Environmental assessment of a bottom-up hydrolytic synthesis of TiO2 nanoparticles
暂无分享,去创建一个
Anna Maria Ferrari | Paolo Neri | Federica Bondioli | Martina Pini | Roberto Rosa | A. Ferrari | P. Neri | M. Pini | R. Rosa | F. Bondioli
[1] Maria Dusinska,et al. The importance of life cycle concepts for the development of safe nanoproducts. , 2010, Toxicology.
[2] Luigi Carbone,et al. Microwave-assisted synthesis of colloidal inorganic nanocrystals. , 2011, Angewandte Chemie.
[3] P. Alphonse,et al. Stable hydrosols for TiO2 coatings , 2010 .
[4] Christian Capello,et al. Energy Consumption During Nanoparticle Production: How Economic is Dry Synthesis? , 2006 .
[5] Roland Hischier,et al. Life cycle assessment of engineered nanomaterials: state of the art and strategies to overcome existing gaps. , 2012, The Science of the total environment.
[6] A. Ferrari,et al. Conventional and Microwave-Hydrothermal Synthesis of TiO2 Nanopowders , 2005 .
[7] H. Chiu,et al. The effect of calcination temperature on the crystallinity of TiO2 nanopowders , 2003 .
[8] David J. C. Constable,et al. Metrics to ‘green’ chemistry—which are the best? , 2002 .
[9] J. Jenck,et al. Products and processes for a sustainable chemical industry: a review of achievements and prospects , 2004 .
[10] M. Villegas,et al. Characterization and sintering behaviour of submicrometre titanium dioxide spherical particles obtained by gas-phase hydrolysis of titanium tetrabutoxide , 1997 .
[11] Patrick Hofstetter,et al. Midpoints versus endpoints: The sacrifices and benefits , 2000 .
[12] Marco Eissen,et al. Environmental performance metrics for daily use in synthetic chemistry. , 2002, Chemistry.
[13] M. Tripathi,et al. A review on the synthesis of TiO2 nanoparticles by solution route , 2012 .
[14] Julie Zimmerman,et al. Design Through the 12 Principles of Green Engineering , 2003, IEEE Engineering Management Review.
[15] C. Leonelli,et al. New "green" approaches to the synthesis of pyrazole derivatives. , 2007, Molecules.
[16] Angelo Albini,et al. Titanium dioxide photocatalysis: An assessment of the environmental compatibility for the case of the functionalization of heterocyclics , 2010 .
[17] Paolo Neri,et al. Photochemical technologies assessed: the case of rose oxide , 2011 .
[18] Hans-Jürgen Dr. Klüppel,et al. The Revision of ISO Standards 14040-3 - ISO 14040: Environmental management Life cycle assessment Principles and framework - ISO 14044: Environmental management Life cycle assessment Requirements and guidelines , 2005 .
[19] Shalini Chaturvedi,et al. A review on nano-TiO2 sol–gel type syntheses and its applications , 2011 .
[20] Markus Niederberger,et al. Metal Oxide Nanoparticles in Organic Solvents: Synthesis, Formation, Assembly and Application , 2009 .
[21] D. Dondi,et al. Assessing photochemistry as a green synthetic method. Carbon–carbon bond forming reactions , 2009 .
[22] Adélio A. S. C. Machado,et al. Greenness of chemical reactions – limitations of mass metrics , 2013 .
[23] P. Anastas,et al. Green Chemistry , 2018, Environmental Science.
[24] Roger A. Sheldon,et al. The E Factor: fifteen years on , 2007 .
[25] M. Niederberger,et al. Organic reaction pathways in the nonaqueous synthesis of metal oxide nanoparticles. , 2006, Chemistry.
[26] G.F. Grubb,et al. Energetic and environmental evaluation of titanium dioxide nanoparticles , 2008, 2008 IEEE International Symposium on Electronics and the Environment.
[27] Concepción Jiménez-González,et al. Evaluating the "greenness" of chemical processes and products in the pharmaceutical industry--a green metrics primer. , 2012, Chemical Society reviews.
[28] Michael Zwicky Hauschild,et al. Spatial differentiation in life cycle impact assessment - the EDIP-2003 methodology. Guidelines from the Danish EPA , 2004 .
[29] W. Hoareau,et al. Effect of catalytic conditions on the synthesis of new aconitate esters , 2012 .
[30] Colin L. Raston,et al. Green chemistry and the health implications of nanoparticles , 2006 .
[31] Gerald Rebitzer,et al. IMPACT 2002+: A new life cycle impact assessment methodology , 2003 .
[32] M. Hauschild,et al. Background for spatial differentiation in life cycle impact assessment. The EDIP2003 methodology , 2004 .
[33] D. Pennington,et al. Life Cycle Impact Assessment Workshop Summary Midpoints versus Endpoints: The Sacrifices and Benefits , 2000 .
[34] John M. Woodley,et al. Life cycle assessment in green chemistry: overview of key parameters and methodological concerns , 2013, The International Journal of Life Cycle Assessment.
[35] Tom Van Gerven,et al. Structure, energy, synergy, time - the fundamentals of Process Intensification , 2009 .
[36] Bhavik R Bakshi,et al. Appreciating the role of thermodynamics in LCA improvement analysis via an application to titanium dioxide nanoparticles. , 2011, Environmental science & technology.
[37] M. Goedkoop,et al. The Eco-indicator 99, A damage oriented method for Life Cycle Impact Assessment , 1999 .
[38] B. Bakshi,et al. Life Cycle of Titanium Dioxide Nanoparticle Production , 2011 .
[39] A. I. Stankiewicz,et al. Process Intensification: Transforming Chemical Engineering , 2000 .
[40] Tomas Hudlicky,et al. Toward a ‘reagent-free’ synthesis , 1999 .
[41] Concepción Jiménez-González,et al. Using the Right Green Yardstick: Why Process Mass Intensity Is Used in the Pharmaceutical Industry To Drive More Sustainable Processes , 2011 .