GHGELCAT · Electrocatalysis of greenhouse gases to fuels or chemical feedstocks on well-characterized materials
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2013-09-02 → 2016-09-01
- Финансиране от ЕС
- 259 745 €
- Участници
- 1
- Схема
- MC-IOF
Линиите свързват координатора с партньорите.
Накратко на български
Електрохимичните реакции на въглеродни и азотни съединения върху специфични повърхности помагат за превръщането на парниковите газове в горива или химикали. Това е важно за намаляване на вредните емисии, съхранението на енергия и развитието на химичната индустрия.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Electrocatalysis of greenhouse gases to fuels or chemical feedstocks on well-characterized materials
The fellow studied electrochemical reactions involving nitrogen- or carbon-containing species on well-defined surfaces. Such reactions are highly important for applications related to (i) the energy conversion, storage and utilization, namely transformations of electrical energy to chemical energy by making or breaking chemical bonds (ii) the environmental protection, namely cuts in greenhouse gas emissions, water remediation, removal of toxic compounds from waste streams etc (iii) and to the chemical industry, namely production of useful chemicals or feedstock molecules by electrochemical means (electrosynthesis). The main scientific objective of this project was to develop a better fundamental understanding of the underlying processes during the electrochemical conversions within the nitrogen or carbon cycle. In addition to the scientific objective, the second central focus of the work program was to provide training on complementary skills and facilitate the career development of the research fellow. The main achievements during this project are summarized in the following: TRAINING * The fellow was trained on single-crystal preparation techniques, on performing electrochemical experiments using single-crystal electrodes, and on utilizing complementary methods such as vibrational spectroscopy, online electrochemical mass spectrometry, online ion chromatography. * The fellow improved his project-management skills, presentation, communication and networking capabilities and finally reached an independent position after the end of this project. SCIENTIFIC The main conclusion in this project is that the selectivity and even the mechanism of electrochemical reactions involving nitrogen- or carbon- containing species can be strongly dependent on the surface structure: * Pt(100) is unique in carrying out the ammonia oxidation and the nitrite reduction to nitrogen gas. Instead, Pt(111) is inactive for ammonia oxidation. The mechanism of the ammonia oxidation reaction on Pt(100) involves a deprotonation step preceding the electron transfer, before the N-N forming step, a feature which is not captured by the existing mechanisms. *NO formation takes place on surface defects in parallel to ammonia oxidation. The key step for N-N coupling involves the dimerization of *NH or *NH2 species; the formation of *N is highly unfavorable on Pt(100). * The nitric oxide reduction yields the same final product (ammonium) on Pt(111) and Pt(100), but this is done via two different mechanisms. At low coverages, *NO reduction proceeds via *NHO on Pt(100) and *NOH on Pt(111). At high coverages, *NOH is the first hydrogenation product on Pt(100), while on Pt(111) both *NHO and *NOH can be formed. On Pt(100), the coverage-dependent reaction pathways, surface availability and surface atom occupancy is reflected to a transition from first- to second- order kinetics as the *NO coverage decreases. The above have a very important implication in electrocatalysis: A reaction mechanism obtained for a certain surface and coverage cannot be directly extrapolated to structurally different electrodes, where the surface abundance and stability of intermediates and spectators are dissimilar. * The nitric acid reduction in acidic solutions forms HNO2, which is in equilbrium with *NO which adsorbs on Pt(111), Cu(111) or Cu(100). However, Pt(100) can form *NOH which is oxidized to *NO at more positive potentials. In alkaline solutions, platinum is not active for nitrate reduction. Cu(111) reduces nitrate to nitrite, while the main product on Cu(100) is hydroxylamine.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The project aims to generate a fundamental understanding of electrochemical processes that will enable the conversion of excess electrical energy produced by renewable sources to chemical energy, and store it in the form of fuels or useful chemical feedstocks. This can be realized by conversions of greenhouse gas molecules within the carbon- or nitrogen-cycle. The mechanisms of the reduction of such gases, as for example CO2 and NOx, are overall very complex and not well understood. The bottleneck in both cases is that our state-of-the-art understanding of the C-C or N-N bond-making reactions is not sufficiently developed. The reason for this lack of fundamental understanding is that the vast majority of research in the field has not been carried out on well-characterized surfaces, making the interpretation of experimental data very difficult. In this project, model surfaces will be utilized following a surface science approach, to obtain the necessary insights and breakthroughs related to the important C-C or N-N bond-making steps. This understanding is essential before considering any potential applications. This approach has been pioneered by the outgoing host group for fuel cell reactions and has established them as world-leaders in the field of electrocatalysis. This eminently successful approach will be used in this project as a basis for understanding the reactions of greenhouse gases. The strength of this project lies on the wide range of ex-situ and in-situ characterization methods that will be employed, in which the outgoing host has world-class expertise and facilities which are the best of the state of the art at an international level. The applicant will receive world-class training which will be a massive boost for his European career development. Moreover, the return host is determined to absorb the unique knowledge that will be gained. The applicant and the return host aim to a long-term collaboration after the completion of this fellowship.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSITEIT LEIDEN · LeidenКоординаторНидерландия
Връзки
Данни: CORDIS, © Европейски съюз
