Coupling of CO2 Electrolysis with Parallel and Semi‐Automated Biopolymer Synthesis – Ex‐Cell and without Downstream Processing

Author:

Dinges Ida12,Depentori Ina1,Gans Lisa1,Holtmann Dirk3ORCID,Waldvogel Siegfried R.24ORCID,Stöckl Markus1ORCID

Affiliation:

1. Chemical Technology DECHEMA Research Institute Theodor-Heuss-Allee 25 60486 Frankfurt am Main Germany

2. Department of Chemistry Johannes Gutenberg University Mainz Duesbergweg 10–14 55128 Mainz Germany

3. Institute of Process Engineering in Life Sciences Karlsruhe Institute of Technology Fritz-Haber-Weg 4 76131 Karlsruhe Germany

4. Institute of Biological and Chemical, Systems – Functional Molecular Systems (IBCS-FMS) Karlsruhe Institute of Technology Kaiserstraße 12 76131 Karlsruhe Germany.

Abstract

AbstractImportant improvements have been achieved in developing the coupling of electrochemical CO2 reduction to formate with its subsequent microbial conversion to polyhydroxybutyrate (PHB) by Cupriavidus necator. The CO2 based formate electrosynthesis was optimised by electrolysis parameter adjustment and application of Sn based gas diffusion electrodes reaching almost 80 % Faradaic efficiency at 150 mA cm−2. Thereby, catholyte with the high formate concentration of 441±9 mmol L−1 was generated as feedstock without intermediate downstream processing for semi‐automated formate feeding into a fed‐batch reactor system. Moreover, microbial formate conversion to PHB was studied further, optimised, and successfully scaled from shake flasks to semi‐automated bioreactors. Therein, a PHB per formate ratio of 16.5±4.0 mg g−1 and a PHB synthesis rate of 8.4±2.1 mg L−1 OD−1 h−1 were achieved. By this process combination, an almost doubled overall process yield of 22.3±5.5 % was achieved compared to previous reports. The findings allow a detailed evaluation of the overall CO2 to PHB conversion, providing the basis for potential technical exploitation.

Publisher

Wiley

Subject

General Energy,General Materials Science,General Chemical Engineering,Environmental Chemistry

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