Modified Cellulose Proton-Exchange Membranes for Direct Methanol Fuel Cells

Модифицированные целлюлозные протонобменные мембраны для прямых метанольных топливных элементов
Gowthami Palanisamy, Tae Hwan Oh, Sadhasivam Thangarasu
2023-01-27

cellulose nanofiberscellulose-based materialsdirect methanol fuel cellsmethanol permeabilityproton-exchange membranes
A direct methanol fuel cell (DMFC) is an excellent energy device in which direct conversion of methanol to energy occurs, resulting in a high energy conversion rate. For DMFCs, fluoropolymer copolymers are considered excellent proton-exchange membranes (PEMs). However, the high cost and high methanol permeability of commercial membranes are major obstacles to overcome in achieving higher performance in DMFCs. Novel developments have focused on various reliable materials to decrease costs and enhance DMFC performance. From this perspective, cellulose-based materials have been effectively considered as polymers and additives with multiple concepts to develop PEMs for DMFCs. In this review, we have extensively discussed the advances and utilization of cost-effective cellulose materials (microcrystalline cellulose, nanocrystalline cellulose, cellulose whiskers, cellulose nanofibers, and cellulose acetate) as PEMs for DMFCs. By adding cellulose or cellulose derivatives alone or into the PEM matrix, the performance of DMFCs is attained progressively. To understand the impact of different structures and compositions of cellulose-containing PEMs, they have been classified as functionalized cellulose, grafted cellulose, acid-doped cellulose, cellulose blended with different polymers, and composites with inorganic additives.
1
Adding cellulose or cellulose derivatives to PEMs progressively improves DMFC performance, according to the reviewed studies.
2
Cellulose-based materials offer cost-effective alternatives for developing proton-exchange membranes in direct methanol fuel cells.
3
Cellulose-containing PEMs are categorized into functionalized, grafted, acid-doped, polymer-blended, and inorganic-additive composite structures.
4
Commercial fluoropolymer proton-exchange membranes provide strong DMFC performance but are limited by high cost and methanol permeability.
5
Microcrystalline cellulose, nanocrystalline cellulose, cellulose whiskers, cellulose nanofibers, and cellulose acetate have been investigated as cellulose-based PEM components.

cellulose-based proton-exchange membranes used in direct methanol fuel cells (DMFCs)

the effects of cellulose and cellulose derivatives, including their structures, compositions, and functionalizations, on DMFC performance, cost, and methanol permeability

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2023-01-27
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Gowthami Palanisamy
Tae Hwan Oh
Sadhasivam Thangarasu
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