Literatur - fachlich

Auf dieser Seite werden Publikationen aus dem Bereich der Grünen Chemie zitiert. Sie finden hier Beiträge aus internationalen Journalen, aber auch Masterarbeiten und Dissertationen.

Foto Bücherstapel

Aktuelle Publikationen zum breiten Themenbereich der Grünen Chemie werden in folgende Kategorien zugeordnet:

Allgemeine Texte zur Grünen Chemie

Grundlegende Arbeiten zur Grünen Chemie; Definitionen der Grünen Chemie; Texte mit regulatorischem und strategischem Kontext.

Persson, Linn; Carney Almroth, Bethanie M.; Collins, Christopher D.; Cornell, Sarah; Wit, Cynthia A. de; Diamond, Miriam L. et al. (2022):
Outside the Safe Operating Space of the Planetary Boundary for Novel Entities.
In: Environmental science & technology 56 (3), S. 1510–1521.
DOI: 10.1021/acs.est.1c04158.

Tickner, Joel A.; Simon, Rachel V.; Jacobs, Molly; Pollard, Lindsey D.; van Bergen, Saskia K. (2021):
The nexus between alternatives assessment and green chemistry: supporting the development and adoption of safer chemicals.
In: Green Chemistry Letters and Reviews 14 (1), S. 21–42.
DOI: 10.1080/17518253.2020.1856427.

Anastas, Paul T. (2020):
Circularity. What’s the Problem?
In: ACS Sustainable Chem. Eng. 8 (35), S. 13111.
DOI: 10.1021/acssuschemeng.0c05714.

Fantke, Peter; Aurisano, Nicolò; Provoost, Jeroen; Karamertzanis, Panagiotis G.; Hauschild, Michael (2020):
Toward effective use of REACH data for science and policy.
In: Environment international 135, S. 105336.
DOI: 10.1016/j.envint.2019.105336.

Sheldon, Roger A.; Norton, Michael (2020):
Green chemistry and the plastic pollution challenge: towards a circular economy.
In: Green Chem. 22 (19), S. 6310–6322.
DOI: 10.1039/D0GC02630A.

Olsson, Oliver; Kümmerer, Klaus (2019):
Wasser und nachhaltige Chemie.
In: Vom Wasser - Das Journal 117 (1), S. 5–8.

Kümmerer, Klaus (2017):
Sustainable Chemistry: A Future Guiding Principle.
In: Angewandte Chemie (International ed. in English) 56 (52), S. 16420–16421.
DOI: 10.1002/anie.201709949.

Grüne Chemie im Schulunterricht

Zuin, Vânia G.; Kümmerer, Klaus (2021):
Towards more sustainable curricula.
In: Nat Rev Chem 5 (2), S. 76–77.
DOI: 10.1038/s41570-021-00253-w.

Dicks, Andrew P. (2009):
A review of aqueous organic reactions for the undergraduate teaching laboratory.
In: Green Chemistry Letters and Reviews 2 (1), S. 9–21.
DOI: 10.1080/17518250902820182.

Metrik

Kriterienentwicklung der Bestimmung von "Grünen Chemikalien", "Grünen Verfahren" etc.; bestehende Bewertungssysteme.

Chang, Fei; Zhang, Xiangping; Zhan, Guoxiong; Duan, Yuanmeng; Zhang, Suojiang (2021):
Review of Methods for Sustainability Assessment of Chemical Engineering Processes.
In: Ind. Eng. Chem. Res. 60 (1), S. 52–66.
DOI: 10.1021/acs.iecr.0c04720.

Fantke, Peter; Huang, Lei; Overcash, Michael; Griffing, Evan; Jolliet, Olivier (2020):
Life cycle based alternatives assessment (LCAA) for chemical substitution.
In: Green Chem. 22 (18), S. 6008–6024.
DOI: 10.1039/D0GC01544J.

Burgman, Mark; Tennant, Mike; Voulvoulis, Nikolaos; Makuch, Karen; Madani, Kaveh (2018):
Facilitating the transition to sustainable green chemistry.
In: Current Opinion in Green and Sustainable Chemistry 13, S. 130–136.
DOI: 10.1016/j.cogsc.2018.04.006.

Kreislaufwirtschaft

Arbeiten aus diesem thematisch angrenzenden Bereich, unter anderem zum Thema Abfallstrom/Rohstoffstrom.

Da Pires Mata Costa, Laura; Micheline Vaz de Miranda, Débora; Couto de Oliveira, Ana Carolina; Falcon, Luiz; Stella Silva Pimenta, Marina; Guilherme Bessa, Ivan et al. (2021):
Capture and Reuse of Carbon Dioxide (CO2) for a Plastics Circular Economy: A Review.
In: Processes 9 (5), S. 759.
DOI: 10.3390/pr9050759.

Mortensen, Lars (2021):
Plastics, the circular economy and Europe's environment. A priority for action no 2020, 18.
DOI: 10.2800/5847.

Kümmerer, Klaus; Clark, James H.; Zuin, Vânia G. (2020):
Rethinking chemistry for a circular economy.
In: Science (New York, N.Y.) 367 (6476), S. 369–370.
DOI: 10.1126/science.aba4979.

Sardon, Haritz; Li, Zi-Chen (2020):
Introduction to plastics in a circular economy.
In: Polym. Chem. 11 (30), S. 4828–4829.
DOI: 10.1039/D0PY90117B.

Thompson, Dana L.; Hartley, Jennifer M.; Lambert, Simon M.; Shiref, Muez; Harper, Gavin D. J.; Kendrick, Emma et al. (2020):
The importance of design in lithium ion battery recycling – a critical review.
In: Green Chem. 22 (22), S. 7585–7603.
DOI: 10.1039/D0GC02745F.

Xue, Yudong; Wang, Yunting (2020):
Green electrochemical redox mediation for valuable metal extraction and recycling from industrial waste.
In: Green Chem. 22 (19), S. 6288–6309.
DOI: 10.1039/D0GC02028A.

Bioökonomie

Arbeiten aus diesem thematisch angrenzenden Bereich, unter anderem zu den Themen Syntheseleistung der Natur für die Herstellung von Chemikalien, Verwendung von nachwachsenden Rohstoffen wie Lignin, Fette und andere Kohlenhydrate.

Hou, Qidong; Qi, Xinhua; Zhen, Meinan; Qian, Hengli; Nie, Yifan; Bai, Chuanyunlong et al. (2021):
Biorefinery roadmap based on catalytic production and upgrading 5-hydroxymethylfurfural.
In: Green Chem. 23 (1), S. 119–231.
DOI: 10.1039/D0GC02770G.

Gigli, Matteo; Crestini, Claudia (2020):
Fractionation of industrial lignins: opportunities and challenges.
In: Green Chem. 22 (15), S. 4722–4746.
DOI: 10.1039/D0GC01606C.

Park, Chanyeong; Lee, Jechan (2020):
Recent achievements in CO 2 -assisted and CO 2 -catalyzed biomass conversion reactions.
In: Green Chem. 22 (9), S. 2628–2642.
DOI: 10.1039/D0GC00095G.

CO2 als Rohstoff

Herstellung von chemischen Verbindungen aus Kohlenstoffdioxid.

Chen, Zhengkai; Du, Shiying; Zhang, Jiajun; Wu, Xiao-Feng (2020):
From ‘Gift’ to gift: producing organic solvents from CO 2.
In: Green Chem. 22 (23), S. 8169–8182.
DOI: 10.1039/D0GC03280H.

Modak, Arindam; Bhanja, Piyali; Dutta, Saikat; Chowdhury, Biswajit; Bhaumik, Asim (2020):
Catalytic reduction of CO 2 into fuels and fine chemicals.
In: Green Chem. 22 (13), S. 4002–4033.
DOI: 10.1039/D0GC01092H.

Energiegewinnung und -speicherung

Gewinnung und Speicherung von Energie mit Methoden der Grünen Chemie.

Mariotti, Nicole; Bonomo, Matteo; Fagiolari, Lucia; Barbero, Nadia; Gerbaldi, Claudio; Bella, Federico; Barolo, Claudia (2020):
Recent advances in eco-friendly and cost-effective materials towards sustainable dye-sensitized solar cells.
In: Green Chem. 22 (21), S. 7168–7218.
DOI: 10.1039/D0GC01148G.

Parsimehr, Hamidreza; Ehsani, Ali (2020):
Algae-based electrochemical energy storage devices.
In: Green Chem. 22 (23), S. 8062–8096.
DOI: 10.1039/D0GC02246B.

Grüne Polymere

Engel, Emile R.; Scott, Janet L. (2020):
Advances in the green chemistry of coordination polymer materials.
In: Green Chem. 22 (12), S. 3693–3715.
DOI: 10.1039/D0GC01074J.

Cornille, Adrien; Auvergne, Rémi; Figovsky, Oleg; Boutevin, Bernard; Caillol, Sylvain (2017):
A perspective approach to sustainable routes for non-isocyanate polyurethanes.
In: European Polymer Journal 87, S. 535–552.
DOI: 10.1016/j.eurpolymj.2016.11.027.

Grüne Lösungsmittel

Verwendung von Grünen Lösungsmitteln und deren Auswirkung auf Synthesen wie etwa ionische Flüssigkeiten.

Winterton, Neil (2021):
The green solvent: a critical perspective.
In: Clean technologies and environmental policy 23 (9), S. 2499–2522.
DOI: 10.1007/s10098-021-02188-8.

Gao, Feng; Bai, Rongxian; Ferlin, Francesco; Vaccaro, Luigi; Li, Minghao; Gu, Yanlong (2020):
Replacement strategies for non-green dipolar aprotic solvents.
In: Green Chem. 22 (19), S. 6240–6257.
DOI: 10.1039/D0GC02149K.

Raiguel, Stijn; Dehaen, Wim; Binnemans, Koen (2020):
Stability of ionic liquids in Brønsted-basic media.
In: Green Chem. 22 (16), S. 5225–5252.
DOI: 10.1039/D0GC01832E.

Xu, Airong; Wang, Fen (2020):
Carboxylate ionic liquid solvent systems from 2006 to 2020: thermal properties and application in cellulose processing.
In: Green Chem. 22 (22), S. 7622–7664.
DOI: 10.1039/D0GC02840A.

Byrne, Fergal P.; Jin, Saimeng; Paggiola, Giulia; Petchey, Tabitha H. M.; Clark, James H.; Farmer, Thomas J. et al. (2016):
Tools and techniques for solvent selection: green solvent selection guides.
In: Sustain Chem Process 4 (1).
DOI: 10.1186/s40508-016-0051-z.

Grüne Reaktionen

Katalytische Reaktionen, Elektrochemie, Photochemie etc.

Koranian, Parvaneh; Huang, Qian; Dalai, Ajay Kumar; Sammynaiken, Ramaswami (2022):
Chemicals Production from Glycerol through Heterogeneous Catalysis:
A Review. In: Catalysts 12 (8), S. 897.
DOI: 10.3390/catal12080897.

Sun, Kai; Lv, Qi-Yan; Chen, Xiao-Lan; Qu, Ling-Bo; Yu, Bing (2021):
Recent advances in visible-light-mediated organic transformations in water.
In: Green Chem. 23 (1), S. 232–248.
DOI: 10.1039/D0GC03447A.

Egorov, Ilya N.; Santra, Sougata; Kopchuk, Dmitry S.; Kovalev, Igor S.; Zyryanov, Grigory V.; Majee, Adinath et al. (2020):
Ball milling: an efficient and green approach for asymmetric organic syntheses.
In: Green Chem. 22 (2), S. 302–315.
DOI: 10.1039/C9GC03414E.

Ghasemzadeh, Mohammad Ali; Mirhosseini-Eshkevari, Boshra; Tavakoli, Mona; Zamani, Farzad (2020):
Metal–organic frameworks: advanced tools for multicomponent reactions.
In: Green Chem. 22 (21), S. 7265–7300.
DOI: 10.1039/D0GC01767A.

Huskić, Igor; Lennox, Cameron B.; Friščić, Tomislav (2020):
Accelerated ageing reactions: towards simpler, solvent-free, low energy chemistry.
In: Green Chem. 22 (18), S. 5881–5901.
DOI: 10.1039/D0GC02264K.

Khalil, Ibrahim; Quintens, Greg; Junkers, Tanja; Dusselier, Michiel (2020):
Muconic acid isomers as platform chemicals and monomers in the biobased economy.
In: Green Chem. 22 (5), S. 1517–1541.
DOI: 10.1039/C9GC04161C.

Biotechnologie und Biokatalyse

Synthesen unter Verwendung von Mikroorganismen und Enzymen.

Bormann, Sebastian; Kellner, Harald; Hermes, Johanna; Herzog, Robert; Ullrich, René; Liers, Christiane et al. (2022):
Broadening the Biocatalytic Toolbox-Screening and Expression of New Unspecific Peroxygenases.
In: Antioxidants (Basel, Switzerland) 11 (2).
DOI: 10.3390/antiox11020223.

Jost, Etta; Kazemi, Masoud; Mrkonjić, Valerija; Himo, Fahmi; Winkler, Christoph K.; Kroutil, Wolfgang (2020):
Variants of the Acyltransferase from Mycobacterium smegmatis Enable Enantioselective Acyl Transfer in Water.
In: ACS Catal. 10 (18), S. 10500–10507.
DOI: 10.1021/acscatal.0c02981.

Pleissner, Daniel; Kümmerer, Klaus (2020):
Green Chemistry and Its Contribution to Industrial Biotechnology.
In: Advances in biochemical engineering/biotechnology 173, S. 281–298.
DOI: 10.1007/10_2018_73.

Sheng, Xiang; Kazemi, Masoud; Żądło-Dobrowolska, Anna; Kroutil, Wolfgang; Himo, Fahmi (2020):
Mechanism of Biocatalytic Friedel-Crafts Acylation by Acyltransferase from Pseudomonas protegens.
In: ACS Catal. 10 (1), S. 570–577.
DOI: 10.1021/acscatal.9b04208.

Stoffeigenschaften

Arbeiten, die sich mit Nanopartikeln, Bioabbaubarkeit von Bioplastik und toxikologischen Eigenschaften z. B. von Arzenimitteln, Kosmetika beschäftigen.

Fantke, Peter; Bruinen de Bruin, Yuri; Schlüter, Urs; Connolly, Alison; Bessems, Jos; Kephalopoulos, Stylianos et al. (2022):
The European exposure science strategy 2020-2030.
In: Environment international 170, S. 107555.
DOI: 10.1016/j.envint.2022.107555.

Valsami-Jones, Eugenia; Cassee, Flemming R.; Falk, Andreas (2022):
From small to clever: What does the future hold for the safety and sustainability of advanced materials?
In: Nano Today 42, S. 101364.
DOI: 10.1016/j.nantod.2021.101364.

van Dijk, Joanke; Flerlage, Hannah; Beijer, Steven; Slootweg, J. Chris; van Wezel, Annemarie P. (2022):
Safe and sustainable by design: A computer-based approach to redesign chemicals for reduced environmental hazards.
In: Chemosphere, S. 134050.
DOI: 10.1016/j.chemosphere.2022.134050.

Eder, Miriam Lena; Oliva-Teles, Luis; Pinto, Raquel; Carvalho, António Paulo; Almeida, C. Marisa R.; Hornek-Gausterer, Romana; Guimarães, Laura (2021):
Microplastics as a vehicle of exposure to chemical contamination in freshwater systems: Current research status and way forward.
In: Journal of hazardous materials 417, S. 125980.
DOI: 10.1016/j.jhazmat.2021.125980.

Campanale, Claudia; Massarelli, Carmine; Savino, Ilaria; Locaputo, Vito; Uricchio, Vito Felice (2020):
A Detailed Review Study on Potential Effects of Microplastics and Additives of Concern on Human Health.
In: International journal of environmental research and public health 17 (4).
DOI: 10.3390/ijerph17041212.

Ijaz, Irfan; Gilani, Ezaz; Nazir, Ammara; Bukhari, Aysha (2020):
Detail review on chemical, physical and green synthesis, classification, characterizations and applications of nanoparticles.
In: Green Chemistry Letters and Reviews 13 (3), S. 223–245.
DOI: 10.1080/17518253.2020.1802517.

Kar, Supratik; Sanderson, Hans; Roy, Kunal; Benfenati, Emilio; Leszczynski, Jerzy (2020):
Ecotoxicological assessment of pharmaceuticals and personal care products using predictive toxicology approaches.
In: Green Chemistry 22 (5), S. 1458–1516.
DOI: 10.1039/C9GC03265G.

Meereboer, Kjeld W.; Misra, Manjusri; Mohanty, Amar K. (2020):
Review of recent advances in the biodegradability of polyhydroxyalkanoate (PHA) bioplastics and their composites.
In: Green Chem. 22 (17), S. 5519–5558.
DOI: 10.1039/D0GC01647K.

Masterarbeiten und Dissertationen (leer)

Arbeiten durchgeführt an österreichischen Universitäten und Fachhochschulen.

Sie haben Hinweise zu Literatur für uns?

Kontaktieren Sie uns per Email an:
greenchemistry-austria(at)umweltbundesamt.at