2D cRystals On a Puddle
Lead Research Organisation:
University of Manchester
Department Name: Chemistry
Abstract
Metastable phases are key in our life: majority of condensed phases of organic compounds are metastable, including lipids and
proteins. However, metastable phases are typically very difficult to access and to further exploit in applications, as they are separated by small energy barriers and have very short lifetimes. In the case of organic compounds, the presence of metastable forms (polymorphs) makes very challenging to control the crystal's size, shape and structure, which ultimately determine their physical properties. A large effort has been spent in developing and designing techniques that allow to control polymorphism. One of the most attractive strategy is based on confinement, achieved by using capillaries, microporous materials, nanoporous media, and surfaces. However, the control of size and polymorphism by confinement is still not fully understood, by limiting further exploitation of these crystals in applications.
2DROP focuses on a ground breaking approach that will enable to access crystallization in thin molecular layers and to fine-tuning the crystal composition, structure and thickness, possibly down to the monolayer. This approach will be used to get the insights on crystallization under extreme confinement, where the discrete nature of the medium is expected to arise; to establish a new way to make complex crystals, such as 2D crystalline polymers, bypassing the limitations of liquid-interface synthesis and allowing the integration of such new crystals in devices; and, finally, to establish a ground breaking way to manufacture and ingest drugs, which will ensure bioavailability and dose personalization.
2DROP will establish a disruptive technology whose results will be of strong interest in several fields, ranging from soft matter,
colloidal chemistry, chemical engineering, material science, nanotechnology and electrical engineering. This strong multidisciplinary project fully reflects the unique background of the PI.
proteins. However, metastable phases are typically very difficult to access and to further exploit in applications, as they are separated by small energy barriers and have very short lifetimes. In the case of organic compounds, the presence of metastable forms (polymorphs) makes very challenging to control the crystal's size, shape and structure, which ultimately determine their physical properties. A large effort has been spent in developing and designing techniques that allow to control polymorphism. One of the most attractive strategy is based on confinement, achieved by using capillaries, microporous materials, nanoporous media, and surfaces. However, the control of size and polymorphism by confinement is still not fully understood, by limiting further exploitation of these crystals in applications.
2DROP focuses on a ground breaking approach that will enable to access crystallization in thin molecular layers and to fine-tuning the crystal composition, structure and thickness, possibly down to the monolayer. This approach will be used to get the insights on crystallization under extreme confinement, where the discrete nature of the medium is expected to arise; to establish a new way to make complex crystals, such as 2D crystalline polymers, bypassing the limitations of liquid-interface synthesis and allowing the integration of such new crystals in devices; and, finally, to establish a ground breaking way to manufacture and ingest drugs, which will ensure bioavailability and dose personalization.
2DROP will establish a disruptive technology whose results will be of strong interest in several fields, ranging from soft matter,
colloidal chemistry, chemical engineering, material science, nanotechnology and electrical engineering. This strong multidisciplinary project fully reflects the unique background of the PI.
Organisations
People |
ORCID iD |
| Cinzia Casiraghi (Principal Investigator) |
Publications
Peng Z
(2024)
Fully printed memristors made with MoS 2 and graphene water-based inks
in Materials Horizons
Tong J
(2024)
Crystallization of molecular layers produced under confinement onto a surface.
in Nature communications
| Description | aerosol jet printing of molecular layers |
| Amount | £90,000 (GBP) |
| Funding ID | 2932927 |
| Organisation | Engineering and Physical Sciences Research Council (EPSRC) |
| Sector | Public |
| Country | United Kingdom |
| Start | 08/2024 |
| End | 03/2028 |
| Description | Atoms to devices at Manchester workshop |
| Form Of Engagement Activity | Participation in an activity, workshop or similar |
| Part Of Official Scheme? | No |
| Geographic Reach | National |
| Primary Audience | Postgraduate students |
| Results and Impact | The workshop aimed at describing the research performed at Manchester related to the Atoms to device research area at the Royce Institute. The audience was mostly made of researchers, but there were also representative from industry and government. After the talk, I got an email from a Senior Engagement Manager working for the government home office who wanted my feedbacks on a internal report on 2D materials. |
| Year(s) Of Engagement Activity | 2024 |
| Description | Indo-UK workshop |
| Form Of Engagement Activity | Participation in an activity, workshop or similar |
| Part Of Official Scheme? | No |
| Geographic Reach | International |
| Primary Audience | Other audiences |
| Results and Impact | Indo-Uk workshop organized by the University of Manchester to foster collaboration with colleagues in India. As the University is currently setting various dual PhD scholarships with India, we hope that there will be opportunity to get a PhD scholarship with groups attending this event. |
| Year(s) Of Engagement Activity | 2024 |
| Description | industrial workshop |
| Form Of Engagement Activity | Participation in an activity, workshop or similar |
| Part Of Official Scheme? | No |
| Geographic Reach | National |
| Primary Audience | Industry/Business |
| Results and Impact | A team member presented our research at the industrial workshop organized at the National Graphene Institute. A company got particularly interested and following the workshop, we had several meetings. We are currently under discussion for a possible fully or partially funded PhD scholarship and an ICP application with the Royce Institute. |
| Year(s) Of Engagement Activity | 2024 |