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Direct Potentiometric Study of Cationic and Nonionic Surfactants in Disinfectants and Personal Care Products by New Surfactant Sensor Based on 1,3-Dihexadecyl-1H-benzo[d]imidazol-3-ium.
Sakac, Nikola; Markovic, Dean; Sarkanj, Bojan; Madunic-Cacic, Dubravka; Hajdek, Krunoslav; Smoljan, Bozo; Jozanovic, Marija.
  • Sakac N; Faculty of Geotechnical Engineering, University of Zagreb, 42000 Varazdin, Croatia.
  • Markovic D; Department of Biotechnology, University of Rijeka, 51000 Rijeka, Croatia.
  • Sarkanj B; Department of Food Technology, University North, 48000 Koprivnica, Croatia.
  • Madunic-Cacic D; Faculty of Geotechnical Engineering, University of Zagreb, 42000 Varazdin, Croatia.
  • Hajdek K; Saponia Chemical, Pharmaceutical and Foodstuff Industry, Inc., 31000 Osijek, Croatia.
  • Smoljan B; Department of Packaging, Recycling and Environmental Protection, University North, 48000 Koprivnica, Croatia.
  • Jozanovic M; Department of Packaging, Recycling and Environmental Protection, University North, 48000 Koprivnica, Croatia.
Molecules ; 26(5)2021 Mar 04.
Article in English | MEDLINE | ID: covidwho-1129755
ABSTRACT
A novel, simple, low-cost, and user-friendly potentiometric surfactant sensor based on the new 1,3-dihexadecyl-1H-benzo[d]imidazol-3-ium-tetraphenylborate (DHBI-TPB) ion-pair for the detection of cationic surfactants in personal care products and disinfectants is presented here. The new cationic surfactant DHBI-Br was successfully synthesized and characterized by nuclear magnetic resonance (NMR), Fourier transform infrared (FTIR) spectrometry, liquid chromatography-mass spectrometry (LC-MS) and elemental analysis and was further employed for DHBI-TPB ion-pair preparation. The sensor gave excellent response characteristics for CTAB, CPC and Hyamine with a Nernstian slope (57.1 to 59.1 mV/decade) whereas the lowest limit of detection (LOD) value was measured for CTAB (0.3 × 10-6 M). The sensor exhibited a fast dynamic response to dodecyl sulfate (DDS) and TPB. High sensor performances stayed intact regardless of the employment of inorganic and organic cations and in a broad pH range (2-11). Titration of cationic and etoxylated (EO)-nonionic surfactant (NSs) (in Ba2+) mixtures with TPB revealed the first inflexion point for a cationic surfactant and the second for an EO-nonionic surfactant. The increased concentration of EO-nonionic surfactants and the number of EO groups had a negative influence on titration curves and signal change. The sensor was successfully applied for the quantification of technical-grade cationic surfactants and in 12 personal care products and disinfectants. The results showed good agreement with the measurements obtained by a commercial surfactant sensor and by a two-phase titration. A good recovery for the standard addition method (98-102%) was observed.
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Full text: Available Collection: International databases Database: MEDLINE Main subject: Potentiometry / Surface-Active Agents / Biosensing Techniques / Cations / Cosmetics / Disinfectants / Imidazoles Type of study: Experimental Studies / Randomized controlled trials Language: English Journal subject: Biology Year: 2021 Document Type: Article Affiliation country: Molecules26051366

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Full text: Available Collection: International databases Database: MEDLINE Main subject: Potentiometry / Surface-Active Agents / Biosensing Techniques / Cations / Cosmetics / Disinfectants / Imidazoles Type of study: Experimental Studies / Randomized controlled trials Language: English Journal subject: Biology Year: 2021 Document Type: Article Affiliation country: Molecules26051366