Supra-CNT · Supramolecular assembly of Janus Carbon Nanotubes into functional 3D microparticles
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2016-04-01 → 2019-01-12
- EU contribution
- €183,455
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Supramolecular assembly of Janus Carbon Nanotubes into functional 3D microparticles
Owing to their remarkable properties (electrical, mechanical, thermal and optical), carbon nanotubes (CNTs) have shown great potential for implementation both in microscopic electronic devices (e.g. field transistors, field emitters, nano-sensors), and macroscopic applications (filtration materials, structural materials, conductors, electrode materials and composites). To date however, most of the latter applications use disorganized CNTs, which as a result of their random orientation, entanglement and aggregation have poor overall properties. For example, CNTs are extremely attractive filter materials because of their intrinsic properties (e.g. large surface area, sorption of a wide range of pollutants, etc.). The use of powdered CNTs is not pursued as a scalable approach in water remediation because of the difficult recovery of the particles after filtration. A popular alternative is to work with immobilized CNT membranes, referred to as buckypapers. However, because of the random orientation of the CNTs, these do not allow control on geometry, porosity and pore shape, thus suffering from low permeability or low filter capacity. The production and commercialization of CNT based products is dependent on the possibility of designing and preparing hierarchically-structured CNT assemblies where the CNTs are synergistically collaborating to a real enhancement of the device’s characteristics, with minimal reciprocal perturbation. Tremendous efforts have been deployed for the production of CNT-based macroscopic assemblies, including: 1D yarns or fibers, 2D films, 3D gels and vertically aligned arrays. But their standardized continuous fabrication approach does not allow for the fine-tuning of their structure, and consequently their properties, for integration in composites and devices. A more versatile manufacturing processwould be desirable to achieve the necessary design flexibility required to overcome this limitation. Supra-CNT project defines a new methodology to precisely and deterministically engineer the order, morphology, and porosity of CNT assemblies at several length scales. At the interface between top-down and bottom-up approaches, Supra-CNT provides exceptional control of CNT manufacturing by addressing: the engineering of the single particles (i.e. surface chemistry); their controlled aggregation into definite microparticles; and the large-scale assembly of the latter, unlocking the preparation of unprecedented macroscopic hierarchized high-tech specialized CNT materials.
Data: CORDIS, © European Union
Project objective
The remarkable mechanical, electrical, thermal and optical properties of carbon nanotubes (CNTs) are only valid for individual particles, and are generally lost when bulk CNT materials are integrated in devices. The controlled manufacturing of macroscopic functional and high-performance CNT-materials, retaining the compelling properties of individual tubes, has hence become of paramount importance to allow their full exploitation within commercial products.With the Supra-CNT project we aim at tackling this compelling issue by performing an unprecedented sequential engineering of the architecture of CNT materials, from the nano-, to the micro- and macroscale level. Specifically, we intend to synthesise Janus amphiphilic CNTs, which will be able to self assemble into well-defined 3D microparticles following the instructions encoded in their pre-organised functionalisation. These structures will then be employed in large area self-assembly to form higher order macro-assemblies (i.e. colloidal crystals), achieving an unprecedented degree of hierarchisation and tailoring of the CNT material.By providing such controlled multiscale engineering, Supra-CNT will shed light on the structure-property relationships characterising CNT bulk materials. This knowledge will allow for the implementation of a property-conservative manufacturing of CNT-based materials, boosting their performance–to–cost ratio, and integration in a vast set of applications with high societal and industrial impact, such as high performance filters, catalysts, and energy storage devices.
Original text from CORDIS.
Participants
- THE CHANCELLOR MASTERS AND SCHOLARS OF THE UNIVERSITY OF CAMBRIDGE · CAMBRIDGECoordinatorUnited Kingdom
Links
Data: CORDIS, © European Union
