Bipolar Membrane Seawater Splitting for Hydrogen Production: A Review

Расщепление морской воды с использованием биполярной мембраны для производства водорода: обзор
Sanggono Adisasmito, K. Khoiruddin, Putu Doddy Sutrisna, I Gede Wenten, Utjok W.R. Siagian
2024-03-23

bipolar membrane electrolysisbipolar membrane synthesishydrogen productionseawater electrolysiswater dissociation
emissions, necessitating environmentally friendly alternatives. With its vast potential, seawater has garnered attention as a valuable resource for hydrogen production, especially in arid coastal regions with surplus renewable energy. Direct seawater electrolysis presents a viable option, although it faces challenges such as corrosion, competing reactions, and the presence of various impurities. To enhance the seawater electrolysis efficiency and overcome these challenges, researchers have turned to bipolar membranes (BPMs). These membranes create two distinct pH environments and selectively facilitate water dissociation by allowing the passage of protons and hydroxide ions, while acting as a barrier to cations and anions. Moreover, the presence of catalysts at the BPM junction or interface can further accelerate water dissociation. Alongside the thermodynamic potential, the efficiency of the system is significantly influenced by the water dissociation potential of BPMs. By exploiting these unique properties, BPMs offer a promising solution to improve the overall efficiency of seawater electrolysis processes. This paper reviews BPM electrolysis, including the water dissociation mechanism, recent advancements in BPM synthesis, and the challenges encountered in seawater electrolysis. Furthermore, it explores promising strategies to optimize the water dissociation reaction in BPMs, paving the way for sustainable hydrogen production from seawater.
1
Bipolar membranes create separate acidic and alkaline environments, transport protons and hydroxide ions, and block other cations and anions during seawater electrolysis.
2
Catalysts positioned at the bipolar membrane junction or interface can accelerate water dissociation and improve electrolysis performance.
3
Optimizing bipolar membrane synthesis and interfacial water dissociation is identified as a promising strategy for sustainable hydrogen production from seawater.
4
Seawater is a promising hydrogen source for arid coastal regions with surplus renewable energy, but direct electrolysis is hindered by corrosion, competing reactions, and impurities.
5
The water-dissociation potential of bipolar membranes, in addition to the thermodynamic potential, strongly influences seawater electrolysis efficiency.

bipolar membrane seawater electrolysis systems for hydrogen production

water dissociation, electrolysis efficiency, membrane synthesis, and challenges in BPM-based seawater splitting

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2024-03-23
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Sanggono Adisasmito
K. Khoiruddin
Putu Doddy Sutrisna
I Gede Wenten
Utjok W.R. Siagian
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