A Process Analytical Concept for In-Line FTIR Monitoring of Polysiloxane Formation

被引:18
|
作者
Steinbach, Julia C. [1 ,2 ]
Schneider, Markus [1 ,2 ]
Hauler, Otto [2 ]
Lorenz, Gunter [1 ,2 ]
Rebner, Karsten [1 ,2 ]
Kandelbauer, Andreas [1 ,2 ]
机构
[1] Reutlingen Univ, Sch Appl Chem, D-72762 Reutlingen, Germany
[2] Reutlingen Res Inst, D-72762 Reutlingen, Germany
关键词
polysiloxane; process analysis and process control; FTIR spectroscopy; multivariate data analysis; batch modelling; reaction trajectories; SILICONE RESIN; SPECTROSCOPY; PERFORMANCE; HYDROLYSIS; CHEMISTRY; IR;
D O I
10.3390/polym12112473
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The chemical synthesis of polysiloxanes from monomeric starting materials involves a series of hydrolysis, condensation and modification reactions with complex monomeric and oligomeric reaction mixtures. Real-time monitoring and precise process control of the synthesis process is of great importance to ensure reproducible intermediates and products and can readily be performed by optical spectroscopy. In chemical reactions involving rapid and simultaneous functional group transformations and complex reaction mixtures, however, the spectroscopic signals are often ambiguous due to overlapping bands, shifting peaks and changing baselines. The univariate analysis of individual absorbance signals is hence often only of limited use. In contrast, batch modelling based on the multivariate analysis of the time course of principal components (PCs) derived from the reaction spectra provides a more efficient tool for real-time monitoring. In batch modelling, not only single absorbance bands are used but information over a broad range of wavelengths is extracted from the evolving spectral fingerprints and used for analysis. Thereby, process control can be based on numerous chemical and morphological changes taking place during synthesis. "Bad" (or abnormal) batches can quickly be distinguished from "normal" ones by comparing the respective reaction trajectories in real time. In this work, FTIR spectroscopy was combined with multivariate data analysis for the in-line process characterization and batch modelling of polysiloxane formation. The synthesis was conducted under different starting conditions using various reactant concentrations. The complex spectral information was evaluated using chemometrics (principal component analysis, PCA). Specific spectral features at different stages of the reaction were assigned to the corresponding reaction steps. Reaction trajectories were derived based on batch modelling using a wide range of wavelengths. Subsequently, complexity was reduced again to the most relevant absorbance signals in order to derive a concept for a low-cost process spectroscopic set-up which could be used for real-time process monitoring and reaction control.
引用
收藏
页码:1 / 13
页数:13
相关论文
共 50 条
  • [21] Process monitoring and surface characterization with in-line XPS metrology
    Cabuil, N.
    Le Gouil, A.
    Doclot, O.
    Dickson, B.
    Lagha, A.
    Aminpur, M.
    Chaton, C.
    Royer, J-C.
    SOLID STATE TECHNOLOGY, 2007, 50 (10) : 48 - 51
  • [22] In-line monitoring of emulsion homo- and copolymerizations using ATR-FTIR spectrometry
    Hua, H
    Dubé, MA
    POLYMER REACTION ENGINEERING, 2002, 10 (1-2): : 21 - 40
  • [23] Monitoring an enzyme purification process using on-line and in-line NIR measurements
    Klimkiewicz, Anna
    Mortensen, Peter Paasch
    Zachariassen, Christian B.
    van den Berg, Frans W. J.
    CHEMOMETRICS AND INTELLIGENT LABORATORY SYSTEMS, 2014, 132 : 30 - 38
  • [24] In-line process monitoring on polymer melts by NIR-spectroscopy
    Fischer, D
    Bayer, T
    Eichhorn, KJ
    Otto, M
    FRESENIUS JOURNAL OF ANALYTICAL CHEMISTRY, 1997, 359 (01): : 74 - 77
  • [25] In-line monitoring of the Fused Filament Fabrication additive manufacturing process
    Forster, R.
    Feteira, A.
    Soulioti, D.
    Grammatikos, S.
    Kordatos, E.
    NONDESTRUCTIVE CHARACTERIZATION AND MONITORING OF ADVANCED MATERIALS, AEROSPACE, CIVIL INFRASTRUCTURE, AND TRANSPORTATION XVII, 2023, 12487
  • [26] Advanced strategy for in-line process monitoring using FIB and TEM
    Mello, D.
    DeSouza, Z.
    Giarrizzo, F.
    Gagliano, C.
    Franco, G.
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 2007, 257 (1-2 SPEC. ISS.): : 805 - 809
  • [27] In-line process monitoring on polymer melts by NIR-spectroscopy
    D. Fischer
    T. Bayer
    K.-J. Eichhorn
    M. Otto
    Fresenius' Journal of Analytical Chemistry, 1997, 359 : 74 - 77
  • [28] Characterization and in-line monitoring of low-k porogen formation
    Cunnane, Liam
    Moore, Darren
    Waldfried, Carlo
    Haas, Mary
    O'Neill, Mark
    SOLID STATE TECHNOLOGY, 2007, 50 (12) : 44 - +
  • [29] PAT Implementation on a Mobile Continuous Pharmaceutical Manufacturing System: Real-Time Process Monitoring with In-Line FTIR and Raman Spectroscopy
    Miyai, Yuma
    Formosa, Anna
    Armstrong, Cameron
    Marquardt, Brian
    Rogers, Luke
    Roper, Thomas
    ORGANIC PROCESS RESEARCH & DEVELOPMENT, 2021, 25 (12) : 2707 - 2717
  • [30] A study on the applicability of in-line measurements in the monitoring of the pellet coating process
    Hudovornik, Grega
    Korasa, Klemen
    Vrecer, Franc
    EUROPEAN JOURNAL OF PHARMACEUTICAL SCIENCES, 2015, 75 : 160 - 168