PLASMIONICO · Plasmon-resonance driven thermionic emitters for improved solar energy harvesting
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2019-09-01 → 2021-08-31
- Финансиране от ЕС
- 172 932 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Наноструктурирани метални повърхности се изследват за улавяне на инфрачервената светлина, която обикновено се губи в стандартните слънчеви панели. Това помага за подобряване на добива на чиста енергия и намаляване на вредните емисии в атмосферата.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Plasmon-resonance driven thermionic emitters for improved solar energy harvesting
The worldwide exponential growth in industrial activity and the increasing dependence on energy of our society have boosted anthropogenic emissions that unbalanced the natural carbon cycle. As a consequence, global warming is one of the greatest challenges nowadays and it requires immediate actions like the European Green Deal, to massively reduce greenhouse gas emissions. One way to mitigate it, is the replacement of fossil fuels with green sources. This prompted us to seek for clean energy solutions, either by developing new concepts or by improving existing ones. This is where this Marie Skłodowska Curie Action (MSCA) project, entitled “Plasmon-resonance driven thermionic emitters for improved solar energy harvesting (PLASMIONICO)” comes in. The project has had a clear perspective regarding this scenario, searching for alternatives to photovoltaics to harness near-infrared (NIR) solar light, the part of the solar spectrum which is normally wasted in conventional solar cells. The key concept is the use of purposely designed interfaces between a nanostructured metal and a semiconductor to efficiently absorb NIR solar light. The absorbed photons would then excite surface plasmons which end up injecting electrons from the metal into the semiconductor, generating a photocurrent. The underlying physical principle involves the utilization of the plasmonic modes supported by metallic nanostructures. Metals contain high densities of free electrons, moving through the solid like a compressible fluid but transporting electricity. Plasmons correspond to compressive waves of the electronic charge density, in an analogy of sound waves in liquids. At well-defined frequencies (wavelengths), so-called resonances, an electromagnetic field (light) readily couples to the charge carriers, transferring energy to the metal by launching plasmons. In nanostructured metals, plasmons are restricted to travel along the metal/dielectric interfaces. These (surface) plasmons have extremely large electromagnetic field enhancement close to places where the electronic charge density is higher, named hot spots. We aim to utilise these hot spots for the internal injection of electrons to produce a photocurrent. The project roadmap included the design, fabrication and characterization of photonic/plasmonic nanostructured NIR absorbers, the optimization of the material interfaces (i.e. metal/semiconductor interface) and the development a thermionic emitter demonstrator. The obtained results have shown that the fabricated nanostructures are compatible not only with materials typically used in photovoltaics such as silicon, but also with soft materials like conductive polymers.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
PLASMIONICO is an innovative proposal aiming at advancing sustainable energy production by developing a ""cold-cathode"" thermionic generator as key component of novel photovoltaic/thermoelectric (PV/TE) hybrid devices to outperform the solar cell and thermoelectric generator working separately. The cold cathode, instead of being brought to extremely high temperatures, produces the emission of electrons by the absorption of infrared (IR) photons in the unused region of the solar spectrum below the PV cell bandgap. The IR photons will launch plasmons at a nanostructured metallic cathode, which upon relaxation will generate a photocurrent. A great advantage is that plasmon-resonance driven thermionic emission is not restricted to a particular class of materials, working for Si-based devices as well as for organic (soft and flexible) materials, since the cathode temperature is that of a working solar cell. Research activities will span the whole added-value chain from fundamental studies of materials for thermionic generation, including the optimization of plasmonic nanostructures, reaching higher TRLs by realization of a thermionic demonstrator. PLASMIONICO would contribute to the current energy challenge, a priority in both the EU and ICMAB-CSIC research agendas. The proposal possesses high interdisciplinary character by merging activities in physics, chemistry, materials science and device technology, which together with the unique network of international partners will contribute to boost the track records and develop the career of the applicant.""
Оригинален текст от CORDIS (на английски).
Участници
- AGENCIA ESTATAL CONSEJO SUPERIOR DE INVESTIGACIONES CIENTIFICAS · MadridКоординаторИспания
Връзки
Данни: CORDIS, © Европейски съюз
