铁掺杂Co3O4锚定在空心碳纳米笼上的高效电催化析氧

Q3 Energy 燃料化学学报 Pub Date : 2023-05-01 DOI:10.1016/S1872-5813(22)60080-X
Jia-bing LUO , Xing-zhao WANG , Jun ZHANG , Yan ZHOU
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引用次数: 2

摘要

在本工作中,通过空气气氛中的阴离子交换和退火策略,成功地制备了由N掺杂的中空纳米笼碳骨架支撑的Fe掺杂Co3O4 OER电催化剂(Fe-Co3O4/NC)。XRD和HRTEM表征证实了Fe是将Fe引入Co3O4的晶格中。XPS表征表明,引入Fe后,Co的价态增加,这源于电子从Co2+/Co3+转移到Fe3+,并由阳离子的价电子构型诱导。它模拟了在OER过程中原位衍生为CoOOH活性物种的Co位点,这通过OER稳定性测试后的HRTEM和XPS表征得到了证实。电化学性能测试表明,Fe-Co3O4/NC电催化剂仅表现出275mV的过电位,以实现10mA/cm2的电流密度,并在100mA/cm2下稳定维持20小时。与20%Pt/C电催化剂一起,在自制的膜电极装置中,所组成的双电极系统只需要2.041V的外加电势就可以实现100mA/cm2的总水分解,具有工业应用前景。
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Fe-doped Co3O4 anchored on hollow carbon nanocages for efficient electrocatalytic oxygen evolution

In this work, a Fe-doped Co3O4 OER electrocatalyst supported by an N-doped hollow nanocage carbon framework (Fe-Co3O4/NC) was successfully prepared by anion exchange and annealing in an air atmosphere strategy. XRD and HRTEM characterizations confirm that Fe the incorporation of Fe into the lattice of Co3O4. XPS characterization clarifies that the valence state of Co increases after the introduction of Fe, which originates from the electrons transfer from Co2+/Co3+ to Fe3+ and is induced by the valence electron configuration of cations. It simulates Co sites in-situ derived into CoOOH active species during the OER process, which is confirmed by the HRTEM and XPS characterization after the OER stability test. Electrochemical performance tests show that the Fe-Co3O4/NC electrocatalyst only exhibits 275 mV overpotential to achieve a current density of 10 mA/cm2 and stably maintains for 20 h at 100 mA/cm2. Together with 20% Pt/C electrocatalyst, the composed two-electrode system only needs 2.041 V applied potential to achieve 100 mA/cm2 for total water splitting in a self-made membrane electrode device, which has industrial application prospects.

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来源期刊
燃料化学学报
燃料化学学报 Chemical Engineering-Chemical Engineering (all)
CiteScore
2.80
自引率
0.00%
发文量
5825
期刊介绍: Journal of Fuel Chemistry and Technology (Ranliao Huaxue Xuebao) is a Chinese Academy of Sciences(CAS) journal started in 1956, sponsored by the Chinese Chemical Society and the Institute of Coal Chemistry, Chinese Academy of Sciences(CAS). The journal is published bimonthly by Science Press in China and widely distributed in about 20 countries. Journal of Fuel Chemistry and Technology publishes reports of both basic and applied research in the chemistry and chemical engineering of many energy sources, including that involved in the nature, processing and utilization of coal, petroleum, oil shale, natural gas, biomass and synfuels, as well as related subjects of increasing interest such as C1 chemistry, pollutions control and new catalytic materials. Types of publications include original research articles, short communications, research notes and reviews. Both domestic and international contributors are welcome. Manuscripts written in Chinese or English will be accepted. Additional English titles, abstracts and key words should be included in Chinese manuscripts. All manuscripts are subject to critical review by the editorial committee, which is composed of about 10 foreign and 50 Chinese experts in fuel science. Journal of Fuel Chemistry and Technology has been a source of primary research work in fuel chemistry as a Chinese core scientific periodical.
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