HYDROTRONICS · Hydrodynamic electronics
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2019-12-01 → 2025-05-31
- Финансиране от ЕС
- 506 000 €
- Участници
- 9
- Схема
- MSCA-RISE
Линиите свързват координатора с партньорите.
Накратко на български
Електроните в свръхчисти материали, като графена, се изследват като течност, която се движи чрез вискозен транспорт. Това помага за разбирането на новите физични свойства на материалите с цел бъдещо приложение в наноелектрониката и съхранението на енергия.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Hydrodynamic electronics
Advances in the fabrication of ultra-pure low-dimensional materials have led in recent years to the emergence of a new area of research – hydrodynamic electronics. This cutting-edge field investigates how electrons behave like a fluid in ultra-pure, low-dimensional materials, where collisions between electrons become the dominant force shaping their physical properties, thanks to modern technologies that allow for the routine manufacturing of such samples. This unique "fluid-like" behavior manifests as non-local, superballistic, and viscous transport of energy and electric charge. Following the immense success of graphene research, many novel two-dimensional materials are currently being investigated, aiming at potential applications in nanoelectronics, as well as energy conversion and storage. The past years have seen an explosion of interest, both experimental and theoretical, in the hydrodynamic effects in interacting electron systems in ultra-pure materials. The HYDROTRONICS project pursued two primary aims: • To develop a comprehensive framework for describing hydrodynamic charge and energy transport that can be fine-tuned to various material properties and experimental settings. • To uncover new physics in novel materials through transport and optical measurements. These aims were supported by a strong collaboration among experimental, theoretical, and computational groups, fostering an environment for new ideas and the development of early-stage researchers. The specific research objectives of HYDROTRONICS included: • Electronic hydrodynamics in novel materials, such as van der Waals heterostructures, twisted bilayer graphene, and Weyl semimetals. • Nonlocal and nonlinear phenomena in electronic hydrodynamics, including 2D turbulence. • Light-matter interaction, near-field optics, and coupling to external magnetic systems (e.g., in stacked layered devices). Combining the microscopic and macroscopic methods to interacting electronic systems allowed for a unique perspective and yielded a powerful approach to transport phenomena that can be easily adapted to new materials and experimental settings, as they become accessible in the course of rapid technological progress. Strong collaboration between the groups involved in the project and its overall synergy allowed novel ideas to flourish, promoting a fertile environment in which early-stage researchers could develop their own paths and resolve the biggest issues in the field. Another important goal was a closer integration between the experimental, theoretical, and computational (software development) parts of the network, which will be an important element exposing practitioners in each area to cutting edge progress in the others.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Advances in fabrication of ultra-pure low-dimensional materials have led in recent years to the emergence of a new area of research -- hydrodynamic electronics. Modern technologies allow for routine manufacturing of ultra-clean samples where observable physical properties are dominated by electron-electron collisions. Electrons in such systems obey the laws of hydrodynamics, which manifests itself in non-local, superballistic, and turbulent transport of energy and electric charge. Following the immense success of graphene research, many novel two-dimensional materials are currently being investigated aiming at potential applications in nanoelectronics, as well as energy conversion and storage. Last years have seen an explosion of interest, both experimental and theoretical, in the hydrodynamic effects in interacting electron systems in ultra-pure materials. The principle aims of HYDROTRONICS are (i) to build a framework to describe hydrodynamic charge and energy transport fine-tuned to the material properties and sample geometry, and (ii) to investigate the physics of novel materials that can be uncovered by transport measurements. Combining the microscopic and macroscopic methods to interacting electronic systems will allow for a unique perspective and yield a powerful approach to transport phenomena that can be easily adapted to new materials and experimental settings, as they become accessible in the course of rapid technological progress. Strong collaboration between the groups involved in the project and its overall synergy will allow novel ideas to flourish, promoting a fertile environment in which early-stage researchers can develop their own paths and resolve the biggest issues in the field. Another important goal is a closer integration between the experimental, theoretical, and computational (software development) parts of the network, which will be an important element exposing practitioners in each area to cutting edge progress in the others.
Оригинален текст от CORDIS (на английски).
Участници
- KARLSRUHER INSTITUT FUER TECHNOLOGIE · KarlsruheКоординаторГермания
- FONDAZIONE ISTITUTO ITALIANO DI TECNOLOGIA · GenovaИталия
- LOUISIANA STATE UNIVERSITY AND AGRICULTURAL AND MECHANICAL COLLEGE · Baton RougeСъединени щати
- STICHTING RADBOUD UNIVERSITEIT · NijmegenНидерландия
- THE UNIVERSITY OF MANCHESTER · ManchesterОбединеното кралство
- UNIVERSIDAD DE CHILE · SantiagoЧили
- UNIVERSITA DI PISA · PisaИталия
- WEIZMANN INSTITUTE OF SCIENCE · RehovotИзраел
- WOLFRAM RESEARCH EUROPE LIMITED · LONG HANBOROUGHОбединеното кралство
Връзки
- Виж в CORDIS
- DOI: 10.3030/873028
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e505160a47&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e50930af74&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e5100a2a83&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e5103b4aa2&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e51153ce1d&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e5166e15f1&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e51bb95e89&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e51d003257&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e51d49679f&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e51d5a120e&appId=PPGMS
Данни: CORDIS, © Европейски съюз
