Nanotechnologies, hazards and resource efficiency: a three-tiered approach to assessing the implications of nanotechnology and influencing its development
Gespeichert in:
Format: | Buch |
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Sprache: | English |
Veröffentlicht: |
Berlin [u.a.]
Springer
2007
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Schlagworte: | |
Online-Zugang: | Inhaltsverzeichnis |
Beschreibung: | Teilw. aus d. Dt. übers. Literaturverz. S. [251] - 268 |
Beschreibung: | XIII, 271 S. Ill., graph. Darst. 24 cm |
ISBN: | 9783540738824 3540738827 |
Internformat
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264 | 1 | |a Berlin [u.a.] |b Springer |c 2007 | |
300 | |a XIII, 271 S. |b Ill., graph. Darst. |c 24 cm | ||
336 | |b txt |2 rdacontent | ||
337 | |b n |2 rdamedia | ||
338 | |b nc |2 rdacarrier | ||
500 | |a Teilw. aus d. Dt. übers. | ||
500 | |a Literaturverz. S. [251] - 268 | ||
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650 | 4 | |a Nanotechnology |x Industrial applications | |
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Datensatz im Suchindex
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adam_text | Contents
Acknowlegdements V
Préface VII
Contents XI
Authors XV
1 Summary 1
1.1 Characterization of some nanotechnologies 1
1.2 Evaluation of spécifie application contexts 5
1.3 Formative approaches to sustainable nanotechnology 10
1.4 Conclusion and need for action 13
2 Methodological approaches to the prospective assessment 17
2.1 Characterization of technologies 17
2.1.1 Dealing with the unknown 17
2.1.2 The characterization of technologies as an approach to
prospective technology assessment 23
2.1.3 Technology characterization and types of hazards 25
2.2 Environmental profile assessments 27
2.3 Approaches to shaping technological development 32
3 Technology-specific impacts of nanotechnology 39
3.1 Characterization of nanotechnology 39
3.2 Description and évaluation of production methods 46
3.2.1 Gas-phase déposition (CVD, PVD) 46
3.2.2 Flame-Assisted Déposition 48
3.2.3 Sol-gel process 49
3.2.4 Précipitation 51
3.2.5 Molecular molding 51
3.2.6 Lithography 52
3.2.7 Self-organization 53
XII Contents
3.2.8 Qualitative assessment of the various production methods . 54
3.3 A digression: nano-visions and their risk assessment 59
4 Assessment of sustainability effects in the context of spécifie
applications 65
4.1 Sélection of the in-depth case studies 65
4.2 Case study 1: Eco-efficient nanocoatings 68
4.2.1 Content, goal, and methods of the case study 68
4.2.2 Scope of the investigation 69
4.2.3 Life cycle inventory analysis 84
4.2.4 Life cycle impact assessment 89
4.2.5 Case-study Summary 93
4.3 Case study 2: Nanotechnology Innovation in Styrène Production93
4.3.1 Contents, goals and methods of the case study 93
4.3.2 Scope of the investigation 94
4.3.3 Scope of investigation and accessibility of data 99
4.3.4 Life cycle inventory analysis 106
4.3.5 Life cycle impact assessment 110
4.3.6 Impediments to the introduction of nanotechnology to the
marketplace 111
4.3.7 Case-study Summary 111
4.4 Case study 3: Nano-innovations in displays 112
4.4.1 Contents, goals, and methods 112
4.4.2 Scope of the investigation 112
4.4.3 Life cycle inventory analysis 132
4.4.4 Life cycle impact assessment 136
4.4.5 Case-study Summary 136
4.5 Case study 4: Nano-applications in the lighting industry 137
4.5.1 Contents, goals, and methods 137
4.5.2 Scope of the investigation 137
4.5.3 Life cycle inventory analysis 150
4.5.4 Life cycle impact assessment 155
4.5.5 Light sources based on quantum dot technology 155
4.5.6 Case-study Summary 159
4.6 Case study 5: The risk potential of nano-scale structures 159
4.6.1 Potential risks of nanotechnology 160
4.6.2 Nanoscalar titanium dioxide in suntan lotions 171
4.6.3 Life cycle analysis of nanomaterials 175
4.6.4 Discussion 178
5 Formative approaches to a sustainable nanotechnology 181
5.1 Coopérative design approaches 184
XIII
5.1.1 Various Leitbilder for sustainable nanotechnology
development 185
5.1.2 Road maps as information and communication concepts for
the design process 195
5.1.3 Constructive technology assessment and real-time
technology assessment as information and communication concepts
for design processes 196
5.1.4 Upstream communication: the intégration of
citizens/consumers in technological development 202
5.2 Player-specific approaches to shaping development 203
5.2.1 Player business: intégration of safety, health, and
environmental aspects into comprehensive quality management
throughout the value chain 203
5.2.2 Player business: sustainable nanodesign in research and
development 204
5.2.3 Player government: fédéral regulatory approaches 205
6 Conclusions, the outlook, and need for action 215
6.1 Results of environmental assessments of selected
nanotechnological application contexts 215
6.2 Technology characterization and context analysis 216
6.3 Process- and formative model-based design and development 220
Appendix 223
Références 251
Index 269
|
adam_txt |
Contents
Acknowlegdements V
Préface VII
Contents XI
Authors XV
1 Summary 1
1.1 Characterization of some nanotechnologies 1
1.2 Evaluation of spécifie application contexts 5
1.3 Formative approaches to sustainable nanotechnology 10
1.4 Conclusion and need for action 13
2 Methodological approaches to the prospective assessment 17
2.1 Characterization of technologies 17
2.1.1 Dealing with the unknown 17
2.1.2 The "characterization of technologies" as an approach to
prospective technology assessment 23
2.1.3 Technology characterization and types of hazards 25
2.2 Environmental profile assessments 27
2.3 Approaches to shaping technological development 32
3 Technology-specific impacts of nanotechnology 39
3.1 Characterization of nanotechnology 39
3.2 Description and évaluation of production methods 46
3.2.1 Gas-phase déposition (CVD, PVD) 46
3.2.2 Flame-Assisted Déposition 48
3.2.3 Sol-gel process 49
3.2.4 Précipitation 51
3.2.5 Molecular molding 51
3.2.6 Lithography 52
3.2.7 Self-organization 53
XII Contents
3.2.8 Qualitative assessment of the various production methods . 54
3.3 A digression: "nano-visions" and their risk assessment 59
4 Assessment of sustainability effects in the context of spécifie
applications 65
4.1 Sélection of the in-depth case studies 65
4.2 Case study 1: Eco-efficient nanocoatings 68
4.2.1 Content, goal, and methods of the case study 68
4.2.2 Scope of the investigation 69
4.2.3 Life cycle inventory analysis 84
4.2.4 Life cycle impact assessment 89
4.2.5 Case-study Summary 93
4.3 Case study 2: Nanotechnology Innovation in Styrène Production93
4.3.1 Contents, goals and methods of the case study 93
4.3.2 Scope of the investigation 94
4.3.3 Scope of investigation and accessibility of data 99
4.3.4 Life cycle inventory analysis 106
4.3.5 Life cycle impact assessment 110
4.3.6 Impediments to the introduction of nanotechnology to the
marketplace 111
4.3.7 Case-study Summary 111
4.4 Case study 3: Nano-innovations in displays 112
4.4.1 Contents, goals, and methods 112
4.4.2 Scope of the investigation 112
4.4.3 Life cycle inventory analysis 132
4.4.4 Life cycle impact assessment 136
4.4.5 Case-study Summary 136
4.5 Case study 4: Nano-applications in the lighting industry 137
4.5.1 Contents, goals, and methods 137
4.5.2 Scope of the investigation 137
4.5.3 Life cycle inventory analysis 150
4.5.4 Life cycle impact assessment 155
4.5.5 Light sources based on quantum dot technology 155
4.5.6 Case-study Summary 159
4.6 Case study 5: The risk potential of nano-scale structures 159
4.6.1 Potential risks of nanotechnology 160
4.6.2 Nanoscalar titanium dioxide in suntan lotions 171
4.6.3 Life cycle analysis of nanomaterials 175
4.6.4 Discussion 178
5 Formative approaches to a sustainable nanotechnology 181
5.1 Coopérative design approaches 184
XIII
5.1.1 Various Leitbilder for sustainable nanotechnology
development 185
5.1.2 Road maps as information and communication concepts for
the design process 195
5.1.3 Constructive technology assessment and real-time
technology assessment as information and communication concepts
for design processes 196
5.1.4 Upstream communication: the intégration of
citizens/consumers in technological development 202
5.2 Player-specific approaches to shaping development 203
5.2.1 Player business: intégration of safety, health, and
environmental aspects into comprehensive quality management
throughout the value chain 203
5.2.2 Player business: sustainable nanodesign in research and
development 204
5.2.3 Player government: fédéral regulatory approaches 205
6 Conclusions, the outlook, and need for action 215
6.1 Results of environmental assessments of selected
nanotechnological application contexts 215
6.2 Technology characterization and context analysis 216
6.3 Process- and formative model-based design and development 220
Appendix 223
Références 251
Index 269 |
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discipline_str_mv | Chemie / Pharmazie Maschinenbau / Maschinenwesen Physik Elektrotechnik / Elektronik / Nachrichtentechnik |
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illustrated | Illustrated |
index_date | 2024-07-02T20:54:05Z |
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institution | BVB |
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physical | XIII, 271 S. Ill., graph. Darst. 24 cm |
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spelling | Nanotechnologies, hazards and resource efficiency a three-tiered approach to assessing the implications of nanotechnology and influencing its development Michael Steinfeldt ... Berlin [u.a.] Springer 2007 XIII, 271 S. Ill., graph. Darst. 24 cm txt rdacontent n rdamedia nc rdacarrier Teilw. aus d. Dt. übers. Literaturverz. S. [251] - 268 Nanotechnologie gtt Gesellschaft Nanotechnology Industrial applications Nanotechnology Risk assessment Nanotechnology Social aspects Nanotechnologie (DE-588)4327470-5 gnd rswk-swf Nanotechnologie (DE-588)4327470-5 s DE-604 Steinfeldt, Michael Sonstige oth HBZ Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=016505758&sequence=000002&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Nanotechnologies, hazards and resource efficiency a three-tiered approach to assessing the implications of nanotechnology and influencing its development Nanotechnologie gtt Gesellschaft Nanotechnology Industrial applications Nanotechnology Risk assessment Nanotechnology Social aspects Nanotechnologie (DE-588)4327470-5 gnd |
subject_GND | (DE-588)4327470-5 |
title | Nanotechnologies, hazards and resource efficiency a three-tiered approach to assessing the implications of nanotechnology and influencing its development |
title_auth | Nanotechnologies, hazards and resource efficiency a three-tiered approach to assessing the implications of nanotechnology and influencing its development |
title_exact_search | Nanotechnologies, hazards and resource efficiency a three-tiered approach to assessing the implications of nanotechnology and influencing its development |
title_exact_search_txtP | Nanotechnologies, hazards and resource efficiency a three-tiered approach to assessing the implications of nanotechnology and influencing its development |
title_full | Nanotechnologies, hazards and resource efficiency a three-tiered approach to assessing the implications of nanotechnology and influencing its development Michael Steinfeldt ... |
title_fullStr | Nanotechnologies, hazards and resource efficiency a three-tiered approach to assessing the implications of nanotechnology and influencing its development Michael Steinfeldt ... |
title_full_unstemmed | Nanotechnologies, hazards and resource efficiency a three-tiered approach to assessing the implications of nanotechnology and influencing its development Michael Steinfeldt ... |
title_short | Nanotechnologies, hazards and resource efficiency |
title_sort | nanotechnologies hazards and resource efficiency a three tiered approach to assessing the implications of nanotechnology and influencing its development |
title_sub | a three-tiered approach to assessing the implications of nanotechnology and influencing its development |
topic | Nanotechnologie gtt Gesellschaft Nanotechnology Industrial applications Nanotechnology Risk assessment Nanotechnology Social aspects Nanotechnologie (DE-588)4327470-5 gnd |
topic_facet | Nanotechnologie Gesellschaft Nanotechnology Industrial applications Nanotechnology Risk assessment Nanotechnology Social aspects |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=016505758&sequence=000002&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
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