Technologies

In this section it is possible to view, also through targeted research, the technologies inserted in the PROMO-TT Database. For further information on the technologies and to contact the CNR Research Teams who developed them, it is necessary to contact the Project Manager (see the references at the bottom of each record card).

Displaying results 1 - 5 of 5

# Record card
61
Description

The compact-GC platform is a MEMS-based analytical module for the purge&trap pre-concentration and (gas)-chromatographic separation of a sample. The two analytical MEMS (pre-concentrator and GC column) are interconnected by means of a MEMS microfluidic manifold. The microfluidic manifold interconnects the analytical MEMS, but it also acts as injector through the integrated micro-valves.

Thematic areas
Tourism, social sciences and cultural heritage / Archeometry
Energy and environmental sustainability / Safety and security
ICT & Electronics / Sensor/multi-sensor technology, instrumentation
Materials / Processes of production & treatment of materials
Health & Biotech / Smart Devices for Health and Wellness
Agrifood / Food quality & safety
Energy and environmental sustainability / Energy production, transmission and conversion
Energy and environmental sustainability / Cleaner use of fossil fuels
Tourism, social sciences and cultural heritage / Safety and security
ICT & Electronics / Nanotechnologies related to electronics and microelectronics
Energy and environmental sustainability / Environmental engineering/technologies
Additive and advanced industrial manufacturing / Process control and logistic
Energy and environmental sustainability / Sensory
ICT & Electronics / Electronics and microelectronics
Chemicals & Physics / Separation technologies
# Record card
62
Description

We propose a portable chemical analysis system capable of identifying chemical substances at trace concentrations (sub-ppm), even in case of a complex matrix of interfering species.

Thematic areas
Tourism, social sciences and cultural heritage / Archeometry
Tourism, social sciences and cultural heritage / Safety and security
ICT & Electronics / Sensor/multi-sensor technology, instrumentation
ICT & Electronics / Optics & Acoustic
ICT & Electronics / Smart cities and Communities
ICT & Electronics / Robotics and control systems
ICT & Electronics / Optoacustic sensors, Optoelectronic devices
Additive and advanced industrial manufacturing / Process control and logistic
Chemicals & Physics / Separation technologies
Additive and advanced industrial manufacturing / Factory of the Future
Chemicals & Physics / Atomic and molecular spectroscopy
Health & Biotech / Smart Devices for Health and Wellness
Health & Biotech / Diagnostic, Medical imaging & advanced bioimaging
Energy and environmental sustainability / Safety and security
Health & Biotech / Medical Device
Energy and environmental sustainability / Natural disasters
Energy and environmental sustainability / Pollution treatment (air, soil, water)
Energy and environmental sustainability / Sensory
Measurement tools and Standards
ICT & Electronics / Electronics and microelectronics
# Record card
158
Description

Solid State Nuclear Magnetic Resonance spectroscopy (SSNMR) is today one of the most powerful techniques for characterizing solid and soft materials and systems. This spectroscopy allows the detailed characterization of structural and dynamic properties over large spatial (0.1-100 nm) and time (102-10-11 s) scales. Accessing these properties allows a deep knowledge of a material to be obtained and  its design and optimization to be oriented.

Thematic areas
ICT & Electronics
ICT & Electronics / Optoacustic sensors, Optoelectronic devices
ICT & Electronics / Nanotechnologies related to electronics and microelectronics
Additive and advanced industrial manufacturing
Additive and advanced industrial manufacturing / Packaging
Additive and advanced industrial manufacturing / Additive manufacturing processes and materials
Additive and advanced industrial manufacturing / Factory of the Future
Materials
Materials / Wood products
Health & Biotech
Health & Biotech / Nanomedicine
Health & Biotech / Diagnostic, Medical imaging & advanced bioimaging
Health & Biotech / Development of new drugs
Health & Biotech / Regenerative Medicine
Health & Biotech / Care, Hygiene, Cosmetics
Tourism, social sciences and cultural heritage
Tourism, social sciences and cultural heritage / Technologies for preservation of cultural heritage
Aerospace and Earth Science
Aerospace and Earth Science / Aeronautical technologies and avionics
Tourism, social sciences and cultural heritage / Multimedia technologies
Tourism, social sciences and cultural heritage / Archaeology
Agrifood
Agrifood / Agriculture
Agrifood / Food quality & safety
Automotive transport and logistics
Automotive transport and logistics / Vehicles
Automotive transport and logistics / Shipbuilding
Automotive transport and logistics / Innovative fuels
Chemicals & Physics
Energy and environmental sustainability
# Record card
134
Description

The working principle of VTTJ is extremely simple. Two parts (at least one with tube shape) are screwed one into the other with a mechanical interference that creates a metallic seal. One part presents a cylindrical slot, the other presents a conical ring, whose diameter is slightly larger than the one of the cylindrical slot. When the two parts are screwed together, a plastic deformation occurs in the mechanical interference region.

Thematic areas
Aerospace and Earth Science
Energy and environmental sustainability
Energy and environmental sustainability / Nuclear fission/nuclear fusion
Additive and advanced industrial manufacturing
Additive and advanced industrial manufacturing / Vacuum/High vacuum technologies
Materials
# Record card
30
Description

X-ray imaging techniques can work in i) "full-field mode" in which the object to study (or part of it) is completely illuminated by the X-ray beam; ii) "scanning mode" in which an X-ray beam, focused through an opportune optics, illuminates in succession contiguous areas of the sample under examination, and the transmitted wave is measured by a detector placed at a proper distance from it. One of these X-ray scanning microscopes is available at the facility (X-ray MicroImaging, XMIL@b) of the Institute of Crystallography (CNR-Bari).

Thematic areas
Chemicals & Physics / Man made fibres
Additive and advanced industrial manufacturing / Packaging
Materials
Health & Biotech / Diagnostic, Medical imaging & advanced bioimaging