{"id":8020,"date":"2020-11-27T16:41:42","date_gmt":"2020-11-27T16:41:42","guid":{"rendered":"https:\/\/www.innovationnewsnetwork.com\/?p=8020"},"modified":"2020-11-27T17:29:07","modified_gmt":"2020-11-27T17:29:07","slug":"developing-metamaterials-and-omniconnectivity","status":"publish","type":"post","link":"https:\/\/www.innovationnewsnetwork.com\/developing-metamaterials-and-omniconnectivity\/8020\/","title":{"rendered":"Metamaterials and Omniconnectivity development: a turning point in electronics"},"content":{"rendered":"

The NanoEngineering Network explains how Smart Metasurface Technology (a class of metamaterials) and the related concept of \u2018omniconnectivity\u2019 has the potential to boost Europe\u2019s competitiveness in the field of electronics<\/h2>\n

\u2018Metamaterials\u2019 refers to the artificial arrangement of multiple elements, carefully engineered to achieve advantageous and unusual electromagnetic or optical properties not present in Nature. It is a growing field that is now recognised all over the world. For example, \u2018optical metalenses\u2019 have been considered in the Top Ten Emerging Technologies<\/a> by the World Economic Forum in 2019. During Horizon 2020, more than 60 projects (>20 ERC grants) based on metamaterials have been funded. Furthermore, metamaterials have been identified as a valuable path for exploitation, even beyond civil applications<\/a>.<\/p>\n

An important class of metamaterial are \u2018metasurfaces\u2019, thin versions of metamaterials, which artificially modify the boundary conditions more than the constitutive parameters of the material. Furthermore, thanks to different actuation mechanisms (electrostatic, magnetostatic, thermal, optical, etc.) reconfigurability becomes possible.<\/p>\n

If we now imagine including distributed sensors and actuators to those active metasurfaces with exotic electromagnetic properties, we can create a novel key-enabling non-invasive broadband technology, which we denote here as \u2018Smart Metasurface Technology\u2019 (SMT). Preliminary documents in the next Horizon Europe calls already refer to this technology as \u2018Smart Skin\u2019.<\/p>\n

Such technology opens the path for a new era in communication and interaction between people, machines, and their environment. SMT puts humans and their interactions at the centre of the future digital society. This concept, which we call \u2018omniconnectivity\u2019, will be further elaborated on in the next section. It relies upon the mastery of nano-engineering across a wide range of scales and frequencies. Europe and European industries will have a chance to acquire worldwide leadership for the new generation of ICT nanosystems, with an enormous impact on the economy. It will also be a major contribution to the current and forthcoming discussions beyond Moore\u2019s Law and it will contribute to the repositioning of Europe in the ICT domain, beyond 5G.<\/p>\n

Of course, this visionary approach can only be reached through a very large-scale effort, considerably transcending the scope and extent of any conventional collaborative project. That is why a large initiative has been launched, incorporating selected institutions from the community of nanoarchitectronics, metamaterials, spintronics<\/a>, photonics, and phononics.\u00a0This initiative<\/a> has been proposed and well ranked in the last call for EU Flagships, which unfortunately was finally aborted.<\/p>\n

Today, even more due to the context of the COVID-19<\/a> pandemic, our approach represents an opportunity to strengthen the position of Europe worldwide, fostering a true Renaissance of EU-based ICT platforms and a new way of defining and exchanging data. Our initiative should be considered as a Dedicated Mission in the Horizon Europe framework, as overall knowledge is definitely settled in Europe.<\/p>\n

Omniconnectivity<\/h3>\n

Omniconnectivity encompasses real-time communication, sensing, monitoring, and data processing among humans, objects, and their environment (see Fig. 1). The omniconnectivity vision encompasses people in a new sphere of extremely simplified, intuitive, and natural communication. All ICT users could benefit from this new experience and see their quality of life enhanced in their everyday living and practice.<\/p>\n

A key enabling technology<\/h3>\n

The key enabling technology is denoted \u2018Smart Metasurface Technology\u2019 (SMT), and is based on smart metasurfaces (SM) \u2013 non-invasive, wireless, ultraflat functional systems which communicate with each other by exploiting networks (from the local up to the satellite level) and by using the whole frequency spectrum from microwave frequency to optics (see Fig. 1). SMT will be applicable to any surface, on any physical item, and thereby exponentially diversifies and increases connections among humans, wearables, vehicles, and everyday objects.<\/p>\n

SMs will be a highly complex hierarchical bidirectional (transmitting\/receiving) system, extremely thin at human scale, but complex at nanoscale (see Fig. 2). SMT will integrate enhanced connection\/elaboration capabilities and sensor functionalities at different scales (nano-, micro-, meso-, macro-scale). It will be intrinsically secure by material construction, energetically self-sufficient due to ad-hoc energy harvesting integrated modules, and cognitive\/adaptive via environment awareness. Its size at human scale will depend on the operational frequency range: it may have a size of up to several centimetres for an individual SM, and unlimited virtual dimensions when connected to co-operative SM networks.<\/p>\n

The creation of the SMT is the centrepiece and unifying scientific and technological goal of our action. Its creation requires an extraordinary and long-term effort in the integration of heterogeneous materials through nano-fabrication and multiscale modelling\/design. In the long term, SMTs will boost omniconnectivity by reducing the interaction with hand-held ICT to a minimum and, finally, making it \u2018transparent\u2019 to the user. SM will be composed of nano-objects, forming elementary functional items, which are aggregated\/integrated in different shapes and scales (from sub-nanometre to human-eye scale) to form systems whose final visible scale can have different dimensions, depending on the specific application and operational frequency range.<\/p>\n

To successfully operate across the whole range of frequencies and functionalities, SM will have a number of features, including:<\/p>\n