Identifying active surface phases for metal oxide electrocatalysts: a study of manganese oxide bi-functional catalysts for oxygen reduction and water oxidation catalysis

文献信息

发布日期 2012-09-18
DOI 10.1039/C2CP40841D
影响因子 3.676
作者

Hai-Yan Su, Yelena Gorlin, Isabela C. Man, Federico Calle-Vallejo, Thomas F. Jaramillo, Jan Rossmeisl


查看原文

摘要

Progress in the field of electrocatalysis is often hampered by the difficulty in identifying the active site on an electrode surface. Herein we combine theoretical analysis and electrochemical methods to identify the active surfaces in a manganese oxide bi-functional catalyst for the oxygen reduction reaction (ORR) and the oxygen evolution reaction (OER). First, we electrochemically characterize the nanostructured α-Mn2O3 and find that it undergoes oxidation in two potential regions: initially, between 0.5 V and 0.8 V, a potential region relevant to the ORR and, subsequently, between 0.8 V and 1.0 V, a potential region between the ORR and the OER relevant conditions. Next, we perform density function theory (DFT) calculations to understand the changes in the MnOx surface as a function of potential and to elucidate reaction mechanisms that lead to high activities observed in the experiments. Using DFT, we construct surface Pourbaix and free energy diagrams of three different MnOx surfaces and identify 1/2 ML HO* covered Mn2O3 and O* covered MnO2, as the active surfaces for the ORR and the OER, respectively. Additionally, we find that the ORR occurs through an associative mechanism and that its overpotential is highly dependent on the stabilization of intermediates through hydrogen bonds with water molecules. We also determine that OER occurs through direct recombination mechanism and that its major source of overpotential is the scaling relationship between HOO* and HO* surface intermediates. Using a previously developed Sabatier model we show that the theoretical predictions of catalytic activities match the experimentally determined onset potentials for the ORR and the OER, both qualitatively and quantitatively. Consequently, the combination of first-principles theoretical analysis and experimental methods offers an understanding of manganese oxide oxygen electrocatalysis at the atomic level, achieving fundamental insight that can potentially be used to design and develop improved electrocatalysts for the ORR and the OER and other important reactions of technological interest.

相关文献

Inside front cover

Cover

DOI: 10.1039/C3PY90010J

Contents list

2021-10-26 Front/Back Matter

DOI: 10.1039/D1RE90044G

Thinking continuously: a microreactor for the production and scale-up of biodegradable, self-assembled nanoparticles

Christina Petschacher, Andreas Eitzlmayr, Julian Wagner, Jan Barthelmes, Andreas Bernkop-Schnürch, Andreas Zimmer

2013-01-21 Paper

DOI: 10.1039/C3PY20939C

Computational modelling of adsorption and diffusion properties of CO2 and CH4 in ZIF-8 for gas separation applications: a density functional theory approach

Hari P. Paudel, Wei Shi, David Hopkinson, Janice A. Steckel, Yuhua Duan

2021-01-13 Paper

DOI: 10.1039/D0RE00416B

Synthesis of nanogel–protein conjugates

Nicholas M. Matsumoto, Daniella C. González-Toro, Reuben T. Chacko, Heather D. Maynard, S. Thayumanavan

2013-02-27 Paper

DOI: 10.1039/C3PY00085K

An optimization-based model discrimination framework for selecting an appropriate reaction kinetic model structure during early phase pharmaceutical process development

Maitraye Sen, Alonso J. Arguelles, Stephen D. Stamatis, Salvador García-Muñoz, Stanley Kolis

2021-09-07 Paper

DOI: 10.1039/D1RE00222H

Inside front cover

Cover

DOI: 10.1039/C3PY90037A

Practical polymerization of functionalized lactones and carbonates with Sn(OTf)2 in metal catalysed ring-opening polymerization methods

David M. Stevens, Harry A. Watson, Marc-Andre LeBlanc, Ray Y. Wang, Joanne Chou, Westley S. Bauer, Eva Harth

2013-02-11 Paper

DOI: 10.1039/C3PY21119C

Poly(amidoamine) modified graphene oxide as an efficient adsorbent for heavy metal ions

Yang Yuan, Guanghui Zhang, Yang Li, Guoliang Zhang, Fengbao Zhang, Xiaobin Fan

2013-01-11 Paper

DOI: 10.1039/C3PY21128B

Effect of reactive oxygen species on the kinetics of free radical photopolymerization

R. Pynaert, J. Buguet, C. Croutxé-Barghorn, P. Moireau, X. Allonas

2013-02-05 Paper

DOI: 10.1039/C3PY21163K

您可能还喜欢

化合物问答

如何储存1,2-环己二酮环乙缩醛(CAS号:4746-96-7)?

1,2-环己二酮环乙缩醛应储存在阴凉、干燥、通风良好的地方,避免阳光直射。建议使用密封容器保存,并保持环境温度在室温范围内,远离火源和热源。

4746-96-71,4-Dioxaspiro[4.5]d...
化合物问答

Ecopladib(CAS号:381683-92-7)的市场或研究趋势如何?

Ecopladib作为一种新型的药物,主要应用于治疗高胆固醇等疾病。目前,市场和研究趋势显示,Ecopladib因其独特的药理作用而受到关注。随着对心血管疾病治...

381683-92-7Ecopladib
化合物问答

2,3-Dimethyl-3H-imidazo[4,5-c]pyridine(CAS号:52538-09-7)通常如何合成?

2,3-二甲基-3H-咪唑[4,5-c]吡啶通常通过咪唑和2,3-二甲基吡啶的缩合反应合成。具体来说,将咪唑和2,3-二甲基吡啶在适当的溶剂中进行加热或加压反应...

52538-09-72,3-Dimethyl-3H-imid...
化合物问答

2,3,4,5-tetrahydro-1H-3-苯并氮杂环;盐酸盐(CAS号:17379-01-0)的市场或研究趋势如何?

该化合物在药物化学和有机合成中有一定的应用。近年来,随着对新型药物化合物的需求增加,该化合物的研究趋势主要集中在探索其生物活性,尤其是其在神经系统疾病治疗中的潜...

17379-01-02,3,4,5-Tetrahydro-1...
化合物问答

解草嗪(CAS号:68-90-6)安全吗?

解草嗪具有一定的化学毒性,因此在操作过程中需要采取适当的防护措施。应避免吸入、皮肤接触和眼睛接触。处理时应佩戴化学防护手套、实验服和护目镜。

68-90-6(2-Ethyl-1-benzofura...
化合物问答

如何储存盐酸甘氨酸丁酯(CAS号:13048-99-2)?

盐酸甘氨酸丁酯应储存在阴凉、干燥、通风良好的地方,避免阳光直射和高温环境,温度应控制在25℃以下。储存容器应密封,避免与空气中的水分和酸性物质接触,以防发生水解...

13048-99-2Butyl glycinate hydr...
化合物问答

什么是2-Iodo-N,N-dimethylbenzamide(CAS号:54616-46-5)?

2-碘-N,N-二甲基苯胺是一种有机化合物,化学名为2-Iodo-N,N-dimethylbenzamide。其分子式为C<sub>9</sub>H<sub>1...

54616-46-52-Iodo-N,N-dimethylb...
化合物问答

如何储存2-氨基-N-环己基乙酰胺(CAS号:16817-90-6)?

应储存于阴凉、干燥、通风良好的地方,避免高湿度和光照,最好存放在密封容器中。

16817-90-6N-Cyclohexylglycinam...
化合物问答

5-溴-2-(4H-1,2,4-三唑-4-基)吡啶(CAS号:959240-99-4)的市场或研究趋势如何?

随着医药、农药和新材料领域的发展,该化合物作为关键中间体的应用日益增多。特别是在药物合成中,由于其独特的化学性质,可以用于合成多种药物分子。未来的研究趋势可能集...

959240-99-45-Bromo-2-(4H-1,2,4-...
化合物问答

2,4-二溴-6-三氟甲基嘧啶(CAS号:785778-00-9)通常如何合成?

2,4-二溴-6-三氟甲基嘧啶通常通过溴化反应合成。首先,将6-三氟甲基嘧啶与溴化剂(如液溴)在适当的溶剂(如二氯甲烷、四氢呋喃)中反应,加入适当的催化剂(如四...

785778-00-92,4-Dibromo-6-(trifl...

来源期刊

Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics
CiteScore: 5.5
自引率: 10.3%
年发文量: 3036

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.

推荐化合物

推荐供应商

免责声明
本页面提供的学术期刊信息仅供参考和研究使用。我们与任何期刊出版商均无关联,也不处理投稿事宜。如有投稿相关咨询,请直接联系相关期刊出版商。
如发现页面信息有误,请发送邮件至 support@chemtradehub.com 联系我们。我们将及时核实并处理您的问题。