NANODIAMOND · Advanced technological applications of nanocrystalline diamond/amorphous carbon composite films
6РП — Действия „Мария Кюри“
- Период
- 2004-05-01 → 2006-04-30
- Финансиране от ЕС
- 212 955 €
- Участници
- 1
- Схема
- EIF
Линиите свързват координатора с партньорите.
Накратко на български
Нанодиамантените покрития, съставени от кристали и въглероден матрикс, се анализират за приложение при износоустойчиви повърхности и биомедицински изделия. Тези материали са важни, защото съчетават здравината на диаманта с гладка повърхност, което е необходимо за създаването на прецизни наноструктури.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Final Activity Report Summary - NANODIAMOND (Advanced technological applications of nanocrystalline diamond/amorphous carbon composite films)
Recently, nanocrystalline diamond films, either in pure form, or as a composite with NCD particles embedded in an amorphous matrix, have attracted considerable interest as such coatings retain to a large extent the extreme properties of polycrystalline diamond films but overcome one of their major disadvantages, i.e. the great surface roughness. Industry has already indicated strong interest into NCD/a-C films for a number of applications. However, in almost all investigations up to now, irrespective of the deposition route used for their preparation, the films are not thoroughly characterised, especially regarding the amounts of the crystalline and the amorphous phase, the nature and the properties of the matrix, and how the nature of the matrix influences the properties of the nanocomposite material. Thus, intensive fundamental research is required before industrial applications can be thought of. The scientific objectives of the project included the development of a technique for deposition of NCD/a-C coatings and the establishment of process parameters dependence of their properties; the detailed investigation of the basic film properties, and evaluation of the application relevant properties as wear resistant coatings, for biomedical purposes and as a new material with extreme properties for nanostructures and MEMS. The most important results and achievements of the project can be summarised by the following major points: nanocrystalline diamond films composed of diamond crystallites (3-5 nm) embedded in an amorphous carbon matrix were deposited by microwave plasma chemical vapour deposition (MWCVD) and the parameter window for the preparation of NCD was established; the films were rather smooth, with rms roughnesses down to 12 nm, which makes them appropriate for a number of applications; the average hardness of the NCD films was ca. 40 GPa, the indentation modulus ca. 390 GPa, and the elastic recovery about 75%. A possible reason for the somewhat low values (as compared to bulk diamond) may be the presence of the amorphous matrix with a volume fraction of 40-50%. On the other hand, the tribological performance of a wear protecting coating is not only determined by its hardness; rather, the toughness is of even higher importance. Here, the presence of the amorphous matrix may even be of advantage as it can help to prevent fatal brittle failure; the friction coefficient was on the order of 0.1 or even lower. No delamination of the coatings (neither inside nor alongside the wear track) took place during the tribo-tests even after 10,000 laps, revealing their good tribological properties; nano-scratch tests performed with progressive loading showed that the NCD films are well adherent to the substrates. In some cases full delamination did not take place even at the final load. In those areas where delamination had occurred, the underlaying substrate was heavily damaged, which proved the protecting nature of the NCD coating; the NCD/a-C coatings are not cytotoxic and do not induce adverse effects on cell health which is prerequisite for their biomedical applications; simulated body fluid tests revealed that the NCD films are bioinert, i.e. no deposition of hydroxyapatite was observed after the contact with a solution possessing a similar composition as blood plasma; this makes the NCD films appropriate for the coating e.g. of cardiovascular artificial components.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Nanocrystalline diamond (NCD) films are expected to possess the superior properties of diamond combined with smooth surfaces and a low stress. The scientific objectives of the project include the investigation of the deposition, Characterisation and technological applications of NCD/a-C composite films. The films composed of NCD (with grain sizes up to 10nm) dispersed in an amorphous carbon matrix (a-C) will be prepared by microwave plasma chemical vapour deposition (MWCVD) and will be optimised concerning not only the crystallite size but also the nature of the matrix and especially regarding the combined effect of both components of the composite on the film properties for advanced applications. The obtained layers will be thoroughly investigated with respect to their basic (crystallite size, morphology, bonding structure of the matrix, composition of the matrix) and application relevant (deposition area, homogeneity, hardness, friction coefficient, stress, biocompatibility, etc.) properties. The possible applications of NCD/a-C films as wear resistant coatings for biomedical purposes and as a new material with extreme properties in micro-an nanostructure technology (for MEMS, AFM tips, membranes) will be evaluated. The training objectives of the proposal are closely related to the scientific ones and include gaining of knowledge for new deposition techniques, appropriate for preparation of advanced materials, for new analytical techniques, as a part of the extensive characterisation necessary for the thorough investigation of the materials and for testing of the functionalities of the materials with the application of multidisciplinary approaches, e.g. microtechnology, biological and chemical methods.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSITAET KASSEL · KASSELКоординаторГермания
Връзки
Данни: CORDIS, © Европейски съюз
