RT Journal Article T1 Mass transfer enhancement in electrochemical flow cells through 3D-printed biomimetic channels A1 García López, Inmaculada A1 Arenas, Luis Fernando A1 Turek, Thomas A1 Águeda Maté, Vicente Ismael A1 Garrido Escudero, Amalio AB Mass transfer is frequently the rate-limiting step in electrochemical processes. In addition to increasing electrolyte flow rate, transfer limitations in electrochemical flow cells can be mitigated by inducing turbulence in the flow fields. This can be achieved by substituting the conventional rectangular channel cell design for flow fields that promote chaotic movement in the electrolyte. In this work, a novel biomimetic channel concept based on space-filling curves created by differential growth, such as those present in rippled surfaces of plants and river meanders, is proposed. The overall performance was analyzed in an undivided flow cell by the limiting current technique as a function of electrolyte flow rate. The performance of the biomimetic flow field is enhanced on average by a factor of 1.9 and 1.1 with respect to the rectangular and serpentine flow fields, respectively. The designed flow field increased pressure drop in comparison to the other flow fields but at levels similar to the typical FM01-LC flow reactor with porous electrodes. Differential growth flow fields open a window to further application in inorganic and organic flow electrosynthesis at various scales, as this parametric design allows for channel adaption to the reaction requirements. PB RSC Publishing SN 2058-9883 YR 2023 FD 2023 LK https://hdl.handle.net/20.500.14352/106949 UL https://hdl.handle.net/20.500.14352/106949 LA eng NO García-López, I.; Arenas, L. F.; Turek, T.; Águeda, V. I.; Garrido-Escudero, A. Mass Transfer Enhancement in Electrochemical Flow Cells through 3D-Printed Biomimetic Channels. React. Chem. Eng. 2023, 8, 1776– 1784, DOI: 10.1039/D3RE00053B DS Docta Complutense RD 31 dic 2025