People

  • Governance / Executive Committee

    Nicola Marzari
    Nicola Marzari
    Director
    EPFL, Lausanne
    Clémence Corminboeuf
    Clémence Corminboeuf
    Deputy director
    EPFL, Lausanne
    Michele Ceriotti
    Michele Ceriotti
    Deputy director
    EPFL, Lausanne
    Sara Bonella
    Sara Bonella
    Group leader
    EPFL, Lausanne
    Joost VandeVondele
    Joost VandeVondele
    Project leader
    CSCS, Zürich


    The Executive Committee is in charge of the coordination and implementation of MARVEL's  activities, in collaboration with the Management Team.

  • Governance / Management Team

    Lidia Favre-Quattropani
    Lidia Favre-Quattropani
    Scientific manager
    EPFL
    Francesca Olgiati
    Francesca Olgiati
    Program manager
    EPFL
    Ursula Vaucher
    Ursula Vaucher
    Financial Officer
    EPFL
    Nicola Nosengo
    Nicola Nosengo
    Communication
    EPFL
    Cornelia Bujenita
    Cornelia Bujenita
    Administrative specialist
    EPFL
    Elodie Schneider
    Elodie Schneider
    Administrative specialist
    EPFL


    A team of administrative and scientific collaborators carries out MARVEL's management and financial duties and takes care of responsibilities such as communication, knowledge and technology transfer, education and equal opportunities.

  • Governance / Scientific Advisory Board

    Boris Kozinsky
    Boris Kozinsky
    Professor
    Harvard University, Cambridge, MA
    Gabriel Aeppli
    Gabriel Aeppli
    Professor
    PSI, Villigen
    Andrea Cavalli
    Andrea Cavalli
    Director, CECAM
    EPFL, Lausanne
    Giulia Galli
    Giulia Galli
    Liew Family Professor
    University of Chicago, Chicago
    Peter Haynes
    Peter Haynes
    Professor
    Imperial College, London
    Karsten Jacobsen
    Karsten Jacobsen
    Professor
    Technical University of Denmark, Lyngby
    Sadasivan Shankar
    Sadasivan Shankar
    Professor
    Stanford University, Menlo Park, CA
    Tanja Zimmermann
    Tanja Zimmermann
    Director
    Empa, Dübendorf


    The Scientific Advisory Board has the formal role of suggesting research lines that need to be strengthened within the NCCR, or that have run their course, and act as an independent reviewer of the activities of the NCCR in addition to the official Review Panel of the SNSF. The Scientific Advisory Board is chaired by Boris Kozinsky.

  • Governance / Industrial Advisory Board

    Erich Wimmer
    Erich Wimmer
    CSO
    Materials Design, San Diego and Paris
    Nicolas Cudré-Mauroux
    Nicolas Cudré-Mauroux
    CTO
    SICPA, Lausanne
    Thomas Eckl
    Thomas Eckl
    Chief Expert
    Robert Bosch GmbH, Stuttgart
    Paola Gori Giorgi
    Paola Gori Giorgi
    Principal Research Manager
    Microsoft Research AI4Science, Amsterdam
    Arnaud Grandeury
    Arnaud Grandeury
    Senior Fellow, Leading Scientist
    Novartis, Basel


    The Industrial Advisory Board has the formal role of giving feedback to the NCCR regarding the industrial interest of research orientation and to suggest new directions. They act as independent reviewers of the activities of the NCCR in addition to the official Review Panel of the SNSF. The Industrial Advisory Board is chaired by Erich Wimmer.


  • Governance / Data Team

    Lidia Favre-Quattropani
    Lidia Favre-Quattropani
    Scientific manager
    EPFL
    Giovanni Pizzi
    Giovanni Pizzi
    Project leader
    PSI, Villigen PSI
    Carlo Pignedoli
    Carlo Pignedoli
    Project leader
    Empa, Dübendorf
    Manura Liyanage
    Manura Liyanage
    Postdoc
    EPFL
    Sanggyu Chong
    Sanggyu Chong
    Postdoc
    EPFL
    Kristjan Eimre
    Kristjan Eimre
    Postdoc
    PSI
    Flaviano dos Santos
    Flaviano dos Santos
    Postdoc
    PSI


    The MARVEL data team, with one representative per project, is at disposal to address questions regarding open research data policy within MARVEL, with the role of being the point of contact in the group, project, institution; of raising awareness on data management; and of checking the minimal requirements presented in the MARVEL research data strategy. The data manager is Lidia Favre-Quattropani, MARVEL scientific manager. 

  • Projects / Novel Materials

    Anirudh Raju Natarajan
    Anirudh Raju Natarajan
    Group leader
    EPFL, Lausanne
    Vladyslav Turlo
    Vladyslav Turlo
    Group leader
    Empa, Thun
    Michele Ceriotti
    Michele Ceriotti
    Deputy director
    EPFL, Lausanne
    Christian Leinenbach
    Christian Leinenbach
    Group leader
    Empa, Dübendorf


    Pillar 1 — Design and Discovery of Novel Materials. This pillar is dedicated to two phase II projects that have shown significant scientific and economic impact — metal-organic frameworks and alloys for additive manufacturing.


    Recent developments in materials science and chemistry have created a problem of luxury: we can conceive of many more materials than we can ever imagine synthesizing and testing. Finding the optimal material for any particular application has therefore become increasingly difficult.


    We think that identifying the highest-performing materials for a specific application will likely be achieved only by the adroit combination of high-throughput first-principles computations, theory and simulation, and machine learning, guiding experimental teams towards the most promising materials. To this end, we are building on the experience gained in MARVEL's phases I and II to develop a general framework for guiding experimental efforts in material discovery and creation. We are developing this framework in the areas of nanoporous materials (e.g., metal-organic frameworks (MOFs), covalent organic frameworks (COFs), zeolites, etc.) and multicomponent metal alloys (traditional dilute and, especially, new high-entropy alloys). Both topics have immense promise for applications but pose the challenge of a vast composition space. The computational methods developed in phase III will therefore have a significant impact.


    The project is led by Anirudh Raju Natarajan.

  • Projects / Machine Learning

    Clémence Corminboeuf
    Clémence Corminboeuf
    Deputy director
    EPFL, Lausanne
    Michele Ceriotti
    Michele Ceriotti
    Deputy director
    EPFL, Lausanne
    Lenka Zdeborová
    Lenka Zdeborová
    Group leader
    EPFL, Lausanne
    Lyndon Emsley
    Lyndon Emsley
    Group leader
    EPFL, Lausanne
    Giuseppe Carleo
    Giuseppe Carleo
    Project leader
    EPFL, Lausanne


    Pillar 2 — Machine Learning Platform for Molecules and Materials. This pillar aims to further strengthen the leadership of the Swiss research community in the use of machine learning to computational materials design.


    Since the start of NCCR MARVEL, machine-learning (ML) techniques have become an integral part of the atomistic simulation toolbox, extending the reach and improving the accuracy of chemical modeling and driving materials discovery to new frontiers. MARVEL has made pioneering contributions to this field, ranging from the most fundamental understanding of the mathematical structure of descriptors used in atomistic ML, to challenging applications to basic chemistry and to materials of great technological relevance.


    In the third and last phase of the NCCR, our ambitious research plan further bolsters our leadership in the application of ML to computational materials design.  It is built around a core infrastructural effort that both harmonizes the constellation of software tools developed during MARVEL's phase I and II and ensures a long-lasting legacy for the NCCR, keeping a forward-looking perspective. The final phase will allow us to continue advancing the state-of-the-art in atomistic machine learning, and integrate new PIs who will help deepen our understanding of the fundamental nature of atomistic machine learning and draw bridges with the study of quantum materials.


    The project is led by Clémence Corminboeuf and Michele Ceriotti.

  • Projects / Open Digital Infrastructure

    Giovanni Pizzi
    Giovanni Pizzi
    Project leader
    PSI, Villigen PSI
    Joost VandeVondele
    Joost VandeVondele
    Project leader
    CSCS, Zürich
    Sara Bonella
    Sara Bonella
    Group leader
    EPFL, Lausanne
    Michael Herbst
    Michael Herbst
    Group leader
    EPFL, Lausanne


    Pillar 3 — Digital Infrastructure of Open Simulations and Data. This pillar aims to provide the critical digital infrastructure needed to enable materials design and discovery in the 21st century. It focuses on the three main objectives of: 1) preparing for the exascale challenge; 2) making all codes, algorithms and workflows widely usable in a simple and optimized way, also for non-experts; and 3) delivering a self-sustaining long-term simulations infrastructure for the whole Swiss materials-science research ecosystem and beyond.

    Preparing for the exascale challenge means tackling issues around code performance and scalability on (pre-)exascale machines via domain specific libraries (SIRIUS) and custom algorithms (Ensemble DFT, MaZe, ...), and developing the high-throughput performance to drive millions of individual HPC simulations via AiiDA. The services provided by the AiiDAlab infrastructure and the Quantum Mobile virtual machine will help us simplify access to codes, algorithms and workflows, ensure reproducibility of all research and facilitate FAIR access and sharing not only of the resulting data via the Materials Cloud portal, but also directly of the simulation capabilities.

    By including an ability to deliver automated simulations as microservices, this pillar will establish a self-sustaining infrastructure for simulations that reaches well beyond the end of the NCCR. MARVEL's Digital Infrastructure will thus become a key enabler for future research in the field, extending to novel approaches such as autonomous laboratories with a closed feedback loop between automated simulations and robotic experiments, and thus further accelerating materials discovery and characterization.

    The project is led by Giovanni Pizzi and Joost VandeVondele.

  • Projects / Swiss Scientific Landscape

    Nicola Marzari
    Nicola Marzari
    Director
    EPFL, Lausanne
    Christian Rüegg
    Christian Rüegg
    Project leader
    PSI, Villigen PSI
    Carlo Pignedoli
    Carlo Pignedoli
    Project leader
    Empa, Dübendorf
    Laura Grigori
    Laura Grigori
    Group leader
    PSI, Villigen PSI
    Matthias Krack
    Matthias Krack
    Group leader
    PSI, Villigen PSI


    Pillar 4 — Long-term Integration in the Swiss Scientific Landscape. This pillar is dedicated to integrating MARVEL into the Swiss scientific landscape.


    This translates into a strategic, long-term effort nucleating at PSI and Empa, where MARVEL's simulation and data capabilities will be developed further and become broadly available to the thousands of researchers within these labs. We will continue our strategic partnership with CSCS and ignite a new, lasting collaboration with Swiss Data Science Center (SDSC).

    The efforts will be bolstered by PSI's new division dedicated to Scientific Computing, Theory and Data. Directed by Prof. Christian Rüegg, it comprises a number of scientific and technical laboratories, including a Laboratory for Materials Simulations developed in close partnership with MARVEL. This lab features three groups: Materials Software and Data, dedicated to expanding simulation capabilities for the prediction and characterization of materials properties; Multiscale Materials Modelling; and Light-Matter Interactions.  

    Empa is also expanding its focus on accelerating materials design, all while targeting the reproducibility of experimental and computational research. Here, Dr. Carlo Pignedoli will take a leadership role. Resources are being invested in the creation of tools that boost cooperation between experiments and simulation. This enables high levels of standardization in how calculations for a specific experiment are performed and how results are analyzed and processed. Tools such as AiiDAlab are, in fact, specifically designed to enable experimentalists to independently access the submission of calculations and the analysis of the automatically processed data. 


    The project is led by Nicola Marzari, Christian Rüegg and Carlo Pignedoli.

  • Projects / Advanced Simulation Methods

    Philipp Werner
    Philipp Werner
    Project leader
    UniFR, Fribourg
    Daniele Passerone
    Daniele Passerone
    Project leader
    Empa, Dübendorf
    Mathieu Luisier
    Mathieu Luisier
    Project leader
    ETHZ, Zürich
    Michael Schüler
    Michael Schüler
    Group leader
    PSI, Villigen PSI


    ASM — Advanced Simulation Methods. This project focuses on the integration of methods developed around correlated materials and on devices already started in phase II. The efforts are spread across three sub-projects: Accurate open source simulation framework for correlated materials; Correlations in realistic systems; and Electrical, thermal, and optical effects in  2D nanodevices.

    In the first two phases of MARVEL, substantial resources were invested into the development of an accurate and parameter-free ab initio simulation method for correlated electron material. This class of materials exhibits some of the most remarkable phenomenon found in condensed matter systems, but their strongly correlated nature requires a theoretical treatment that goes beyond density functional theory (DFT) or weak-coupling perturbation theory. The new approach is based on the combination of dynamical meanfield theory (DMFT) with the GW method and has been successfully tested. The goal for phase III is to turn this complex simulation framework into an efficient, easily usable and well-documented open source code that can handle O(10) correlated orbitals per site, treat several sites in a unit cell, and read ab initio input from different widely used codes such as FLEUR or Quantum ESPRESSO. 


    Simulations of atomistic models as close as possible to reality are key to success in meeting the challenge of realizing atomically precise bottom-up synthesis of graphene-derived structures, themselves opening up the way to the design of carbon-based nanomaterials and devices. A specific challenges in this regard is the lack of efficient and reliable methods capable of describing electron transport in reduced-size systems where screening effects play a fundamental role. The main objective in phase III is to develop a computational tool for calculating the conductance in these regimes.


    Scaling down the dimensions of electronic devices to the sub-nanometer range not only influences their electronic transport properties, but also their electron-phonon and light-matter interactions. Being able to accurately model them has become critical to the design of ultra-scaled field-effect transistors (FET), thermoelectric nano-generators (TEG), and highly efficient photovoltaic (PV) cells. The objective of this project is therefore to set up an environment to automatically generate the required parameters and apply them to the modeling of nanodevices, for example ultra-scaled transistors with various 2D channel materials. The work will involve collaborations with experimental groups at ETHZ, EPFL, and Empa.


    The project is led by Philipp Werner, Daniele Passerone and Mathieu Luisier.

  • Projects / Quantum Simulations

    Giuseppe Carleo
    Giuseppe Carleo
    Project leader
    EPFL, Lausanne
    Jürg Hutter
    Jürg Hutter
    Group leader
    UZH, Zürich
    Ivano Tavernelli
    Ivano Tavernelli
    Group leader
    IBM, Rüschlikon
    Zoë Holmes
    Zoë Holmes
    Group Leader
    EPFL, Lausanne


    QS — Leveraging Quantum Computers and Algorithms for Materials Discovery. This Quantum Simulations project is driven by an interdisciplinary team that aims to develop and deploy advanced quantum algorithms for electronic structure simulations and material science.


    The development of unprecedented capabilities in quantum computing hardware has marked the beginning of a potentially revolutionary new era for scientific discovery of quantum phenomena. The technology is perceived as having remarkable potential for scientific discovery, suggesting access to entirely unexplored computational realms that were unattainable in the classical setting.


    While quantum hardware development is growing at an unprecedented pace, successful near- and mid-term applications of quantum computing to key scientific and technological discoveries will undoubtedly happen within the context of hybrid classical-quantum computing approaches. This project allows us to establish new key synergies between the classical and the quantum world, aiming at closing the gap with more traditional approaches and set the path towards unexplored electronic structure calculations beyond the accuracy currently attainable with classical computing only. 


    We are focusing on two main aspects. On one hand, we are pursuing the development of core quantum algorithms for the simulation of electronic problems, leveraging the most advanced hybrid classical-quantum algorithms based on variational methods. On the other hand, we are tackling the important task of interfacing well established classical software for electronic structure calculations with quantum computing accelerators through IBM's Qiskit platform. These approaches are of strategic scientific interest for Switzerland and instrumental in devising the next generation of applied quantum computing software and complementing the strong development of experimental platforms.


    The project is led by Giuseppe Carleo.

  • Projects / Agility Plus

    Sereina Riniker
    Sereina Riniker
    Group leader
    ETHZ, Zurich
    Emiliana Fabbri
    Emiliana Fabbri
    Group leader
    PSI, Villigen PSI


    In phase II, MARVEL funded four Agility Plus projects, specifically devised for integrating new junior women PIs, with a 2-year support for a PhD student. Some projets are continuing in phase III. Moreover, we plan to continue supporting this funding scheme with either a new call for Agility Plus partners to join the phase III projects or targeted funds for PIs identified as providing an ideal complement to the ongoing research.