanowires, AT cunibertigianaurelio novelthermalandelectronbeamapproachesforthefabricationofboronrichnanowires, AT rummelimarkhermann novelthermalandelectronbeamapproachesforthefabricationofboronrichnanowires, AT nielschkornelius novelthermalandelectronbeamapproachesforthefabricationofboronrichnanowires