FP7Reintegration grant2014–2018

NANOGROW · Growing Synthetic Load-Bearing Materials: Nano-Scale Fabrication of Bio-Inspired Materials for Marco-Scale Structural and Biomedical Applications

FP7 — People (Marie Curie Actions)

Duration
2014-03-01 → 2018-02-28
EU contribution
€100,000
Participants
2
Scheme
MC-CIG

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Results in brief

Growing Synthetic Load-Bearing Materials: Nano-Scale Fabrication of Bio-Inspired Materials for Marco-Scale Structural and Biomedical Applications

The NanoGrow project utilized a nano-fabrication coating technique to deposit highly reinforced brick-and-mortar nanocomposites as conformal coatings onto porous foam substrates. This processing strategy is a general route for fabricating highly porous, lightweight materials with controlled pore structures and mechanical properties that can be customized to suit diverse applications including scaffold materials for tissue engineering, or lightweight structures for aerospace and transport applications. The project also explored the novel use of cyclic mechanical loading as a processing parameter to target more deposition of thicker coatings in regions subjected to higher loading. This mechanically directed deposition was inspired by the ability of bone to adapt by depositing more material where mechanical loads are higher, leading to more efficient material utilization and better lightweight mechanical performance. The NanoGrow Career Integration Grant has enabled this pioneering work by establishing Dr Andrew R. Hamilton, the project leader and Fellow, as an independent researcher in the UK, first as a Lecturer at Queen’s University Belfast (QUB), and now as an Associate Professor at the University of Southampton (UoS). NanoGrow has achieved the following key outcomes: • Equipment and procedures have been established for implementing nano-fabrication of composite coatings onto substrates with complex three-dimensional pore structures. • The deposition of nanocomposite coatings was confirmed and the composition, morphology, and properties of the coatings were characterized. • A micromechanical model was implemented to predict the mechanical behavior of coated foams, was validated against experimental results, and employed as a design tool for coated porous material systems. • A range of processing conditions were explored and optimized for biomedical and lightweight structural application requirements (i.e. high mechanical properties, high porosity, low density, and fast production time). • The biocompatibility of nanocomposite-coated foams was characterized for biomedical applications. • The effects of environmental moisture were characterized and mitigated for biomedical and lightweight structural applications. • The effect of cyclic mechanical loading on coating deposition rate was explored as a route for mechanically adaptable and self-optimizing materials, inspired by bone. • A new X-ray microfocus computed tomography (microCT) facility was established at the initial host institute (QUB), and employed for three-dimensional structure and morphology measurements of coated foam materials. • One post-doctoral researcher, two PhD students, and several Master’s students have been trained in relevant technical and transferrable skills. • Additional external funding was secured from a UK national funder, the EPSRC (Engineering and Physical Sciences Research Council), to supplement NanoGrow activities, and more funding for further work is being pursued. • Outcomes have been disseminated in multiple conference contributions, journal articles, engagement at public outreach events, and a feature article highlighting research activities to a general audience. NanoGrow has bolstered research capability in the EU and impacted academic research by establishing novel material systems and fabrication techniques with large scope for further innovation through customized nano- and micro-structured porous materials, and for application as engineered tissue scaffold and lightweight load-bearing materials. Advanced materials are widely recognized as a key enabling technology with large economic and societal impacts by improving performance in aerospace, transport, and infrastructure, by improving treatment and outcomes in health care, and promoting sustainability by lowering carbon footprints & energy demand and limiting consumption of raw materials. The materials studied in this project will help realize this potential through development and characterization for biomedical and lightweight structural applications, and more efficient material utilization through self-optimization. The Fellow continues to advance these outcomes as an established academic in the UK, with active PhD projects and funding applications that are building upon the achievements of NanoGrow.

Data: CORDIS, © European Union

Project objective

This proposal will establish a program of research at Queen's University Belfast that will pursue a strategy for mimicking the bottom-up nature of biological growth to produce bulk, macro-scale materials that exhibit some of the salient features and advantageous properties observed in bone, teeth, shells, and deep-sea glass sponges. Layer-by-layer assembly of nanocomposite coatings onto porous, three-dimensional substrates will result in materials with uniquely customizable stiffness & porosity, and an exceptionally high upper bound on strength and stiffness as functions of density. These materials will be developed and characterized as tissue-scaffold materials for biomedical applications, and core materials in sandwich structures for lightweight structural applications. This bottom-up approach will enable exciting bio-inspired concepts for incorporating multifunctionality and improving mechanical performance. For example, implementing a nanocomposite coating with a deposition rate that can be controlled by the magnitude of the local mechanical deformation, will result in a growth process that is directed by external loads -- mimetic of bone growth and adaptation according to Wolff's law. The materials resulting from this project have the potential for significant economic impact by reducing fuel consumption and increasing energy output, and to contribute solutions to societal challenges related to health and energy/resources. The project will be led by an early-career researcher with strong academic credentials, a history of successful collaborations and high-impact publications, and a network of close professional contacts in Europe and North America. Supporting this work will establish an internationally mobile researcher in the European Research Area, promote collaboration and resource-sharing across national borders, and advance the key enabling technologies recommended by the European Commission for economic growth and resolution of societal challenges.

Original text from CORDIS.

Participants

Links

Data: CORDIS, © European Union