H2020Individual fellowship2016–2018

FUTBOL · Two Dimensional Materials for Bolometers of the Future

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2016-04-01 → 2018-03-31
EU contribution
€187,420
Participants
1
Scheme
MSCA-IF-EF-ST

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Results in brief

Two Dimensional Materials for Bolometers of the Future

Remote thermal sensing and imaging is currently one of the most prominent technological fields. It is raising a lot of industrial interest as its market value is expected to grow beyond $10 billion/year by 2020. Remote thermal sensing and imaging finds applications in fundamental research, industrial quality control, future communication networks (THz based), military, isolation in housing, smart buildings, etc. The most used approach for the required sensors is bolometers, which are uncooled radiation heat sensors. The route for improved performance is enhanced absorption of thermal radiation, improved thermal isolation, reduced thermal mass, increased sensitivity of thermal transduction and reduced noise. However, even though the route is clear, bolometer technology has stagnated over the last decade. FUTBOL aims to cause a paradigm shift in bolometer technology by making use of suspended devices made of atomically thin single crystalline sheets of material, 2D materials, to create a novel sensor with unseen resolution and measuring speed. Indeed, 2D materials are an attractive alternative to traditional bolometer materials. Their extreme aspect ratio allows for excellent thermal isolation, low areal mass density results in microscopic thermal mass and electrostatically tunable properties allows active tuning of temperature sensitivity and absorption of thermal radiation. The working principle of the 2D materials based bolometer is as follows: Absorbed thermal radiation heats up the suspended sheet, which can be monitored by measuring the induced change in the resonance frequency or electrical resistance. A schematic of the bolometer concept can be seen in the figure. Realization of the suggested 2D material based bolometer will contribute to the need for better, faster and cheaper bolometers. Existing applications will benefit from improve technology and new applications will emerge. For instance, thermal imaging sensors complements LIDAR, RADAR and ultrasonic scanners used in self-driving cars. The main objective of the FUTBOL project was to fabricate and characterize 2D material based bolometers. At the end of the FUTBOL project, we have successfully fabricated graphene based bolometers. The measured relative frequency change per absorbed microwatt is 0.7% which is comparable to state of the art resonating radiation sensors. The minimum detectable power was estimated to be 1.4 nW. By exchanging graphene with e.g. WSe2 we expected this value can be improved with orders of magnitude and be beyond state-of-the-art.

Data: CORDIS, © European Union

Project objective

Remote thermal sensing and imaging is currently one of the most prominent technological fields. Its market value is expected to grow beyond $10 billion/year by 2020. The simplicity and low price of uncooled radiation heat sensors, bolometers, have made them subjected for extensive research. The route for improved performance is enhanced absorption of thermal radiation, improved thermal isolation, reduced thermal mass, increased sensitivity of thermal transduction and reduced noise.Atomically thin crystalline materials, 2D materials, are an attractive alternative to traditional bolometer materials. Their extreme aspect ratio allows for excellent thermal isolation, low thermal mass, and electrostatically tunable electrical and optical properties allows for temperature sensing and strong light-matter interaction.FUTBOL aims to take the advantage of 2D materials, as new bolometer material, to create a novel sensor with unseen resolution and bandwidth. A strip of 2D material is suspended to thermally isolate it from its surroundings and form a Fabry-Pérot cavity. Thermal radiation is partly absorbed and partly transmitted into the cavity where it resonates. As the 2D material is not a perfect mirror it will eventually absorb a large fraction of the radiation. The conductivity of the 2D material is electrostatically tuned, using the gate voltage, to maximize absorption. It is utilized that an ultrathin metallic layer reaches 100% absorption when its resistance equals the product of the layer thickness times the vacuum impedance. Absorption of radiation leads to heating of the thermally self-sensing 2D material which is transduced either via changes in its electrical resistance or mechanical resonance frequency. Advantages of the bolometer design are minimal thermal mass, excellent thermal isolation, short time constant and the ability to electrostatically tune the absorption of radiation, combined leading to unseen resolution and bandwidth.

Original text from CORDIS.

Participants

  • ECOLE POLYTECHNIQUE FEDERALE DE LAUSANNE · LausanneCoordinatorSwitzerland

Links

Data: CORDIS, © European Union