Bottom-Up Synthesis of De-Functionalized and Dispersible Carbon Spheres as Colloidal Adsorbent

Author:

Balda Maria1ORCID,Mackenzie Katrin1ORCID,Woszidlo Silke1,Uhlig Hans2,Möllmer Jens2,Kopinke Frank-Dieter1,Schüürmann Gerrit34ORCID,Georgi Anett1ORCID

Affiliation:

1. Department of Environmental Engineering, Helmholtz Centre for Environmental Research—UFZ, 04318 Leipzig, Germany

2. Institut für Nichtklassische Chemie e.V.—INC, 04318 Leipzig, Germany

3. Institute of Organic Chemistry, Technical University Bergakademie Freiberg, 09599 Freiberg, Germany

4. Department of Ecological Chemistry, Helmholtz Centre for Environmental Research—UFZ, 04318 Leipzig, Germany

Abstract

Recent innovative adsorption technologies for water purification rely on micrometer-sized activated carbon (AC) for ultrafast adsorption or in situ remediation. In this study, the bottom-up synthesis of tailored activated carbon spheres (aCS) from sucrose as renewable feedstock is demonstrated. The synthesis is based on a hydrothermal carbonization step followed by a targeted thermal activation of the raw material. This preserves its excellent colloid properties, i.e., narrow particle size distribution around 1 µm, ideal spherical shape and excellent aqueous dispersibility. We investigated the ageing of the freshly synthesized, highly de-functionalized AC surface in air and aqueous media under conditions relevant to the practice. A slow but significant ageing due to hydrolysis and oxidation reactions was observed for all carbon samples, leading to an increase of the oxygen contents with storage time. In this study, a tailored aCS product was generated within a single pyrolysis step with 3 vol.-% H2O in N2 in order to obtain the desired pore diameters and surface properties. Adsorption characteristics, including sorption isotherms and kinetics, were investigated with monochlorobenzene (MCB) and perfluorooctanoic acid (PFOA) as adsorbates. The product showed high sorption affinities up to log (KD/[L/kg]) of 7.3 ± 0.1 for MCB and 6.2 ± 0.1 for PFOA, respectively.

Funder

Deutsche Forschungsgemeinschaft

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

Reference37 articles.

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3. (2022, May 21). Regenesis, PlumeStop® Liquid Activated CarbonTM. Available online: https://regenesis.com/en/remediation-products/plumestop-liquid-activated-carbon/.

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5. (2022, May 21). Intrapore Particle-Based Ground-Water Remediation. Available online: https://intrapore.com/en/.

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