HOTSPOT · Accessing hot-spots in plasmonic nanoantennas
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2015-05-01 → 2017-04-30
- EU contribution
- €183,455
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Accessing hot-spots in plasmonic nanoantennas
Bright times for photocatalysis Photochemistry investigates the chemical effects of light. The first organic photochemical reaction was reported by Trommsdorff in 1834 when he described how crystals of R-santonin turn yellow and burst when exposed to sunlight. Only 15 years later, Pfizer and Erhart mixed that compound with almond toffee to create the first drug ever formulated in the USA. However, it was not until 2007 that the mechanism behind this reaction could be fully understood. This simple example shows the origin, uses and complexity of the interaction between light and molecules. In between, highly relevant processes to our daily life, such as vision and vitamin D activation, were also linked to light-driven chemical reactions. However, the most remarkable process of chemical transformations induced by light remains to be photosynthesis. The outstanding efficiency of plants for sunlight-into-energy conversion has highly inspired researchers across many different fields in order to understand how light is absorbed, transferred and storage in this system. In this project, I used the ability of plasmonic nanoparticles to absorb light and efficiently catalyse chemical reactions that by themselves will not proceed. A simplified mechanistic description behind the photochemical reactions implies the molecular absorption of a given-frequency photon. Once excited, the molecular energy-landscape is modified and this can trigger new molecular bonds formation or dissociation. Sunlight-induced chemical reactions are then strongly limited to molecular species that can absorb photons with frequencies in the visible range of the spectrum, where the sun emits more efficiently. However, the absorption of abundant environmental and biological relevant molecules such as CO, CO2, H2, H2O, glucose, among others, falls out of this range of the spectrum. Even though, it is possible to perform light-induced reactions on non-absorbing molecular species via the presence of a photocatalytic material. Briefly, the light is absorbed by the catalytic material and its electronic structure is modified, creating energetic electron-hole pairs inside the material. These photo-generated reactive carriers can then be transferred to molecular species nearby inducing chemical reactions. Indeed, light-induced chemical reactions on bulk catalytic metal surfaces (or photo-catalytic materials) have been explored for more than 50 years. Light absorption in the metal surface plays a key role in inducing photochemical transformations of adsorbed molecules. Our current ability to control both the absorption cross-sections and the energy of absorbed light by metal plasmonic nanoparticles opens new pathways for the manipulation of photochemical reactions. Physical phenomena associated to the localized surface plasmon resonances, such as energetic surface states and intensified electric fields, forces us to revisit our traditional understanding of photochemical reactions at metal surfaces. Long standing goals in the field – such as bond-selectivity and increased efficiency of photo-catalytic processes – might now be achievable, assisted by plasmonic nanoparticles. Along this project I have investigated the light-into-chemical energy conversion at the nanoscale by using metal plasmonic nanoparticles. In order to detect the places were these chemical reactions took place we used small gold nanopartilces to probe the reactive sites of plasmonic materials (see image attached of a plasmonic silver bow-tie antenna and two small gold nanoparticles used to track the chemical reaction). The results of this MSCA project have helped us to design new efficient materials to convert sunlight energy into chemical energy; this means using sunlight for fuel generation, pollutants degradation, etc. Controlling chemical reactions with high efficiency and selectivity will revolution our current capabilities to mimic plants and their photosynthesis process.
Data: CORDIS, © European Union
Project objective
Guiding molecules/nanomaterials to the right place in plasmonic nanoantennas is a key problem to be solved in order to benefit from the high electromagnetic field localization offered by these materials. Accessing these nanoscale-regions remains a significant challenge in plasmonics and is the main goal of this project. The novel approach introduced here is based on the field-enhancement properties of the nanoantennas, thus spatially selective to the hot-spots. This easy, fast and cheap strategy can allow selective and large-scale positioning of any kind of molecules and/or nanomaterials in a variety of plasmonic-nanoantenna hot-spots, independently of their shape and resonance position. This strategy can solve the big challenge of hot-spot modification in plasmonic nanoantennas thus opening new doors to many real applications ranging from biosensing to energy conversion.
Original text from CORDIS.
Participants
- IMPERIAL COLLEGE OF SCIENCE TECHNOLOGY AND MEDICINE · LondonCoordinatorUnited Kingdom
Links
Data: CORDIS, © European Union
