Green and Sustainable Chemistry

Green and Sustainable Chemistry

ISSN Print: 2160-6951
ISSN Online: 2160-696X
www.scirp.org/journal/gsc
E-mail: gsc@scirp.org
"High Performance Recycling of Polymers by Means of Their Fluorescence Lifetimes*"
written by Heinz Langhals, Dominik Zgela, Thorben Schlücker,
published by Green and Sustainable Chemistry, Vol.4 No.3, 2014
has been cited by the following article(s):
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[3] Identification of different plastic types and natural materials from terrestrial environments using fluorescence lifetime imaging microscopy
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[5] Design and Environmental Assessment of a Circular Plastics Material Flow System
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[6] Polyethylenes and Polystyrenes with Carbazole Fluorescent Tags. Processes 2023, 11, 515
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[7] A General Autofluorescence Method to Characterize Polymerization Progress
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[8] Enabling the Polymer Circular Economy: Innovations in Photoluminescent Labeling of Plastic Waste for Enhanced Sorting
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[9] Imagerie du rapport d'intensité des pics Raman pour la reconstruction des numéros de série oblitérés dans les polymères.
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[10] Limited utilization options for secondary plastics may restrict their circularity
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[11] New fluorescence labeling isotactic polypropylenes as a tracer: a proof of concept
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[12] Collection of excitation-emission-matrix fluorescence of aerosol-candidate-substances and its application to fluorescence lidar monitoring
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[13] Evaluation of marker materials and spectroscopic methods for tracer-based sorting of plastic wastes
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[14] Experimental Tests for Fluorescence LIDAR Remote Sensing of Submerged Plastic Marine Litter
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[15] Evaluation of Marker Materials and Spectroscopic Methods for Tracer-Based Sorting of Plastic Wastes. Polymers 2022, 14, 3074
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[16] Development of a novel method for the identification and differentiation of micro-and nanoplastics based on time resolved fluorescence processes
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[17] Fluorescent Polyethylene by In Situ Facile Synthesis of Carbon Quantum Dots Facilitated by Silica Nanoparticle Agglomerates
ACS Applied Polymer Materials, 2021
[18] Label-free identification and differentiation of different microplastics using phasor analysis of fluorescence lifetime imaging microscopy (FLIM)-generated data
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[19] New application for the identification and differentiation of microplastics based on fluorescence lifetime imaging microscopy (FLIM)
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[20] Exploring the potential of time-resolved photoluminescence spectroscopy for the detection of plastics
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[21] Degradation of Styrenic Plastics During Recycling: Impact of Reprocessing Photodegraded Material on Aspect and Mechanical Properties
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[22] Alterations of plastics spectra in MIR and the potential impacts on identification towards recycling
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[23] Fuzzy quasi-linear SVM classifier: Design and analysis
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[24] EXPRESS: Exploring the Potential of Time-Resolved Photoluminescence Spectroscopy for the Detection of Plastics
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[25] MIR spectral characterization of plastic to enable discrimination in an industrial recycling context: I. Specific case of styrenic polymers
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[26] A method for sorting of plastics with an apparatus specific quantum efficiency approach
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[27] Identification of post-consumer plastics using laser-induced breakdown spectroscopy
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[28] Untersuchungen zur Sortierung dunkler thermoplastischer Kunststoffe mittels Neuentwicklungen in der Sortiertechnik
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[29] Study on Cost Economics of both Polymer and Metal Centrifugal Pump
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[30] Study on Cost Economics of both Polymer and Metal Centrifugal Pumps
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[31] A Novel Route to Plastics Recycling via Unique, Background-free, Micro-scale Photonic Markers
Light, Energy and the Environment 2018 (E2, FTS, HISE, SOLAR, SSL), 2018
[32] Continuous Microbiological Environmental Monitoring for Process Understanding and Reduced Interventions in Aseptic Manufacturing
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[33] Multi-component Polymer Systems Comprising Wood as Bio-based Component and Thermoplastic Polymer Matrices–An Overview
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[34] The digitization of a food package's life cycle: Existing and emerging computer systems in the logistics and post-logistics phase
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[35] A statistical strategy to assess cleaning level of surfaces using fluorescence spectroscopy and Wilks' ratio
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[36] PLASTIC PACKAGING RECYCLING USING INTELLIGENT SEPARATION TECHNOLOGIES FOR MATERIALS (PRISM)
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[37] Fluorescence labeling of high density polyethylene for identification and separation of selected containers in plastics waste streams. Comparison of thermal and …
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[38] Fluorescence labeling of polymers for automatic identification in mixed plastic waste streams. Thermal and photochemical stability.
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[39] Classification of plastic materials by imaging laser-induced ablation plumes
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[40] Life cycle assessment of wood-plastic composites: Analysing alternative materials and identifying an environmental sound end-of-life option
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[41] Improved High Performance Recycling of Polymers by Means of Bi-Exponential Analysis of Their Fluorescence Lifetimes
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[42] Removable Identification Technology to Differentiate Food Contact PET in Mixed Waste Streams: Interim Report
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[43] Sauber recycliert
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[44] Intelligent labels as a basis For auto-sorting Of plastic packaging [C]
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[45] Untersuchung, Weiterentwicklung und Adaption prozessanalytischer Methoden zur Erkennung von Kontaminationen beim Recycling von Altholz
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