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Energy

Research in this area aligns with Portugal’s strategic commitment to decarbonizing its economy and ultimately achieving climate neutrality through reduction of all greenhouse gas emissions to net-zero. This transition requires large-scale deployment of renewable energy sources as well as systemic innovation across diverse components of the energy system, including storage, grids, electrification, efficiency and sustainable fuels. MPP is investigating deeper integration of technologies, markets, and industrial capabilities to meet multiple goals of resilience, affordability and sustainability.

Among the topics MPP is pursuing are renewable energy innovation, energy storage and other grid flexibility solutions, electrification of industry and mobility, energy efficiency in buildings and industrial processes, and energy system modeling. Supporting collaborative research across the entire energy system, projects in this area are aimed at speeding technology validation and industrial deployment, while informing strategic energy planning and policy.

Funded Projects

  • Calls: 2025 Call for Seed Grant Proposals

    Research Areas: Energy

    Abstract

    Boiling of refrigerants enables high heat dissipation and is critical in heat pumps, refrigeration, solar power systems, and emerging microsystems. Understanding refrigerant boiling can drive the development of clean technologies for process heat, cooling, and power while reducing greenhouse gas emissions by replacing harmful refrigerants with eco-friendly alternatives. This project aims to enhance boiling heat transfer using next-generation low-global-warming-potential refrigerants. We will conduct pioneering experiments using advanced optical and infrared diagnostics, paired with engineered surfaces, to identify designs that maximize performance. These surfaces will be tested in prototypical conditions, focusing on applications such as refrigeration systems, concentrated solar power and passive, thermally powered cooling. Insights gained will also benefit broader water-based thermal systems, including steam generation and solar cooking.

    MIT PI
    Matteo Bucci, Associate Professor, Department of Nuclear Science & Engineering

    PT PI
    Prof. Ana Moita Universidade de Lisboa Instituto Superior Técnico

    This is a two-year grant

  • Calls: 2026 Call for Joint Integrated and Seed Grant Proposals

    Research Areas: Energy

    Abstract

    Recent extreme events, such as Storm Kristin on 28 January 2026, have highlighted significant vulnerabilities in the National Electricity System (SEN), resulting in disruptions to transmission and distribution networks which affected security of supply. This project aims to provide the SEN with robust analytical tools to support public policies and structural investments, aligned with the objectives of climate resilience, modernization of critical infrastructure and the energy transition. The focus is on: a) Assessment of structural measures to strengthen the resilience of the SEN, considering current and potential climate scenarios; b) Analysis of the technical feasibility and economic rationale for the selective undergrounding of electricity lines in areas identified as critical; c) Formulation of proposals for adapting electricity network planning instruments to the new climate reality, including the integration of risk and resilience metrics into decision-making processes; and, d) Assessing relevance of the methods for resilient electricity services in the US.

    MIT PI
    Marija Ilic, Senior Research Scientist, Adjunct Professor,  Laboratory for Information and Decision Systems, Department of Electrical Engineering and Computer Science

    PT PI
    Pedro Carvalho, Full Professor, Institute for Systems and Computer Engineering, University of Lisbon (IST)

  • Calls: 2025 Call for Seed Grant Proposals

    Research Areas: Energy

    Abstract

    We propose to develop diodes and prototype solar cells using chalcogenide perovskite thin films. We will deposit BaZrS3 thin films, and BaZr(S,Se)3 alloys with tunable band gap, using previouslyestablished methods of molecular beam epitaxy. We will select contact materials, and will develop methods to deposit and evaluate the contact materials as thin films. We will form p-n heterojunction diodes and test their electrical performance. Finally, we will evaluate the photovoltage and solar-cell performance of the top-performing diodes. Our project will build on a new collaboration between MIT and the International Iberian Nanotechnology Laboratory (INL), leveraging world-leading expertise in chalcogenide perovskite deposition (MIT) and in scanning probe microscopy (INL). We will be the first to characterize and optimize chalcogenide perovskite thin-film diodes and photovoltaic performance, which will be a major advance in this growing research field.

    MIT PI
    Rafael Jaramillo, Associate Professor, Department of Materials Science and Engineering

    PT PI
    Sascha Sadewasser
    Principal Investigator, Laboratory for Nanostructured Solar Cells International Iberian Nanotechnology Laboratory (INL)

    This grant is renewed until August 31, 2027