Literature DB >> 35576931

Electrospraying Zwitterionic Copolymers as an Effective Biofouling Control for Accurate and Continuous Monitoring of Wastewater Dynamics in a Real-Time and Long-Term Manner.

Yuankai Huang1, Xin Qian2, Xingyu Wang1, Tianbao Wang1, Samuel J Lounder3, Tulasi Ravindran2, Zoe Demitrack1, Jeffrey McCutcheon2, Ayse Asatekin3, Baikun Li1.   

Abstract

Long-term continuous monitoring (LTCM) of water quality can provide high-fidelity datasets essential for executing swift control and enhancing system efficiency. One roadblock for LTCM using solid-state ion-selective electrode (S-ISE) sensors is biofouling on the sensor surface, which perturbs analyte mass transfer and deteriorates the sensor reading accuracy. This study advanced the anti-biofouling property of S-ISE sensors through precisely coating a self-assembled channel-type zwitterionic copolymer poly(trifluoroethyl methacrylate-random-sulfobetaine methacrylate) (PTFEMA-r-SBMA) on the sensor surface using electrospray. The PTFEMA-r-SBMA membrane exhibits exceptional permeability and selectivity to primary ions in water solutions. NH4+ S-ISE sensors with this anti-fouling zwitterionic layer were examined in real wastewater for 55 days consecutively, exhibiting sensitivity close to the theoretical value (59.18 mV/dec) and long-term stability (error <4 mg/L). Furthermore, a denoising data processing algorithm (DDPA) was developed to further improve the sensor accuracy, reducing the S-ISE sensor error to only 1.2 mg/L after 50 days of real wastewater analysis. Based on the dynamic energy cost function and carbon footprint models, LTCM is expected to save 44.9% NH4+ discharge, 12.8% energy consumption, and 26.7% greenhouse emission under normal operational conditions. This study unveils an innovative LTCM methodology by integrating advanced materials (anti-fouling layer coating) with sensor data processing (DDPA).

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Keywords:  anti-fouling membrane; data processing; electrospray; solid-state ion-selective electrode (S-ISE) sensor; wastewater monitoring; zwitterionic copolymers

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Year:  2022        PMID: 35576931     DOI: 10.1021/acs.est.2c01501

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   11.357


  1 in total

Review 1.  Electro Fluid Dynamics: A Route to Design Polymers and Composites for Biomedical and Bio-Sustainable Applications.

Authors:  Nergis Zeynep Renkler; Iriczalli Cruz-Maya; Irene Bonadies; Vincenzo Guarino
Journal:  Polymers (Basel)       Date:  2022-10-10       Impact factor: 4.967

  1 in total

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