FP7Реинтеграция2009–2013

PHOTOCAT · Photoinduced Catalysis in a Nanoparticle System

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2009-11-01 → 2013-10-31
Финансиране от ЕС
100 000 €
Участници
1
Схема
MC-IRG

Линиите свързват координатора с партньорите.

Накратко на български

Метални наночастици с форма на купички и молекулярни превключватели се използват за управление на химични реакции чрез светлина. Това помага да се разбере каке е поведението на малки обекти в затворени пространства и как да се контролира тяхното улавяне и освобождаване.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Photoinduced Catalysis in a Nanoparticle System

Executive Summary: The initial goal of the project was to develop a new family of photoswitchable catalysts based on metallic nanoparticles co-functionalized with mixed monolayers comprising photoswitchable and catalytic ligands. This strategy failed because of synthetic difficulties described in detail separately. However, we envisioned two alternative approaches to light-controlled catalysis: we have successfully prepared and characterized these two systems, as well as demonstrated first examples of photocontrolled catalysis. The first of these systems is based on “nanobowls”: metallic nanoparticles with a unique shape of a bowl. These entities - likely the smallest metallic containers prepared to date - were synthesized by performing the so-called galvanic replacement reaction on heterodimeric nanoparticles, each comprising a reactive, silver, as well as a “dummy”, magnetite domain. We showed that it is possible to control both the cavity size as well as overall dimensions of the nanobowls. Furthermore, we demonstrated nanobowls’ ability to capture small objects inside their cavities, which is important in the context of studying the behavior - in particular, chemical reactivity - of these objects (e.g. small nanoparticles) inside the confinement of the nanobowl cavities. Most recently, we decorated the surfaces of nanobowls with photoresponsive ligands, which opens up the way to reversibly capture and release different guests using light. The second of the light-controlled catalysis systems is based on spherical metallic nanoparticles functionalized with monolayers of molecular switches (azobenzenes or spiropyrans). In the “ground” state, these molecules exist in the form of relatively non-polar isomers, and the particles are soluble in hydrophobic solvents. Upon exposure to UV light, however, both types of molecules transform to give significantly more polar isomers, which entails nanoparticle aggregation. We modified the system such that the particles do not assemble into amorphous aggregates, but rather crystallize to give well-defined, three-dimensional colloidal crystals featuring nanopores between the densely packed spheres. Further, we demonstrated that small molecules intentionally added to the solution are captured within these nanopores - and their effective molarity increases by orders of magnitude. In cases where these small molecules can react with one another, we observe a significant increase in reaction kinetics, and the system shows a catalytic behavior: once a reaction has completed, the colloidal crystals can be disassembled upon exposure to visible light, and in the next UV-Vis irradiation cycle, additional “substrate” molecules can be converted into products. To further expand the concept of control chemical reactions using external stimuli, we prepared “dual-responsive” nanoparticles comprising superparamagnetic cores and light-switchable shells. We showed that the assembly behavior of these particles - and therefore, in the long run - chemical reactivity can be controlled independently using light and magnetic field. Overall, the Fellow believes he has successfully re-integrated within the FP7 associated country. His is now a faculty member at the Department of Organic Chemistry at the Weizmann Institute of Science.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Metal nanoparticles (NPs) have been studied intensely in the last decade due to their novel optical, catalytic and electronic properties. Because of the nanoscopic size of NPs, self-assembly has been by far the most important means of generating higher-order architectures. Light is a particularly attractive means to self-assemble of NPs because it can be delivered instantaneously and into a precise location. In order to render NPs photoactive, their surfaces need to be functionalized with photoresponsive ligands. As an incoming Independent Researcher at the Weizmann Institute of Science, the Applicant wishes to develop new nanomaterials resulting from this marriage of nanoscience and organic chemistry. The Applicant has extensive experience in the fields of nanoscience and organic chemistry, acquired during the last several years at Northwestern University, USA. In the proposed project, he would like to develop a NP-based system, in which catalysis is regulated by light. This system takes advantage of his previous research, which has shown that NPs can be reversibly assembled and disassembled using light (PNAS 2007, 104, 10305; Science 2007, 316, 261). For NPs decorated with mixed monolayers comprising photoswitches and molecular catalysts, disassembly of such aggregates will result in a drastic increase of a catalytic surface area exposed to the solvent, and therefore in effective catalysis of a model reaction. As a result, self-assembly process will be transduced into catalytic activity. The system will then be extended to include various types of NPs functionalized with mixtures of different photoswitches and catalysts. These NPs will assemble / disassemble when exposed to different wavelengths of light. The ultimate goal of the project is to demonstrate that in a complex mixture of mutually incompatible chemicals, reactions can be turned ""on"" and ""off"" using light of different wavelengths, in a way similar to enzymatic regulation of reactions in living cells.""

Оригинален текст от CORDIS (на английски).

Участници

  • WEIZMANN INSTITUTE OF SCIENCE · RehovotКоординаторИзраел

Връзки

Данни: CORDIS, © Европейски съюз