Technical polymers could be identified by means of their remarkably strong auto fluorescence. The mono-exponentially obtained time constants of fluorescence decay were applied for a rough assignment of the polymeric materials whereas bi-exponential analysis allowed a fine classification such as for special batches and for preceding contaminations. Chemically similar materials such as LDPE (low-density polyethylene), HDPE (high-density polyethylene) and UHDPE (ultrahigh-density polyethylene) could be as well identified as contaminations of mineral oil in PET (polyethylene terephthalate). Furthermore, the fluorescence spectra could be characterized by means of five Gaussian functions in the visible allowing a redundant assignment to the fluorescence lifetimes. Thus, efficient sorting of polymers was possible for high performance recycling.
References
[1]
Nemeth, E., Schubert, G., Albrecht, V. and Simon, F. (2005) The Triboelectric Charging of Mixtures of Plastics in the Technology of Recycling. Aufbereitungs-Technik, 46, 35-46.
[2]
Nemeth, E., Simon, F., Albrecht, V. and Schubert, G. (2006) Separating a Mixture of Plastics Comprises Electrostatic Sorting after Plasma Treatment and Triboelectric Charging. Ger. Patent, DE 102004024754 B3 (May 12. 2004); Chemical Abstracts, 144, Article ID: 392348.
[3]
Gohs, U., Albrecht, V., Husemann, K., Reinsch, E., Schuenemann, R. and Simon, F. (2009) Waste Plastic Mixture i.e. Completely Crushed Polyethylene- and Polypropylene-particles, Separation Method for e.g. Electrical Industry, Involves Subjecting Plastic Mixture to Ttriboelectric Charging, and Separating Pure Polyolefin Particles. German Patent Application, DE 102007055765 A1 (Dec. 11, 2007); Chemical Abstracts, 151, Article ID: 57663.
[4]
Huth-Fehre, Th., Feldhoff, R., Kantimm, Th., Quick, L., Winter, F., Cammann, K., van den Broek, W., Wienke, D., Melssen, W. and Buydens L. (1995) NIR—Remote Sensing and Artificial Neural Networks for Rapid Identification of Post Consumer Plastics. Journal of Molecular Structure, 348, 143-146.
http://dx.doi.org/10.1016/0022-2860(95)08609-Y
[5]
Michaeli, W., Plessmann, K.W., Andrassy, B., Breyer, K. and Laufens, P. (1998) Qualitative and Quantitative Characterisation of Mixed Polymers Using Near-Infrared-Spectroscopy (NIR). Polymer Recycling, 3, 287-293; Chemical Abstracts, 132, Article ID: 181307.
[6]
Corbet, E.C., Frey, J.G., Groce, R.I. and Hendra, P.J. (1994) An Investigation into the Applicability of Luminescent Tagging to Polymer Recovery. Plastics, Rubber and Composite Processing and Application, 21, 5-11.
[7]
Rafi Ahmad, S. (2000) Marking of Products with Fluorescence Tracers in Binary Combinations for Automatic Identification and Sorting. Assembly Automation, 20, 58-65.
http://dx.doi.org/10.1108/01445150010311617
[8]
Alam, M.K., Stanton, S.L. and Hebner, G.A. (1994) Near Infrared Spectroscopy and Neural Network for Resin Identification. Spectroscopy, 9, 31-39.
[9]
Scott, D.M. (1995) A Two-Colour Near-Infrared Sensor for Sorting Recycled Plastic Waste. Measurement Science and Technology, 6, 156-159.
http://dx.doi.org/10.1088/0957-0233/6/2/004
[10]
General Electric Company (inv. Hubbard, S., Potyrailo, R., Schottland, P. and Thomas, V.) (2005) Tagging Materials for Polymers, Methods, and Articles Made Thereby. US-Patent, 2005/0095715.
[11]
Langhals, H., Schmid, T., Herman, M., Zwiener, M. and Hofer, A. (2013) Binary Fluorescence Labeling for the Recovery of Polymeric Materials for Recycling. International Journal of Science, Environment and Technology, 7, 124-132.
[12]
Langhals, H., Schmid, T., Herman, M., Zwiener, M. and Hofer, A. (2012) Marking of Polymer Materials with Fluorescence Dyes for Their Clear Automatic Sorting. German Patent Application, DE 102012012772.3 (June 22, 2012); Chemical Abstracts, 160, Article ID: 63983.
[13]
Langhals, H., Zgela, D. and Schlücker, T. (2014) High Performance Recycling of Polymers by Means of Their Fluorescence Lifetimes. Green and Sustainable Chemistry, 4, 144-150.
http://dx.doi.org/10.4236/gsc.2014.43019
[14]
Langhals, H. (2002) The Rapid Identification of Organic Colorants by UV/Vis-Spectroscopy. Analytical and Bioanalytical Chemistry, 374, 573-578.
http://dx.doi.org/10.1007/s00216-002-1473-x
[15]
Langhals, H. (1982) The Determination of the Composition of Binary Liquid Mixtures by Means of Fluorescence Measurements. Fresenius’ Zeitschrift für Analytische Chemie, 310, 427-428.
http://dx.doi.org/10.1007/BF00483019
[16]
Ballew, R.M. and Demas, J.N. (1989) An Error Analysis of the Rapid Lifetime Determination Method for the Evaluation of Single Exponential Decays. Analytical Chemistry, 61, 30-33.
http://dx.doi.org/10.1021/ac00176a007
[17]
Woods, R.J., Scypinski, S., Cline Love, L.J. and Ashworth, H.A. (1984) Transient Digitizer for the Determination of Microsecond Luminescence Lifetimes. Analytical Chemistry, 56, 1395-1400.
http://dx.doi.org/10.1021/ac00272a043
[18]
Meier, R.J., Fischer, L.H., Wolfbeis, O.S. and Schferling, M. (2013) Referenced Luminescent Sensing and Imaging with Digital Color Cameras: A Comparative Study. Sensors and Actuators, B177, 500-506.
http://dx.doi.org/10.1016/j.snb.2012.11.041