Efficient: it will enable extremely low loss and ultra-low power consumption as well as full autonomy in the long-term.<\/li>\n<\/ul>\nToday, this may sound impossible, however recent breakthroughs in nanoengineering show the way to make it real.<\/p>\n
Fundamental Scientific approach<\/h3>\n SMT will exploit EM waves for transmitting\/ receiving information to\/from the environment and will use heterogeneous wave-type physical mechanisms to transfer the information between different points of the nano-structured material. The EM wave transmission\/reception functionality will be performed, depending on the frequency, by the dynamic reconfigurability and adaptation of the EM boundary conditions at the interface with the free-space, or by creating a virtual effective sensitive surface through communication with other SMs.<\/p>\n
In reception mode, the SM reconfigurability will be performed adaptively in order to maximise the coupled energy on a large scale of frequencies, matching the boundary with the spatial change of the external EM signal. The transfer of information between different points of the SM at nanoscale distances will exploit the emerging electromagnetic properties of nanomaterials and their interaction with photons and other quasi-particles (spins, magnons, phonons, etc.) as information carriers to make the SM cognitive. The ground-breaking unifying approach is the use of all wave phenomena almost in their entirety, deploying the state variables best suited for any given information-processing task at component, system, and network level.<\/p>\nFig. 2: The scale of Smart Metasurface Technology (SMT)<\/figcaption><\/figure>\nThe SMT revolution of communication<\/h3>\n SM and computing resources integrated on the surface of any infrastructure, transportation platform, or everyday object will interact upon request, activated by an SM belonging to a person. A simple touch, a near field interaction, and\/or a wireless transmission will allow the transfer of pre-determined information from and to a network of sensors and devices. These will trigger reactions\/actions that could prevent accidents, adapt the living\/working environment at predefined personal settings, or take preventative measures in the case of health issues. If a more structured interaction with an instrument\/device is required, SMT-driven holographic interfaces (e.g., a holographic keyboard) will be used to interact with other communication devices, or with any complex instruments physically located or integrated at other places. This will open a new era of truly intuitive, hands-free, human-machine collaboration, while reserving the relevant decisions about interactions to the human in a fully secured and personal sphere (see SMT and data protection in next section).<\/p>\n
Transparency<\/h3>\n Transparent technology refers to a non-invasive technology which makes use of minimum number of devices and which is minimally visible to the user. The technology will become increasingly \u2018unnoticeable\u2019 and simple to use, while remaining pervasive, and will also remain totally secure and controllable by the user. In the future, it will no longer be necessary to use keyboards, smart phones, PCs, or smart watches. Through touching\/sensing or using voice commands, the SMT will allow users to become connected or to enable\/disable functions. It will shift the paradigm of communication from symbolic and textual to gestural, haptic, and verbal modalities (the \u2018Tactile Internet\u2019).<\/p>\n
SMT will allow system-control upon perceptual motion skills, relying on the way humans physically interact with their environment. It will support interaction with computation through our full human and bodily capabilities such as walking, touching, and cueing.<\/p>\nFig. 3: Examples of transparent Smart Metasurface Technology. Top: holographic table-top team-work enabled by SM<\/figcaption><\/figure>\nThe integration of functionalities<\/h3>\n The proposed technology allows a huge number of micro- and nano-devices to be integrated onto a single interface, thereby providing an unprecedented number of coexistent functionalities. Sensing and actuation will be integrated into a single SMT, leading to extraordinary developments in haptics and smart material actuators. Furthermore, a network of SMTs will permit sensing information and action commands to be despatched in an efficient and natural way. The fusion of this amount of sensing information will anticipate and prevent possible dangerous situations, operating in the background, (e.g. the lack of a driver\u2019s responsiveness) or to identify global risks, such as urban pollution, or imminent calamities, providing a capillary and almost instantaneous network of information and the initiation of required preventive actions.<\/p>\n
Computations and cognitions<\/h3>\n Thanks to the extreme reconfigurability of the SMT network, new computation models (e.g. neuromorphic schemes) can also be implemented, choosing the most suitable solution for a given computation task. Simple computation tasks can be performed by single SM and more complex tasks by SM networks or remotely by Clouds. Furthermore, SMs can be connected to distributed computational networks performing a specific task in time by developing ad hoc cognitive capabilities through mutual dynamic reconfiguration.<\/p>\n
Data Protection<\/h3>\n The striking potential of SMT is further enhanced by its ability to ensure both top security and personal privacy control. Due to the intrinsic nature of SMT, secure functions will be implemented naturally and used for real-time data cryptography. Operating at the nanoscale will benefit from the quantum properties and thus create robust hardware modules such as encryption\/decryption key generators with a high degree of randomness (e.g., spin- or photonic-based random generators). Furthermore, the embedded computation capability will further enhance this module security by pre-processing on local nodes before connection with the external environment (edge computing).<\/p>\n
Autonomy<\/h3>\n Energy harvesting modules based on spintronics and other novel technologies will enable SMs to harvest energy directly from their environment. The power consumption of ICT, including local or remote computation, will be reduced to the very minimum to reach 24\/7 autonomy in the long term. SMs will be automatically recharged by a certain movement or by the body heat of an individual. SMs applied to objects, such as cars or satellites, will be recharged by the actuation of breaks or by the surrounding electromagnetic radiation.<\/p>\nFig. 4: Cognition: traffic avoidance control based on Smart Metasurface network<\/figcaption><\/figure>\nConclusions<\/h3>\n To conclude, we believe that Smart Metasurface Technology, and the related concept of omniconnectivity, is a great opportunity for Europe to reinforce its position on the market of communication and electronics compared to other macro-regions (such as the USA and China and the rest of Asia). It will provide EU companies, from SMEs to large groups, from those which already exist to new spin-offs and start-ups, with a new opportunity to have a stronger role in the development of the future of electronics, a sector which has been overwhelmed by the concentration of silicon foundries in Asia. These are all examples of a clear benefit which will increase the competitiveness of EU industry and the influence of EU companies in specific market segments. This will bring back investments, high value-added industries, and growth to the EU.<\/p>\n
It is high time the European Commission considers this initiative as a Dedicated Mission in the Horizon Europe framework, paving the way for the Renaissance of EU-based ICT.<\/p>\n
Other participants from the NanoEngineering network:<\/h3>\n Stefano MACI (Universit\u00e0 di Siena); Giampiero GERINI (TNO); Jean CHAZELAS (Ultimetas); Daniel DOLFI (Thales); Thi-Quynh-Van HOANG (Thales); Brigitte LOISEAUX (Thales); Alessandro GARIBBO (Leonardo); Giuseppe VECCHI (Politecnico di Torino); Filiberto BILOTTI (Universit\u00e0 Roma 3); Charlotte TRIPON-CANSELIET (ESPCI PARIS)<\/p>\n
Paolo Bortolotti<\/strong> \nDirector<\/strong> \nJoint laboratory CNRS-Thales at Palaiseau<\/strong> \nDirector<\/strong> \nSpinTronicFactory<\/strong> \npaolo.bortolotti@thalesgroup.com<\/a><\/strong> \nhttps:\/\/cnrs-thales.fr<\/a><\/strong> \nwww.spintronicfactory.eu<\/a><\/strong><\/p>\nPlease note, this article will also appear in the fourth edition of our\u00a0<\/em><\/strong>new quarterly publication<\/strong><\/em><\/a>.<\/em><\/strong><\/p>\n","protected":false},"excerpt":{"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<\/p>\n","protected":false},"author":13,"featured_media":8025,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"_acf_changed":false,"_monsterinsights_skip_tracking":false,"_monsterinsights_sitenote_active":false,"_monsterinsights_sitenote_note":"","_monsterinsights_sitenote_category":0,"footnotes":""},"categories":[766,24429,830],"tags":[529,22750],"acf":[],"yoast_head":"\n
Metamaterials and Omniconnectivity development: a turning point in electronics | Innovation News Network<\/title>\n \n \n \n \n \n \n \n \n \n \n \n \n \n\t \n\t \n\t \n \n \n \n \n \n\t \n\t \n\t \n