Combined Electrospinning-Electrospraying for High-Performance Bipolar Membranes with Incorporated MCM-41 as Water Dissociation Catalysts

被引:4
|
作者
Al-Dhubhani, Emad [1 ,2 ]
Tedesco, Michele [1 ]
de Vos, Wiebe M. [2 ]
Saakes, Michel [1 ]
机构
[1] European Ctr Excellence Sustainable Water Technol, Wetsus, NL-8911 MA Leeuwarden, Netherlands
[2] Univ Twente, Membrane Sci & Technol, POB 217, NL-7500 AE Enschede, Netherlands
关键词
electrospinning-electrospraying; bipolar membrane; water dissociation; catalyst; MCM-41; METAL-ORGANIC FRAMEWORKS; INTERFACIAL LAYER; FLOW BATTERY; JUNCTION; ACID; ELECTRODIALYSIS; EFFICIENCY; CRACKING; NAFION; SALT;
D O I
10.1021/acsami.3c06826
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Electrospinning has been demonstrated as a very promising method to create bipolar membranes (BPMs), especially as it allows three-dimensional (3D) junctions of entangled anion exchange and cation exchange nanofibers. These newly developed BPMs are relevant to demanding applications, including acid and base production, fuel cells, flow batteries, ammonia removal, concentration of carbon dioxide, and hydrogen generation. However, these applications require the introduction of catalysts into the BPM to allow accelerated water dissociation, and this remains a challenge. Here, we demonstrate a versatile strategy to produce very efficient BPMs through a combined electrospinning-electrospraying approach. Moreover, this work applies the newly investigated water dissociation catalyst of nanostructured silica MCM-41. Several BPMs were produced by electrospraying MCM-41 nanoparticles into the layers directly adjacent to the main BPM 3D junction. BPMs with various loadings of MCM-41 nanoparticles and BPMs with different catalyst positions relative to the junction were investigated. The membranes were carefully characterized for their structure and performance. Interestingly, the water dissociation performance of BPMs showed a clear optimal MCM-41 loading where the performance outpaced that of a commercial BPM, recording a transmembrane voltage of approximately 1.11 V at 1000 A/m(2). Such an excellent performance is very relevant to fuel cell and flow battery applications, but our results also shed light on the exact function of the catalyst in this mode of operation. Overall, we demonstrate clearly that introducing a novel BPM architecture through a novel hybrid electrospinning-electrospraying method allows the uptake of promising new catalysts (i.e., MCM-41) and the production of very relevant BPMs.
引用
收藏
页码:45745 / 45755
页数:11
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