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High Power Density Direct Formate Microfluidic Fuel Cells with the Different Catalyst-Free Oxidants

[Image: see text] As micropower devices, microfluidic fuel cells (MFCs) have gained much attention due to their simple configurations and high power densities. MFCs exploit the parallel laminar flowing of two electrolytes in a microchannel with a characteristic length from 1 to 1000 μm to separate t...

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Autores principales: Liu, Chunmei, Gao, Yanjun, Liu, Lei, Sun, Canxing, Jiang, Pengfei, Liu, Jingjie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9386720/
https://www.ncbi.nlm.nih.gov/pubmed/35990452
http://dx.doi.org/10.1021/acsomega.2c03840
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author Liu, Chunmei
Gao, Yanjun
Liu, Lei
Sun, Canxing
Jiang, Pengfei
Liu, Jingjie
author_facet Liu, Chunmei
Gao, Yanjun
Liu, Lei
Sun, Canxing
Jiang, Pengfei
Liu, Jingjie
author_sort Liu, Chunmei
collection PubMed
description [Image: see text] As micropower devices, microfluidic fuel cells (MFCs) have gained much attention due to their simple configurations and high power densities. MFCs exploit the parallel laminar flowing of two electrolytes in a microchannel with a characteristic length from 1 to 1000 μm to separate the anolyte and catholyte, without the proton exchange membranes in the traditional fuel cells. These membrane-less configurations can avoid a series of technical problems related to the membranes. To achieve an MFC with high power density and low cost, we constructed the direct formate MFCs with two catalyst-free oxidants containing FeCl(3) and Na(2)S(2)O(8) solutions, respectively, and compared the performance of the two MFCs. Due to Na(2)S(2)O(8) being an oxidant with some distinctive advantages, including its high theoretical potential, high solubility of itself and its reduction product, and environmental friendliness, the Na(2)S(2)O(8)-based MFC showed a higher open-circuit voltage (>2.0 V) and better performance. Then, we studied the effects of oxidant concentrations, flow rates, and fuel concentrations on the performance of the Na(2)S(2)O(8)-based MFC. The results showed the optimum performance of the Na(2)S(2)O(8)-based MFC with the peak power density of 214.95 mW cm(–2) and the limiting current density of 700.13 mA cm(–2) under the conditions of 1.5 M HCOONa, 2 M Na(2)S(2)O(8), and 300 μL min(–1) at an anolyte/catholyte flow ratio of 2:1. The performance was also the highest among the direct formate MFCs reported up to now. Moreover, the Na(2)S(2)O(8)-based MFC could stably discharge for about 4 h under a constant voltage. All of the results demonstrated that Na(2)S(2)O(8) was a suitable oxidant and that the Na(2)S(2)O(8)-based MFC could realize the goals of high power density and low cost for the actual application of MFCs.
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spelling pubmed-93867202022-08-19 High Power Density Direct Formate Microfluidic Fuel Cells with the Different Catalyst-Free Oxidants Liu, Chunmei Gao, Yanjun Liu, Lei Sun, Canxing Jiang, Pengfei Liu, Jingjie ACS Omega [Image: see text] As micropower devices, microfluidic fuel cells (MFCs) have gained much attention due to their simple configurations and high power densities. MFCs exploit the parallel laminar flowing of two electrolytes in a microchannel with a characteristic length from 1 to 1000 μm to separate the anolyte and catholyte, without the proton exchange membranes in the traditional fuel cells. These membrane-less configurations can avoid a series of technical problems related to the membranes. To achieve an MFC with high power density and low cost, we constructed the direct formate MFCs with two catalyst-free oxidants containing FeCl(3) and Na(2)S(2)O(8) solutions, respectively, and compared the performance of the two MFCs. Due to Na(2)S(2)O(8) being an oxidant with some distinctive advantages, including its high theoretical potential, high solubility of itself and its reduction product, and environmental friendliness, the Na(2)S(2)O(8)-based MFC showed a higher open-circuit voltage (>2.0 V) and better performance. Then, we studied the effects of oxidant concentrations, flow rates, and fuel concentrations on the performance of the Na(2)S(2)O(8)-based MFC. The results showed the optimum performance of the Na(2)S(2)O(8)-based MFC with the peak power density of 214.95 mW cm(–2) and the limiting current density of 700.13 mA cm(–2) under the conditions of 1.5 M HCOONa, 2 M Na(2)S(2)O(8), and 300 μL min(–1) at an anolyte/catholyte flow ratio of 2:1. The performance was also the highest among the direct formate MFCs reported up to now. Moreover, the Na(2)S(2)O(8)-based MFC could stably discharge for about 4 h under a constant voltage. All of the results demonstrated that Na(2)S(2)O(8) was a suitable oxidant and that the Na(2)S(2)O(8)-based MFC could realize the goals of high power density and low cost for the actual application of MFCs. American Chemical Society 2022-08-02 /pmc/articles/PMC9386720/ /pubmed/35990452 http://dx.doi.org/10.1021/acsomega.2c03840 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Liu, Chunmei
Gao, Yanjun
Liu, Lei
Sun, Canxing
Jiang, Pengfei
Liu, Jingjie
High Power Density Direct Formate Microfluidic Fuel Cells with the Different Catalyst-Free Oxidants
title High Power Density Direct Formate Microfluidic Fuel Cells with the Different Catalyst-Free Oxidants
title_full High Power Density Direct Formate Microfluidic Fuel Cells with the Different Catalyst-Free Oxidants
title_fullStr High Power Density Direct Formate Microfluidic Fuel Cells with the Different Catalyst-Free Oxidants
title_full_unstemmed High Power Density Direct Formate Microfluidic Fuel Cells with the Different Catalyst-Free Oxidants
title_short High Power Density Direct Formate Microfluidic Fuel Cells with the Different Catalyst-Free Oxidants
title_sort high power density direct formate microfluidic fuel cells with the different catalyst-free oxidants
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9386720/
https://www.ncbi.nlm.nih.gov/pubmed/35990452
http://dx.doi.org/10.1021/acsomega.2c03840
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